alpha-D-Glucose (BioDeep_00000014485)
Main id: BioDeep_00000014321
Secondary id: BioDeep_00000229627, BioDeep_00000405557, BioDeep_00000412696
human metabolite PANOMIX_OTCML-2023 Endogenous BioNovoGene_Lab2019 natural product
代谢物信息卡片
化学式: C6H12O6 (180.0633852)
中文名称: α-D-葡萄糖, 葡萄糖
谱图信息:
最多检出来源 Homo sapiens(general) 43.75%
分子结构信息
SMILES: C(C1C(C(C(C(O1)O)O)O)O)O
InChI: InChI=1S/C6H12O6/c7-1-2-3(8)4(9)5(10)6(11)12-2/h2-11H,1H2/t2-,3+,4+,5+,6+/m1/s1
描述信息
alpha-D-Glucose, also known as alpha-dextrose or alpha-D-GLC, belongs to the class of organic compounds known as hexoses. These are monosaccharides in which the sugar unit is a is a six-carbon containing moeity. alpha-D-Glucose exists in all living species, ranging from bacteria to humans. Outside of the human body, alpha-D-Glucose has been detected, but not quantified in several different foods, such as lemon grass, sourdoughs, mixed nuts, sweet rowanberries, and ginsengs. This could make alpha-D-glucose a potential biomarker for the consumption of these foods. D-Glucopyranose having alpha-configuration at the anomeric centre.
A primary source of energy for living organisms. It is naturally occurring and is found in fruits and other parts of plants in its free state. It is used therapeutically in fluid and nutrient replacement.
COVID info from COVID-19 Disease Map, PDB, Protein Data Bank
Corona-virus
Coronavirus
SARS-CoV-2
COVID-19
SARS-CoV
COVID19
SARS2
SARS
alpha-D-glucose is an endogenous metabolite.
alpha-D-glucose is an endogenous metabolite.
同义名列表
39 个代谢物同义名
(2S,3R,4S,5S,6R)-6-(hydroxymethyl)oxane-2,3,4,5-tetrol; alpha-delta-Glucopyranose; Glucose, (alpha-D)-isomer; Glucose, (beta-D)-isomer; alpha-D-Glucopyranoside; alpha-D-Glucopyranose; Glucose, (DL)-isomer; Monohydrate, glucose; alpha-delta-Glucose; Glucose, (L)-isomer; Dextrose, anhydrous; Glucose monohydrate; 1,3-alpha-D-Glucan; Anhydrous dextrose; a-D-Glucopyranose; α-D-Glucose; alpha-1,3-Glucan; alpha-D-Glucose; alpha-Dextrose; alpha-Glucose; Hexopyranose; alpha-D-GLC; Α-D-glucose; Grape sugar; a-D-Glucose; a-Dextrose; Α-dextrose; L Glucose; L-Glucose; D-Glucose; α-glucose; D Glucose; a-Glucose; dextrose; Glucose; a-D-GLC; Α-D-GLC; Hexose; alpha-D-Glucose
数据库引用编号
28 个数据库交叉引用编号
- ChEBI: CHEBI:18398
- ChEBI: CHEBI:28102
- ChEBI: CHEBI:18269
- ChEBI: CHEBI:15444
- ChEBI: CHEBI:17925
- ChEBI: CHEBI:28100
- KEGG: C00267
- KEGGdrug: D70945
- PubChem: 79025
- HMDB: HMDB0003345
- Metlin: METLIN63118
- Metlin: METLIN133
- ChEMBL: CHEMBL423707
- MetaCyc: ALPHA-GLUCOSE
- KNApSAcK: C00001122
- foodb: FDB011829
- chemspider: 71358
- CAS: 26655-34-5
- CAS: 27707-45-5
- CAS: 492-62-6
- PubChem: 3565
- PDB-CCD: GLC
- 3DMET: B01203
- NIKKAJI: J44.217H
- medchemexpress: HY-128417
- BioNovoGene_Lab2019: BioNovoGene_Lab2019-544
- KNApSAcK: 17925
- LOTUS: LTS0132398
分类词条
相关代谢途径
Reactome(27)
- Metabolism
- Metabolism of proteins
- Post-translational protein modification
- Disease
- Asparagine N-linked glycosylation
- Metabolism of lipids
- Transport of small molecules
- SLC-mediated transmembrane transport
- Mycobacterium tuberculosis biological processes
- Disorders of transmembrane transporters
- SLC transporter disorders
- Glycolysis
- Carbohydrate metabolism
- Glucose metabolism
- Integration of energy metabolism
- Glycogen metabolism
- Glycogen breakdown (glycogenolysis)
- Gluconeogenesis
- Lactose synthesis
- Sphingolipid metabolism
- Glycosphingolipid metabolism
- Transport to the Golgi and subsequent modification
- Digestion and absorption
- Digestion
- Digestion of dietary carbohydrate
- Trehalose biosynthesis
- Glycosphingolipid catabolism
BioCyc(11)
- chitin biosynthesis
- trehalose degradation II (cytosolic)
- sucrose degradation II (sucrose synthase)
- superpathway of anaerobic sucrose degradation
- protein N-glycosylation processing phase (mammalian)
- protein N-glycosylation processing phase (plants and animals)
- UDP-galactose biosynthesis
- trehalose degradation
- trehalose degradation VI (periplasmic)
- trehalose degradation V
- trehalose degradation II (trehalase)
PlantCyc(6)
代谢反应
2511 个相关的代谢反应过程信息。
Reactome(329)
- Digestion and absorption:
H2O + limit dextrin ⟶ Glc + Mal + maltotriose
- Digestion:
H2O + limit dextrin ⟶ Glc + Mal + maltotriose
- Digestion of dietary carbohydrate:
H2O + limit dextrin ⟶ Glc + Mal + maltotriose
- Digestion and absorption:
H2O + limit dextrin ⟶ Glc + Mal + maltotriose
- Digestion:
H2O + limit dextrin ⟶ Glc + Mal + maltotriose
- Digestion of dietary carbohydrate:
H2O + limit dextrin ⟶ Glc + Mal + maltotriose
- Digestion and absorption:
H2O ⟶ Mal + maltotriose
- Digestion:
H2O ⟶ Mal + maltotriose
- Digestion of dietary carbohydrate:
H2O ⟶ Mal + maltotriose
- Metabolism:
3alpha,7alpha,12alpha-trihydroxy-5beta-cholest-24-one-CoA + CoA-SH ⟶ choloyl-CoA + propionyl CoA
- Carbohydrate metabolism:
D-glucuronate + H+ + TPNH ⟶ L-gulonate + TPN
- Lactose synthesis:
Glc + UDP-Gal ⟶ Lac + UDP
- Digestion and absorption:
H2O ⟶ Mal + maltotriose
- Digestion:
H2O ⟶ Mal + maltotriose
- Digestion of dietary carbohydrate:
H2O ⟶ Mal + maltotriose
- Digestion and absorption:
CHEST + H2O ⟶ CHOL + LCFAs
- Digestion:
CHEST + H2O ⟶ CHOL + LCFAs
- Digestion of dietary carbohydrate:
H2O ⟶ Mal + maltotriose
- Digestion and absorption:
CHEST + H2O ⟶ CHOL + LCFAs
- Digestion:
CHEST + H2O ⟶ CHOL + LCFAs
- Digestion of dietary carbohydrate:
H2O ⟶ Mal + maltotriose
- Metabolism:
1-3-oxo-THA-CoA + CoA-SH ⟶ DHA-CoA + propionyl CoA
- Carbohydrate metabolism:
D-glucuronate + H+ + TPNH ⟶ L-gulonate + TPN
- Lactose synthesis:
Glc + UDP-Gal ⟶ Lac + UDP
- Metabolism:
1-3-oxo-THA-CoA + CoA-SH ⟶ DHA-CoA + propionyl CoA
- Carbohydrate metabolism:
D-glucuronate + H+ + TPNH ⟶ L-gulonate + TPN
- Lactose synthesis:
Glc + UDP-Gal ⟶ Lac + UDP
- Digestion and absorption:
CHEST + H2O ⟶ CHOL + LCFAs
- Digestion:
CHEST + H2O ⟶ CHOL + LCFAs
- Digestion of dietary carbohydrate:
H2O ⟶ Mal + maltotriose
- Metabolism:
1-3-oxo-THA-CoA + CoA-SH ⟶ DHA-CoA + propionyl CoA
- Carbohydrate metabolism:
L-gulonate + NAD ⟶ 3-dehydro-L-gulonate + H+ + NADH
- Lactose synthesis:
Glc + UDP-Gal ⟶ Lac + UDP
- Metabolism:
2MACA-CoA + CoA ⟶ Ac-CoA + PROP-CoA
- Carbohydrate metabolism:
D-glucuronate + H+ + TPNH ⟶ L-gulonate + TPN
- Lactose synthesis:
Glc + UDP-Gal ⟶ Lac + UDP
- Digestion and absorption:
CHEST + H2O ⟶ CHOL + LCFAs
- Digestion:
CHEST + H2O ⟶ CHOL + LCFAs
- Digestion of dietary carbohydrate:
H2O ⟶ Mal + maltotriose
- Digestion and absorption:
CHEST + H2O ⟶ CHOL + LCFAs
- Digestion:
CHEST + H2O ⟶ CHOL + LCFAs
- Digestion of dietary carbohydrate:
H2O ⟶ Mal + maltotriose
- Metabolism:
3alpha,7alpha,12alpha-trihydroxy-5beta-cholest-24-one-CoA + CoA-SH ⟶ choloyl-CoA + propionyl CoA
- Carbohydrate metabolism:
D-glucuronate + H+ + TPNH ⟶ L-gulonate + TPN
- Lactose synthesis:
Glc + UDP-Gal ⟶ Lac + UDP
- Metabolism:
1-3-oxo-THA-CoA + CoA-SH ⟶ DHA-CoA + propionyl CoA
- Carbohydrate metabolism:
D-glucuronate + H+ + TPNH ⟶ L-gulonate + TPN
- Lactose synthesis:
Glc + UDP-Gal ⟶ Lac + UDP
- Digestion and absorption:
CHEST + H2O ⟶ CHOL + LCFAs
- Digestion:
CHEST + H2O ⟶ CHOL + LCFAs
- Digestion of dietary carbohydrate:
H2O ⟶ Mal + maltotriose
- Digestion and absorption:
CHEST + H2O ⟶ CHOL + LCFAs
- Digestion:
CHEST + H2O ⟶ CHOL + LCFAs
- Digestion of dietary carbohydrate:
H2O ⟶ Mal + maltotriose
- Metabolism:
ATP + PROP-CoA + carbon dioxide ⟶ ADP + MEMA-CoA + Pi
- Carbohydrate metabolism:
ATP + PYR + carbon dioxide ⟶ ADP + OAA + Pi
- Lactose synthesis:
Glc + UDP-Gal ⟶ Lac + UDP
- Digestion and absorption:
CHEST + H2O ⟶ CHOL + LCFAs
- Digestion:
CHEST + H2O ⟶ CHOL + LCFAs
- Digestion of dietary carbohydrate:
H2O ⟶ Mal + maltotriose
- Metabolism:
1-3-oxo-THA-CoA + CoA-SH ⟶ DHA-CoA + propionyl CoA
- Carbohydrate metabolism:
D-glucuronate + H+ + TPNH ⟶ L-gulonate + TPN
- Lactose synthesis:
Glc + UDP-Gal ⟶ Lac + UDP
- Digestion and absorption:
CHEST + H2O ⟶ CHOL + LCFAs
- Digestion:
CHEST + H2O ⟶ CHOL + LCFAs
- Digestion of dietary carbohydrate:
H2O ⟶ Mal + maltotriose
- Digestion and absorption:
H2O + limit dextrin ⟶ Glc + Mal + maltotriose
- Digestion:
H2O + limit dextrin ⟶ Glc + Mal + maltotriose
- Digestion of dietary carbohydrate:
H2O + limit dextrin ⟶ Glc + Mal + maltotriose
- Digestion and absorption:
CHEST + H2O ⟶ CHOL + LCFAs
- Digestion:
CHEST + H2O ⟶ CHOL + LCFAs
- Digestion of dietary carbohydrate:
H2O + limit dextrin ⟶ Glc + Mal + maltotriose
- Metabolism:
2MACA-CoA + CoA ⟶ Ac-CoA + PROP-CoA
- Carbohydrate metabolism:
D-glucuronate + H+ + TPNH ⟶ L-gulonate + TPN
- Fructose metabolism:
ATP + GA ⟶ ADP + GA3P
- Fructose biosynthesis:
Glc + H+ + TPNH ⟶ D-sorbitol + TPN
- Fructose metabolism:
GA + H2O + NAD ⟶ DGA + H+ + NADH
- Fructose biosynthesis:
Glc + H+ + TPNH ⟶ D-sorbitol + TPN
- Metabolism:
3alpha,7alpha,12alpha-trihydroxy-5beta-cholest-24-one-CoA + CoA-SH ⟶ choloyl-CoA + propionyl CoA
- Carbohydrate metabolism:
L-gulonate + NAD ⟶ 3-dehydro-L-gulonate + H+ + NADH
- Fructose metabolism:
GA + H2O + NAD ⟶ DGA + H+ + NADH
- Fructose biosynthesis:
Glc + H+ + TPNH ⟶ D-sorbitol + TPN
- Fructose metabolism:
GA + H2O + NAD ⟶ DGA + H+ + NADH
- Fructose biosynthesis:
Glc + H+ + TPNH ⟶ D-sorbitol + TPN
- Fructose metabolism:
ATP + DGA ⟶ 3PDGA + ADP + H+
- Fructose biosynthesis:
Glc + H+ + TPNH ⟶ D-sorbitol + TPN
- Metabolism:
ATP + PROP-CoA + carbon dioxide ⟶ ADP + MEMA-CoA + Pi
- Carbohydrate metabolism:
H2O + Heparan(3)-PGs ⟶ CH3COO- + Heparan(4)-PGs
- Fructose metabolism:
GA + H2O + NAD ⟶ DGA + H+ + NADH
- Fructose biosynthesis:
Glc + H+ + TPNH ⟶ D-sorbitol + TPN
- Fructose metabolism:
GA + H2O + NAD ⟶ DGA + H+ + NADH
- Fructose biosynthesis:
Glc + H+ + TPNH ⟶ D-sorbitol + TPN
- Fructose metabolism:
GA + H2O + NAD ⟶ DGA + H+ + NADH
- Fructose biosynthesis:
Glc + H+ + TPNH ⟶ D-sorbitol + TPN
- Fructose metabolism:
Glc + H+ + TPNH ⟶ D-sorbitol + TPN
- Fructose biosynthesis:
Glc + H+ + TPNH ⟶ D-sorbitol + TPN
- Fructose metabolism:
Glc + H+ + TPNH ⟶ D-sorbitol + TPN
- Fructose biosynthesis:
Glc + H+ + TPNH ⟶ D-sorbitol + TPN
- Metabolism:
2MACA-CoA + CoA ⟶ Ac-CoA + PROP-CoA
- Carbohydrate metabolism:
D-glucuronate + H+ + TPNH ⟶ L-gulonate + TPN
- Fructose metabolism:
ATP + GA ⟶ ADP + GA3P
- Fructose biosynthesis:
Glc + H+ + TPNH ⟶ D-sorbitol + TPN
- Metabolism:
2MACA-CoA + CoA ⟶ Ac-CoA + PROP-CoA
- Carbohydrate metabolism:
D-glucuronate + H+ + TPNH ⟶ L-gulonate + TPN
- Fructose metabolism:
Glc + H+ + TPNH ⟶ D-sorbitol + TPN
- Fructose biosynthesis:
Glc + H+ + TPNH ⟶ D-sorbitol + TPN
- Metabolism:
CAR + propionyl CoA ⟶ CoA-SH + Propionylcarnitine
- Carbohydrate metabolism:
ATP + PYR + carbon dioxide ⟶ ADP + OAA + Pi
- Fructose metabolism:
Glc + H+ + TPNH ⟶ D-sorbitol + TPN
- Fructose biosynthesis:
Glc + H+ + TPNH ⟶ D-sorbitol + TPN
- Metabolism:
GAA + SAM ⟶ CRET + H+ + SAH
- Carbohydrate metabolism:
ATP + PYR + carbon dioxide ⟶ ADP + OAA + Pi
- Fructose metabolism:
Glc + H+ + TPNH ⟶ D-sorbitol + TPN
- Fructose biosynthesis:
Glc + H+ + TPNH ⟶ D-sorbitol + TPN
- Fructose metabolism:
Glc + H+ + TPNH ⟶ D-sorbitol + TPN
- Fructose biosynthesis:
Glc + H+ + TPNH ⟶ D-sorbitol + TPN
- Metabolism:
1-3-oxo-THA-CoA + CoA-SH ⟶ DHA-CoA + propionyl CoA
- Carbohydrate metabolism:
D-glucuronate + H+ + TPNH ⟶ L-gulonate + TPN
- Fructose metabolism:
Glc + H+ + TPNH ⟶ D-sorbitol + TPN
- Fructose biosynthesis:
Glc + H+ + TPNH ⟶ D-sorbitol + TPN
- Fructose metabolism:
Glc + H+ + TPNH ⟶ D-sorbitol + TPN
- Fructose biosynthesis:
Glc + H+ + TPNH ⟶ D-sorbitol + TPN
- Fructose biosynthesis:
Glc + H+ + TPNH ⟶ D-sorbitol + TPN
- Glycolysis:
ATP + Fru(6)P ⟶ ADP + F1,6PP
- Glycogen metabolism:
AMP + PGYM dimer, b form ⟶ PGYM b dimer:AMP
- Glycogen breakdown (glycogenolysis):
AMP + PGYM dimer, b form ⟶ PGYM b dimer:AMP
- Glucose metabolism:
D-Fructose 1,6-bisphosphate + H2O ⟶ Fru(6)P + Pi
- Glycolysis:
ATP + Fru(6)P ⟶ ADP + D-Fructose 1,6-bisphosphate
- Metabolism of lipids:
H+ + LTHSOL + Oxygen + TPNH ⟶ 7-dehydroCHOL + H2O + TPN
- Sphingolipid metabolism:
3-ketosphinganine + H+ + TPNH ⟶ SPA + TPN
- Glycosphingolipid metabolism:
GM1 ganglioside + H2O ⟶ GM2 ganglioside + Gal
- Metabolism of proteins:
NAD + SPM ⟶ 1,3-diaminopropane + H+ + NADH
- Post-translational protein modification:
NAD + SPM ⟶ 1,3-diaminopropane + H+ + NADH
- Asparagine N-linked glycosylation:
DOLP + UDP-GlcNAc ⟶ GlcNAcDOLDP + UMP
- N-glycan trimming in the ER and Calnexin/Calreticulin cycle:
(un)folded protein:(GlcNAc)2 (Man)9 + H2O ⟶ Man + unfolded protein:(GlcNAc)2 (Man)8b
- Calnexin/calreticulin cycle:
(un)folded protein:(GlcNAc)2 (Man)9 + H2O ⟶ Man + unfolded protein:(GlcNAc)2 (Man)8b
- Metabolism of proteins:
EIF5A + NAD + SPM ⟶ 1,3-diaminopropane + EIF5A(Dhp) + H+ + NADH
- Post-translational protein modification:
EIF5A + NAD + SPM ⟶ 1,3-diaminopropane + EIF5A(Dhp) + H+ + NADH
- Asparagine N-linked glycosylation:
DOLP + UDP-GlcNAc ⟶ GlcNAcDOLDP + UMP
- Transport to the Golgi and subsequent modification:
PAPS + glyco-Lutropin ⟶ PAP + S-glyco-Lutropin
- N-glycan trimming and elongation in the cis-Golgi:
(GlcNAc)2 (Man)9 ⟶ (GlcNAc)2 (Man)5 (Asn)1 + Man
- Glycogen metabolism:
((1,6)-alpha-glucosyl)poly((1,4)-alpha-glucosyl)GYG dimer ⟶ Glc + poly((1,4)-alpha-glucosyl)GYG dimer
- Glycogen breakdown (glycogenolysis):
((1,6)-alpha-glucosyl)poly((1,4)-alpha-glucosyl)GYG dimer ⟶ Glc + poly((1,4)-alpha-glucosyl)GYG dimer
- Glucose metabolism:
ATP + Fru(6)P ⟶ ADP + F1,6PP
- Gluconeogenesis:
Glu + OAA ⟶ 2OG + L-Asp
- Glycolysis:
ATP + Fru(6)P ⟶ ADP + F1,6PP
- Metabolism of lipids:
3alpha,7alpha,12alpha-trihydroxy-5beta-cholest-24-one-CoA + CoA-SH ⟶ choloyl-CoA + propionyl CoA
- Sphingolipid metabolism:
H2O + dehydroepiandrosterone sulfate ⟶ DHEA + SO4(2-)
- Glycosphingolipid metabolism:
H2O + dehydroepiandrosterone sulfate ⟶ DHEA + SO4(2-)
- Glycogen metabolism:
((1,6)-alpha-glucosyl)poly((1,4)-alpha-glucosyl)GYG2 dimer ⟶ Glc + poly((1,4)-alpha-glucosyl)GYG2 dimer
- Glycogen breakdown (glycogenolysis):
((1,6)-alpha-glucosyl)poly((1,4)-alpha-glucosyl)GYG2 dimer ⟶ Glc + poly((1,4)-alpha-glucosyl)GYG2 dimer
- Glucose metabolism:
ATP + PYR + carbon dioxide ⟶ ADP + OAA + Pi
- Glycolysis:
ATP + Fru(6)P ⟶ ADP + F1,6PP
- Metabolism of lipids:
1-3-oxo-THA-CoA + CoA-SH ⟶ DHA-CoA + propionyl CoA
- Sphingolipid metabolism:
3-ketosphinganine + H+ + TPNH ⟶ SPA + TPN
- Glycosphingolipid metabolism:
GM1 ganglioside + H2O ⟶ GM2 ganglioside + Gal
- Metabolism of proteins:
EIF5A + NAD + SPM ⟶ 1,3-diaminopropane + EIF5A(Dhp) + H+ + NADH
- Post-translational protein modification:
EIF5A + NAD + SPM ⟶ 1,3-diaminopropane + EIF5A(Dhp) + H+ + NADH
- Asparagine N-linked glycosylation:
DOLP + UDP-GlcNAc ⟶ GlcNAcDOLDP + UMP
- Transport to the Golgi and subsequent modification:
HNK1 carbohydrate + PAPS ⟶ PAP + S-HNK1 carbohydrate
- N-glycan trimming and elongation in the cis-Golgi:
(GlcNAc)2 (Man)9 ⟶ (GlcNAc)2 (Man)5 (Asn)1 + Man
- Glycogen metabolism:
G1P + UTP ⟶ PPi + UDP-Glc
- Glycogen breakdown (glycogenolysis):
Pi + glycogen-glycogenin-2 dimer ⟶ G1P + limit dextrin-glycogenin-2 dimer
- Glucose metabolism:
ATP + PYR + carbon dioxide ⟶ ADP + OAA + Pi
- Gluconeogenesis:
ATP + PYR + carbon dioxide ⟶ ADP + OAA + Pi
- Glycolysis:
ATP + Fru(6)P ⟶ ADP + F1,6PP
- Metabolism of lipids:
1-3-oxo-THA-CoA + CoA-SH ⟶ DHA-CoA + propionyl CoA
- Sphingolipid metabolism:
H2O + dehydroepiandrosterone sulfate ⟶ DHEA + SO4(2-)
- Glycosphingolipid metabolism:
H2O + dehydroepiandrosterone sulfate ⟶ DHEA + SO4(2-)
- Glucose metabolism:
ATP + PYR + carbon dioxide ⟶ ADP + OAA + Pi
- Gluconeogenesis:
ATP + PYR + carbon dioxide ⟶ ADP + OAA + Pi
- Glycolysis:
ATP + Fru(6)P ⟶ ADP + F1,6PP
- Metabolism of lipids:
1-3-oxo-THA-CoA + CoA-SH ⟶ DHA-CoA + propionyl CoA
- Sphingolipid metabolism:
H2O + dehydroepiandrosterone sulfate ⟶ DHEA + SO4(2-)
- Glycosphingolipid metabolism:
H2O + dehydroepiandrosterone sulfate ⟶ DHEA + SO4(2-)
- Metabolism of proteins:
NAD + SPM ⟶ 1,3-diaminopropane + H+ + NADH
- Post-translational protein modification:
NAD + SPM ⟶ 1,3-diaminopropane + H+ + NADH
- Asparagine N-linked glycosylation:
DOLP + UDP-GlcNAc ⟶ GlcNAcDOLDP + UMP
- Transport to the Golgi and subsequent modification:
PAPS + glyco-Lutropin ⟶ PAP + S-glyco-Lutropin
- N-glycan trimming and elongation in the cis-Golgi:
(GlcNAc)2 (Man)9 ⟶ (GlcNAc)2 (Man)5 (Asn)1 + Man
- Glycogen metabolism:
((1,6)-alpha-glucosyl)poly((1,4)-alpha-glucosyl)GYG dimer ⟶ Glc + poly((1,4)-alpha-glucosyl)GYG dimer
- Glycogen breakdown (glycogenolysis):
((1,6)-alpha-glucosyl)poly((1,4)-alpha-glucosyl)GYG dimer ⟶ Glc + poly((1,4)-alpha-glucosyl)GYG dimer
- Glucose metabolism:
ATP + Fru(6)P ⟶ ADP + F1,6PP
- Glycolysis:
ATP + Fru(6)P ⟶ ADP + F1,6PP
- Metabolism of lipids:
ATP + PROP-CoA + carbon dioxide ⟶ ADP + MEMA-CoA + Pi
- Sphingolipid metabolism:
3-ketosphinganine + H+ + TPNH ⟶ SPA + TPN
- Glycosphingolipid metabolism:
GM1 ganglioside + H2O ⟶ GM2 ganglioside + Gal
- Metabolism of proteins:
EIF5A + NAD + SPM ⟶ 1,3-diaminopropane + H+ + NADH + Q9GU68
- Post-translational protein modification:
EIF5A + NAD + SPM ⟶ 1,3-diaminopropane + H+ + NADH + Q9GU68
- Asparagine N-linked glycosylation:
DOLP + UDP-GlcNAc ⟶ GlcNAcDOLDP + UMP
- Transport to the Golgi and subsequent modification:
HNK1 carbohydrate + PAPS ⟶ PAP + S-HNK1 carbohydrate
- N-glycan trimming and elongation in the cis-Golgi:
(GlcNAc)2 (Man)9 ⟶ (GlcNAc)2 (Man)5 (Asn)1 + Man
- Glycogen metabolism:
G1P + UTP ⟶ PPi + UDP-Glc
- Glycogen breakdown (glycogenolysis):
G1P ⟶ G6P
- Glucose metabolism:
ATP + PYR + carbon dioxide ⟶ ADP + OAA + Pi
- Gluconeogenesis:
ATP + PYR + carbon dioxide ⟶ ADP + OAA + Pi
- Glycolysis:
ATP + Fru(6)P ⟶ ADP + F1,6PP
- Metabolism of lipids:
3-oxopristanoyl-CoA + CoA-SH ⟶ 4,8,12-trimethyltridecanoyl-CoA + propionyl CoA
- Sphingolipid metabolism:
3-ketosphinganine + H+ + TPNH ⟶ SPA + TPN
- Glycosphingolipid metabolism:
GM1 ganglioside + H2O ⟶ GM2 ganglioside + Gal
- Glycogen metabolism:
((1,6)-alpha-glucosyl)poly((1,4)-alpha-glucosyl)GYG dimer ⟶ Glc + poly((1,4)-alpha-glucosyl)GYG dimer
- Glycogen breakdown (glycogenolysis):
((1,6)-alpha-glucosyl)poly((1,4)-alpha-glucosyl)GYG dimer ⟶ Glc + poly((1,4)-alpha-glucosyl)GYG dimer
- Glucose metabolism:
ATP + Fru(6)P ⟶ ADP + F1,6PP
- Gluconeogenesis:
2OG + L-Asp ⟶ L-Glu + OA
- Glycolysis:
ATP + Fru(6)P ⟶ ADP + F1,6PP
- Metabolism of lipids:
1-3-oxo-THA-CoA + CoA-SH ⟶ DHA-CoA + propionyl CoA
- Sphingolipid metabolism:
H2O + dehydroepiandrosterone sulfate ⟶ DHEA + SO4(2-)
- Glycosphingolipid metabolism:
H2O + dehydroepiandrosterone sulfate ⟶ DHEA + SO4(2-)
- Metabolism:
H2O + PBG ⟶ HMBL + ammonia
- Carbohydrate metabolism:
Glu + OAA ⟶ 2OG + L-Asp
- Glucose transport:
ATP + Glc ⟶ ADP + G6P
- Metabolism of proteins:
DOLP + UDP-GlcNAc ⟶ GlcNAcDOLDP + UMP
- Post-translational protein modification:
DOLP + UDP-GlcNAc ⟶ GlcNAcDOLDP + UMP
- Asparagine N-linked glycosylation:
DOLP + UDP-GlcNAc ⟶ GlcNAcDOLDP + UMP
- Transport to the Golgi and subsequent modification:
HNK1 carbohydrate + PAPS ⟶ PAP + S-HNK1 carbohydrate
- N-glycan trimming and elongation in the cis-Golgi:
(GlcNAc)2 (Man)9 ⟶ (GlcNAc)2 (Man)5 (Asn)1 + Man
- Glycogen metabolism:
((1,6)-alpha-glucosyl)poly((1,4)-alpha-glucosyl)GYG dimer ⟶ Glc + poly((1,4)-alpha-glucosyl)GYG dimer
- Glycogen breakdown (glycogenolysis):
((1,6)-alpha-glucosyl)poly((1,4)-alpha-glucosyl)GYG dimer ⟶ Glc + poly((1,4)-alpha-glucosyl)GYG dimer
- Glucose metabolism:
ATP + PYR + carbon dioxide ⟶ ADP + OAA + Pi
- Gluconeogenesis:
ATP + PYR + carbon dioxide ⟶ ADP + OAA + Pi
- Metabolism of lipids:
1-3-oxo-THA-CoA + CoA-SH ⟶ DHA-CoA + propionyl CoA
- Sphingolipid metabolism:
H2O + dehydroepiandrosterone sulfate ⟶ DHEA + SO4(2-)
- Glycosphingolipid metabolism:
H2O + dehydroepiandrosterone sulfate ⟶ DHEA + SO4(2-)
- Metabolism of proteins:
EIF5A + NAD + SPM ⟶ 1,3-diaminopropane + EIF5A(Dhp) + H+ + NADH
- Post-translational protein modification:
EIF5A + NAD + SPM ⟶ 1,3-diaminopropane + EIF5A(Dhp) + H+ + NADH
- Asparagine N-linked glycosylation:
DOLP + UDP-GlcNAc ⟶ GlcNAcDOLDP + UMP
- N-glycan trimming in the ER and Calnexin/Calreticulin cycle:
(un)folded protein:(GlcNAc)2 (Man)9 + H2O ⟶ Man + unfolded protein:(GlcNAc)2 (Man)8b
- Calnexin/calreticulin cycle:
(un)folded protein:(GlcNAc)2 (Man)9 + H2O ⟶ Man + unfolded protein:(GlcNAc)2 (Man)8b
- Transport to the Golgi and subsequent modification:
PAPS + glyco-Lutropin ⟶ PAP + S-glyco-Lutropin
- N-glycan trimming and elongation in the cis-Golgi:
(GlcNAc)2 (Man)9 ⟶ (GlcNAc)2 (Man)5 (Asn)1 + Man
- Glycogen metabolism:
((1,6)-alpha-glucosyl)poly((1,4)-alpha-glucosyl)GYG1 dimer ⟶ Glc + poly((1,4)-alpha-glucosyl)GYG1 dimer
- Glycogen breakdown (glycogenolysis):
((1,6)-alpha-glucosyl)poly((1,4)-alpha-glucosyl)GYG1 dimer ⟶ Glc + poly((1,4)-alpha-glucosyl)GYG1 dimer
- Glucose metabolism:
ATP + PYR + carbon dioxide ⟶ ADP + OAA + Pi
- Gluconeogenesis:
ATP + PYR + carbon dioxide ⟶ ADP + OAA + Pi
- Glycolysis:
ATP + Fru(6)P ⟶ ADP + F1,6PP
- Metabolism of lipids:
1-3-oxo-THA-CoA + CoA-SH ⟶ DHA-CoA + propionyl CoA
- Sphingolipid metabolism:
H2O + dehydroepiandrosterone sulfate ⟶ DHEA + SO4(2-)
- Glycosphingolipid metabolism:
H2O + dehydroepiandrosterone sulfate ⟶ DHEA + SO4(2-)
- Metabolism of proteins:
EIF5A + NAD + SPM ⟶ 1,3-diaminopropane + EIF5A(Dhp) + H+ + NADH
- Post-translational protein modification:
EIF5A + NAD + SPM ⟶ 1,3-diaminopropane + EIF5A(Dhp) + H+ + NADH
- Asparagine N-linked glycosylation:
DOLP + UDP-GlcNAc ⟶ GlcNAcDOLDP + UMP
- Transport to the Golgi and subsequent modification:
PAPS + glyco-Lutropin ⟶ PAP + S-glyco-Lutropin
- N-glycan trimming and elongation in the cis-Golgi:
(GlcNAc)2 (Man)9 ⟶ (GlcNAc)2 (Man)5 (Asn)1 + Man
- Mycobacterium tuberculosis biological processes:
CYSTA + H2O ⟶ 2OBUTA + L-Cys + ammonia
- Trehalose biosynthesis:
Mal ⟶ alpha,alpha-trehalose
- Glycogen metabolism:
AMP + PGYM dimer, b form ⟶ PGYM b dimer:AMP
- Glycogen breakdown (glycogenolysis):
AMP + PGYM dimer, b form ⟶ PGYM b dimer:AMP
- Glucose metabolism:
D-Fructose 1,6-bisphosphate + H2O ⟶ Fru(6)P + Pi
- Glycolysis:
ATP + Fru(6)P ⟶ ADP + D-Fructose 1,6-bisphosphate
- Metabolism of lipids:
H+ + LTHSOL + Oxygen + TPNH ⟶ 7-dehydroCHOL + H2O + TPN
- Sphingolipid metabolism:
3-ketosphinganine + H+ + TPNH ⟶ SPA + TPN
- Glycosphingolipid metabolism:
GM1 ganglioside + H2O ⟶ GM2 ganglioside + Gal
- Metabolism of proteins:
NAD + SPM ⟶ 1,3-diaminopropane + H+ + NADH
- Post-translational protein modification:
NAD + SPM ⟶ 1,3-diaminopropane + H+ + NADH
- Asparagine N-linked glycosylation:
DOLP + UDP-GlcNAc ⟶ GlcNAcDOLDP + UMP
- N-glycan trimming in the ER and Calnexin/Calreticulin cycle:
(un)folded protein:(GlcNAc)2 (Man)9 + H2O ⟶ Man + unfolded protein:(GlcNAc)2 (Man)8b
- Calnexin/calreticulin cycle:
(un)folded protein:(GlcNAc)2 (Man)9 + H2O ⟶ Man + unfolded protein:(GlcNAc)2 (Man)8b
- Metabolism:
2MACA-CoA + CoA ⟶ Ac-CoA + PROP-CoA
- Carbohydrate metabolism:
Glu + OAA ⟶ 2OG + L-Asp
- Glucose metabolism:
Glu + OAA ⟶ 2OG + L-Asp
- Glycolysis:
ADP + H+ + PEP ⟶ ATP + PYR
- Glycogen metabolism:
((1,6)-alpha-glucosyl)poly((1,4)-alpha-glucosyl)GYG1 dimer ⟶ Glc + poly((1,4)-alpha-glucosyl)GYG1 dimer
- Glycogen breakdown (glycogenolysis):
((1,6)-alpha-glucosyl)poly((1,4)-alpha-glucosyl)GYG1 dimer ⟶ Glc + poly((1,4)-alpha-glucosyl)GYG1 dimer
- Glucose metabolism:
ATP + PYR + carbon dioxide ⟶ ADP + OAA + Pi
- Gluconeogenesis:
ATP + PYR + carbon dioxide ⟶ ADP + OAA + Pi
- Glycolysis:
ATP + Fru(6)P ⟶ ADP + F1,6PP
- Metabolism of lipids:
1-3-oxo-THA-CoA + CoA-SH ⟶ DHA-CoA + propionyl CoA
- Sphingolipid metabolism:
H2O + dehydroepiandrosterone sulfate ⟶ DHEA + SO4(2-)
- Glycosphingolipid metabolism:
H2O + dehydroepiandrosterone sulfate ⟶ DHEA + SO4(2-)
- Metabolism of proteins:
EIF5A + NAD + SPM ⟶ 1,3-diaminopropane + EIF5A(Dhp) + H+ + NADH
- Post-translational protein modification:
EIF5A + NAD + SPM ⟶ 1,3-diaminopropane + EIF5A(Dhp) + H+ + NADH
- Asparagine N-linked glycosylation:
DOLP + UDP-GlcNAc ⟶ GlcNAcDOLDP + UMP
- Transport to the Golgi and subsequent modification:
PAPS + glyco-Lutropin ⟶ PAP + S-glyco-Lutropin
- N-glycan trimming and elongation in the cis-Golgi:
(GlcNAc)2 (Man)9 ⟶ (GlcNAc)2 (Man)5 (Asn)1 + Man
- Glycogen metabolism:
((1,6)-alpha-glucosyl)poly((1,4)-alpha-glucosyl)GYG dimer ⟶ Glc + poly((1,4)-alpha-glucosyl)GYG dimer
- Glycogen breakdown (glycogenolysis):
((1,6)-alpha-glucosyl)poly((1,4)-alpha-glucosyl)GYG dimer ⟶ Glc + poly((1,4)-alpha-glucosyl)GYG dimer
- Glucose metabolism:
ATP + PYR + carbon dioxide ⟶ ADP + OAA + Pi
- Glycolysis:
ATP + Fru(6)P ⟶ ADP + F1,6PP
- Glycogen metabolism:
H2O + glycogen-GYG1 dimer ⟶ Glc + poly((1,4)-alpha-glucosyl)GYG1 dimer
- Glycogen breakdown (glycogenolysis):
H2O + glycogen-GYG1 dimer ⟶ Glc + poly((1,4)-alpha-glucosyl)GYG1 dimer
- Glucose metabolism:
ATP + PYR + carbon dioxide ⟶ ADP + OAA + Pi
- Glycolysis:
ATP + Fru(6)P ⟶ ADP + F1,6PP
- Glycogen metabolism:
((1,6)-alpha-glucosyl)poly((1,4)-alpha-glucosyl)GYG dimer ⟶ Glc + poly((1,4)-alpha-glucosyl)GYG dimer
- Glycogen breakdown (glycogenolysis):
((1,6)-alpha-glucosyl)poly((1,4)-alpha-glucosyl)GYG dimer ⟶ Glc + poly((1,4)-alpha-glucosyl)GYG dimer
- Glucose metabolism:
ATP + PYR + carbon dioxide ⟶ ADP + OAA + Pi
- Gluconeogenesis:
ATP + PYR + carbon dioxide ⟶ ADP + OAA + Pi
- Glycolysis:
ATP + Fru(6)P ⟶ ADP + F1,6PP
- Metabolism of lipids:
ATP + PROP-CoA + carbon dioxide ⟶ ADP + MEMA-CoA + Pi
- Sphingolipid metabolism:
H2O + dehydroepiandrosterone sulfate ⟶ DHEA + SO4(2-)
- Glycosphingolipid metabolism:
H2O + dehydroepiandrosterone sulfate ⟶ DHEA + SO4(2-)
- Metabolism of proteins:
EIF5A + NAD + SPM ⟶ 1,3-diaminopropane + EIF5A(Dhp) + H+ + NADH
- Post-translational protein modification:
EIF5A + NAD + SPM ⟶ 1,3-diaminopropane + EIF5A(Dhp) + H+ + NADH
- Asparagine N-linked glycosylation:
DOLP + UDP-GlcNAc ⟶ GlcNAcDOLDP + UMP
- Transport to the Golgi and subsequent modification:
PAPS + glyco-Lutropin ⟶ PAP + S-glyco-Lutropin
- N-glycan trimming and elongation in the cis-Golgi:
(GlcNAc)2 (Man)9 ⟶ (GlcNAc)2 (Man)5 (Asn)1 + Man
- Metabolism of proteins:
EIF5A2 + NAD + SPM ⟶ 1,3-diaminopropane + H+ + H0ZKZ7 + NADH
- Post-translational protein modification:
EIF5A2 + NAD + SPM ⟶ 1,3-diaminopropane + H+ + H0ZKZ7 + NADH
- Asparagine N-linked glycosylation:
DOLP + UDP-GlcNAc ⟶ GlcNAcDOLDP + UMP
- Transport to the Golgi and subsequent modification:
HNK1 carbohydrate + PAPS ⟶ PAP + S-HNK1 carbohydrate
- N-glycan trimming and elongation in the cis-Golgi:
(GlcNAc)2 (Man)9 ⟶ (GlcNAc)2 (Man)5 (Asn)1 + Man
- Glycogen metabolism:
ATP + PGYL dimer b form ⟶ ADP + PGYL dimer a form
- Glycogen breakdown (glycogenolysis):
ATP + PGYL dimer b form ⟶ ADP + PGYL dimer a form
- Glucose metabolism:
ADP + Glc ⟶ AMP + G6P
- Gluconeogenesis:
D-Fructose 1,6-bisphosphate + H2O ⟶ Fru(6)P + Pi
- Glycolysis:
ADP + Glc ⟶ AMP + G6P
- Metabolism of lipids:
1-3-oxo-THA-CoA + CoA-SH ⟶ DHA-CoA + propionyl CoA
- Sphingolipid metabolism:
H2O + dehydroepiandrosterone sulfate ⟶ DHEA + SO4(2-)
- Glycosphingolipid metabolism:
H2O + dehydroepiandrosterone sulfate ⟶ DHEA + SO4(2-)
- Glycogen metabolism:
((1,6)-alpha-glucosyl)poly((1,4)-alpha-glucosyl)GYG1 dimer ⟶ Glc + poly((1,4)-alpha-glucosyl)GYG1 dimer
- Glycogen breakdown (glycogenolysis):
((1,6)-alpha-glucosyl)poly((1,4)-alpha-glucosyl)GYG1 dimer ⟶ Glc + poly((1,4)-alpha-glucosyl)GYG1 dimer
- Glucose metabolism:
ATP + PYR + carbon dioxide ⟶ ADP + OAA + Pi
- Gluconeogenesis:
ATP + PYR + carbon dioxide ⟶ ADP + OAA + Pi
- Glycolysis:
ATP + Fru(6)P ⟶ ADP + F1,6PP
- Metabolism of proteins:
NAD + SPM + eif5a ⟶ 1,3-diaminopropane + H+ + NADH + eif5a
- Post-translational protein modification:
NAD + SPM + eif5a ⟶ 1,3-diaminopropane + H+ + NADH + eif5a
- Asparagine N-linked glycosylation:
DOLP + UDP-GlcNAc ⟶ GlcNAcDOLDP + UMP
- Transport to the Golgi and subsequent modification:
PAPS + glyco-Lutropin ⟶ PAP + S-glyco-Lutropin
- N-glycan trimming and elongation in the cis-Golgi:
(GlcNAc)2 (Man)9 ⟶ (GlcNAc)2 (Man)5 (Asn)1 + Man
- Glycosphingolipid catabolism:
GM2A:GM2 + H2O ⟶ GM2A + GM3 ganglioside + GalNAc
- Glycosphingolipid catabolism:
GM2A:GM2 + H2O ⟶ GM2A(32-193) + GM3 ganglioside + GalNAc
- Glycosphingolipid catabolism:
GM2A:GM2 + H2O ⟶ GM2A + GM3 ganglioside + GalNAc
- Glycosphingolipid catabolism:
GlcCer + H2O ⟶ CERA + Glc
- Glycosphingolipid catabolism:
H2O + PSAP(195-273):Gb4Cer:PE ⟶ GalNAc + PSAP(195-273):Gb3Cer:PE
- Glycosphingolipid catabolism:
H2O + PSAP(195-273):Gb4Cer:PE ⟶ GalNAc + PSAP(195-273):Gb3Cer:PE
- Glycosphingolipid catabolism:
H2O + PSAP(195-273):Gb4Cer:PE ⟶ GalNAc + PSAP(195-273):Gb3Cer:PE
- Glycosphingolipid catabolism:
GM2A:GM2 + H2O ⟶ GM2A + GM3 ganglioside + GalNAc
- Glycosphingolipid catabolism:
GM2A:GM2 + H2O ⟶ GM3 ganglioside + GalNAc + Gm2a
- Glycosphingolipid catabolism:
GM2A:GM2 + H2O ⟶ GM3 ganglioside + GalNAc + Gm2a
- Glycosphingolipid catabolism:
GM2A:GM2 + H2O ⟶ GM2A + GM3 ganglioside + GalNAc
BioCyc(48)
- starch degradation:
H2O + a 1,4-α-D-glucan ⟶ α-maltose + a 1,4-α-D-glucan
- starch degradation:
α-maltose + H2O ⟶ α-D-glucose
- starch degradation V:
H2O + starch ⟶ D-glucopyranose + a maltodextrin + maltose
- sucrose degradation III:
β-D-fructofuranose + UDP-D-glucose ⟶ UDP + sucrose
- sucrose degradation III:
β-D-fructofuranose + UDP-D-glucose ⟶ UDP + sucrose
- sucrose degradation III:
β-D-fructofuranose + UDP-D-glucose ⟶ UDP + sucrose
- sucrose degradation V (mammalian):
α-D-glucose ⟶ β-D-glucose
- sucrose degradation:
H2O + sucrose ⟶ α-D-glucose + β-D-fructofuranose
- sucrose degradation V (mammalian):
α-D-glucose ⟶ β-D-glucose
- sucrose degradation III:
H2O + sucrose ⟶ α-D-glucose + β-D-fructofuranose
- trehalose degradation V:
β-D-glucose + ATP ⟶ β-D-glucose-6-phosphate + ADP + H+
- protein N-glycosylation processing phase (mammalian):
Glc3Man9GlcNAc2-[protein] + H2O ⟶ β-D-glucopyranose + Glc2Man9GlcNAc2-[protein]
- trehalose degradation:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- protein N-glycosylation processing phase (yeast):
GlcMan9GlcNAc2-[protein] + H2O ⟶ α-D-glucopyranose + Man9GlcNAc2-[protein] (isomer 9A1,2,3B1,2,3)
- chitin biosynthesis:
UDP-N-acetyl-α-D-glucosamine + chitin ⟶ UDP + chitin
- trehalose degradation VI (periplasmic):
α-D-glucopyranose ⟶ β-D-glucopyranose
- trehalose degradation V:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- trehalose degradation II (cytosolic):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- protein N-glycosylation processing phase (plants and animals):
GlcMan9GlcNAc2-[protein] + H2O ⟶ α-D-glucopyranose + Man9GlcNAc2-[protein] (isomer 9A1,2,3B1,2,3)
- trehalose degradation II (cytosolic):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- trehalose degradation VI (periplasmic):
α-D-glucopyranose ⟶ β-D-glucopyranose
- protein N-glycosylation (yeast) processing in the ER:
Glc3Man9GlcNAc2-[protein] + H2O ⟶ β-D-glucopyranose + Glc2Man9GlcNAc2-[protein]
- trehalose degradation II (cytosolic):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- trehalose degradation VI (periplasmic):
α-D-glucopyranose ⟶ β-D-glucopyranose
- chitin biosynthesis:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- trehalose degradation II (trehalase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- UDP-galactose biosynthesis:
α-D-galactose + ATP ⟶ α-D-galactose 1-phosphate + ADP + H+
- Entner-Doudoroff pathway III (semi-phosphorylative):
α-D-glucose ⟶ β-D-glucose
- trehalose degradation II (trehalase):
α,α-trehalose + H2O ⟶ α-D-glucose + β-D-glucose
- trehalose degradation VI (periplasmic):
α,α-trehalose + H2O ⟶ α-D-glucose + β-D-glucose
- trehalose degradation II (cytosolic):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- trehalose degradation VI (periplasmic):
α,α-trehalose + H2O ⟶ α-D-glucopyranose + β-D-glucopyranose
- trehalose degradation II (trehalase):
β-D-glucose + ATP ⟶ β-D-glucose 6-phosphate + ADP + H+
- trehalose degradation II (trehalase):
α,α-trehalose + H2O ⟶ α-D-glucose + β-D-glucose
- trehalose degradation V:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- trehalose degradation II (trehalase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- glycogen degradation I:
maltose + maltotriose ⟶ β-D-glucose + maltotetraose
- trehalose degradation II (trehalase):
β-D-glucose + ATP ⟶ β-D-glucose 6-phosphate + ADP + H+
- trehalose degradation VI (periplasmic):
α-D-glucose ⟶ β-D-glucose
- trehalose degradation II (trehalase):
β-D-glucose + ATP ⟶ β-D-glucose 6-phosphate + ADP + H+
- trehalose degradation VI (periplasmic):
α-D-glucose ⟶ β-D-glucose
- glycogen degradation I:
maltose + maltotriose ⟶ β-D-glucose + maltotetraose
- glycogen degradation I:
β-D-glucose + ATP ⟶ β-D-glucose 6-phosphate + ADP + H+
- glycogen degradation I:
β-D-glucose + ATP ⟶ β-D-glucose-6-phosphate + ADP + H+
- Entner-Doudoroff pathway III (semi-phosphorylative):
α-D-glucose ⟶ β-D-glucose
- Entner-Doudoroff pathway II (non-phosphorylative):
α-D-glucose ⟶ β-D-glucose
- glycogen degradation I:
β-D-glucose + ATP ⟶ β-D-glucose 6-phosphate + ADP + H+
- starch degradation V:
α-D-glucose ⟶ β-D-glucose
WikiPathways(3)
- Glucose-1-phosphate metabolism:
UDP-D-glucose ⟶ (1,4-alpha-D-glucosyl)n - R
- Glycolysis and gluconeogenesis:
Phosphoenolpyruvate ⟶ Pyruvate
- Starch and cellulose biosynthesis:
1,4-alpha-D-Glucan ⟶ maltose
Plant Reactome(613)
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
H2O + alpha,alpha-trehalose ⟶ beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
FAD + PROP-CoA ⟶ FADH2 + acryloyl-CoA
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
(1,4-alpha-glycosyl)n + ADP-D-glucose ⟶ (1,4-alpha-glycosyl)n + ADP
- Growth and developmental processes:
PIN/IAA ⟶ IAA
- Reproductive structure development:
PIN/IAA ⟶ IAA
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
FAD + PROP-CoA ⟶ FADH2 + acryloyl-CoA
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
FAD + PROP-CoA ⟶ FADH2 + acryloyl-CoA
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
FAD + PROP-CoA ⟶ FADH2 + acryloyl-CoA
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
FAD + PROP-CoA ⟶ FADH2 + acryloyl-CoA
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
PIN/IAA ⟶ IAA
- Reproductive structure development:
PIN/IAA ⟶ IAA
- Metabolism and regulation:
FAD + PROP-CoA ⟶ FADH2 + acryloyl-CoA
- Carbohydrate metabolism:
ATP + beta-D-glucose ⟶ ADP + H+ + beta-D-glucose-6-phosphate
- Starch biosynthesis:
(1,4-alpha-glycosyl)n + ADP-D-glucose ⟶ (1,4-alpha-glycosyl)n + ADP
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
FAD + PROP-CoA ⟶ FADH2 + acryloyl-CoA
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
FAD + PROP-CoA ⟶ FADH2 + acryloyl-CoA
- Carbohydrate metabolism:
H2O + alpha,alpha-trehalose ⟶ beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
FAD + PROP-CoA ⟶ FADH2 + acryloyl-CoA
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
FAD + PROP-CoA ⟶ FADH2 + acryloyl-CoA
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
FAD + PROP-CoA ⟶ FADH2 + acryloyl-CoA
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
FAD + PROP-CoA ⟶ FADH2 + acryloyl-CoA
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
FAD + PROP-CoA ⟶ FADH2 + acryloyl-CoA
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
FAD + PROP-CoA ⟶ FADH2 + acryloyl-CoA
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
PIN/IAA ⟶ IAA
- Reproductive structure development:
PIN/IAA ⟶ IAA
- Metabolism and regulation:
FAD + PROP-CoA ⟶ FADH2 + acryloyl-CoA
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
(1,4-alpha-glycosyl)n + ADP-D-glucose ⟶ (1,4-alpha-glycosyl)n + ADP
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
FAD + PROP-CoA ⟶ FADH2 + acryloyl-CoA
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
FAD + PROP-CoA ⟶ FADH2 + acryloyl-CoA
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
PIN/IAA ⟶ IAA
- Reproductive structure development:
PIN/IAA ⟶ IAA
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
(1,4-alpha-glycosyl)n + ADP-D-glucose ⟶ (1,4-alpha-glycosyl)n + ADP
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
L-Glu + imidazole acetol-phosphate ⟶ 2OG + L-histidinol-phosphate
- Carbohydrate metabolism:
H2O + alpha,alpha-trehalose ⟶ beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
FAD + PROP-CoA ⟶ FADH2 + acryloyl-CoA
- Carbohydrate metabolism:
ATP + beta-D-glucose ⟶ ADP + H+ + beta-D-glucose-6-phosphate
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
FAD + PROP-CoA ⟶ FADH2 + acryloyl-CoA
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
FAD + PROP-CoA ⟶ FADH2 + acryloyl-CoA
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
FAD + PROP-CoA ⟶ FADH2 + acryloyl-CoA
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
L-Glu + imidazole acetol-phosphate ⟶ 2OG + L-histidinol-phosphate
- Carbohydrate metabolism:
ATP + Glycerol ⟶ ADP + G3P
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
FAD + PROP-CoA ⟶ FADH2 + acryloyl-CoA
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
FAD + PROP-CoA ⟶ FADH2 + acryloyl-CoA
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
ATP + CoA + propionate ⟶ AMP + PPi + PROP-CoA
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
AMP + DMAPP ⟶ PPi + isopentenyladenosine-5'-monophosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
PIN/IAA ⟶ IAA
- Regulatory network of nutrient accumulation:
(1,4-alpha-glycosyl)n + ADP-D-glucose ⟶ (1,4-alpha-glycosyl)n + ADP
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
PIN/IAA ⟶ IAA
- Regulatory network of nutrient accumulation:
(1,4-alpha-glycosyl)n + ADP-D-glucose ⟶ (1,4-alpha-glycosyl)n + ADP
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
PIN/IAA ⟶ IAA
- Regulatory network of nutrient accumulation:
(1,4-alpha-glycosyl)n + ADP-D-glucose ⟶ (1,4-alpha-glycosyl)n + ADP
- Metabolism and regulation:
CoA + NAD + methylmalonate-semialdehyde ⟶ NADH + PROP-CoA + carbon dioxide
- Carbohydrate metabolism:
Suc ⟶ 1-kestose + beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
PIN/IAA ⟶ IAA
- Regulatory network of nutrient accumulation:
(1,4-alpha-glycosyl)n + ADP-D-glucose ⟶ (1,4-alpha-glycosyl)n + ADP
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Metabolism and regulation:
L-Glu + imidazole acetol-phosphate ⟶ 2OG + L-histidinol-phosphate
- Carbohydrate metabolism:
H2O + alpha,alpha-trehalose ⟶ beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- Metabolism and regulation:
FAD + PROP-CoA ⟶ FADH2 + acryloyl-CoA
- Carbohydrate metabolism:
H2O + alpha,alpha-trehalose ⟶ beta-D-glucose
- Starch biosynthesis:
(1,4-alpha-glycosyl)n ⟶ starch
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- Metabolism and regulation:
L-Glu + imidazole acetol-phosphate ⟶ 2OG + L-histidinol-phosphate
- Carbohydrate metabolism:
H2O + alpha,alpha-trehalose ⟶ beta-D-glucose
- Starch biosynthesis:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- glycolysis IV:
G6P ⟶ Fru(6)P
- glycolysis I:
Glc6P ⟶ Fru(6)P
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Growth and developmental processes:
ROP-GDP (LOC_Os02g02840-GDP) ⟶ ROP-GTP (LOC_Os02g02840-GTP)
- Reproductive structure development:
ROP-GDP (LOC_Os02g02840-GDP) ⟶ ROP-GTP (LOC_Os02g02840-GTP)
- Seed development:
ROP-GDP (LOC_Os02g02840-GDP) ⟶ ROP-GTP (LOC_Os02g02840-GTP)
- Regulatory network of nutrient accumulation:
(1,4-alpha-glycosyl)n ⟶ starch
- glycolysis I:
GA3P + Pi + TPN ⟶ 1,3-Bisphospho-D-glycerate + H+ + TPNH
- Growth and developmental processes:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Reproductive structure development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Seed development:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
- Regulatory network of nutrient accumulation:
Fru(6)P ⟶ beta-D-glucose-6-phosphate
INOH(0)
PlantCyc(1410)
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnin interconversion:
H2O + daphnin ⟶ D-glucopyranose + daphnetin
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
D-glucopyranose + daphnetin ⟶ H2O + daphnetin-8-glucoside
- daphnetin modification:
SAM + daphnetin ⟶ 7-hydroxy-8-methoxycoumarin + H+ + SAH
- daphnetin modification:
SAM + daphnetin ⟶ 7-hydroxy-8-methoxycoumarin + H+ + SAH
- sinapate ester biosynthesis:
1-O-sinapoyl-β-D-glucose + choline ⟶ O-sinapoylcholine + D-glucopyranose
- sinapate ester biosynthesis:
(S)-malate + 1-O-sinapoyl-β-D-glucose ⟶ D-glucopyranose + sinapoyl-(S)-malate
- sinapate ester biosynthesis:
O-sinapoylcholine + H2O ⟶ H+ + choline + sinapate
- sinapate ester biosynthesis:
1-O-sinapoyl-β-D-glucose ⟶ 1,2-di-O-sinapoyl-β-D-glucose + D-glucopyranose
- sinapate ester biosynthesis:
(S)-malate + 1-O-sinapoyl-β-D-glucose ⟶ D-glucopyranose + sinapoyl-(S)-malate
- sinapate ester biosynthesis:
1-O-sinapoyl-β-D-glucose + choline ⟶ O-sinapoylcholine + D-glucopyranose
- sinapate ester biosynthesis:
1-O-sinapoyl-β-D-glucose + choline ⟶ O-sinapoylcholine + D-glucopyranose
- sinapate ester biosynthesis:
1-O-sinapoyl-β-D-glucose + choline ⟶ O-sinapoylcholine + D-glucopyranose
- sinapate ester biosynthesis:
1-O-sinapoyl-β-D-glucose ⟶ 1,2-di-O-sinapoyl-β-D-glucose + D-glucopyranose
- sinapate ester biosynthesis:
1-O-sinapoyl-β-D-glucose + choline ⟶ O-sinapoylcholine + D-glucopyranose
- sinapate ester biosynthesis:
1-O-sinapoyl-β-D-glucose + choline ⟶ O-sinapoylcholine + D-glucopyranose
- sinapate ester biosynthesis:
O-sinapoylcholine + H2O ⟶ H+ + choline + sinapate
- glycogen biosynthesis I (from ADP-D-Glucose):
α-D-glucopyranose 1-phosphate + ATP + H+ ⟶ ADP-α-D-glucose + diphosphate
- camptothecin biosynthesis:
deoxypumiloside ⟶ D-glucopyranose + camptothecin
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
UDP-α-D-glucose + coniferyl alcohol ⟶ H+ + UDP + coniferin
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
UDP-α-D-glucose + coniferyl alcohol ⟶ H+ + UDP + coniferin
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
H2O + coniferin ⟶ D-glucopyranose + coniferyl alcohol
- coniferin metabolism:
UDP-α-D-glucose + coniferyl alcohol ⟶ H+ + UDP + coniferin
- fructan biosynthesis:
1-kestotriose + sucrose ⟶ 1,6-kestotetraose + D-glucopyranose
- fructan biosynthesis:
1-kestotriose + sucrose ⟶ 1,6-kestotetraose + D-glucopyranose
- fructan biosynthesis:
1-kestotriose + sucrose ⟶ 1,6-kestotetraose + D-glucopyranose
- fructan biosynthesis:
sucrose ⟶ 1-kestotriose + D-glucopyranose
- fructan biosynthesis:
sucrose ⟶ 1-kestotriose + D-glucopyranose
- fructan biosynthesis:
1-kestotriose + sucrose ⟶ 1,6-kestotetraose + D-glucopyranose
- fructan biosynthesis:
1-kestotriose + sucrose ⟶ 1,6-kestotetraose + D-glucopyranose
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
(Z)-6'-hydroxyferulate ⟶ scopoletin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- cichoriin interconversion:
H2O + cichoriin ⟶ D-glucopyranose + esculetin
- esculetin modification:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- esculetin modification:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- esculetin modification:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
UDP-α-D-glucose + scopoletin ⟶ H+ + UDP + scopolin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- superpathway of scopolin and esculin biosynthesis:
H2O + esculin ⟶ D-glucopyranose + esculetin
- sucrose biosynthesis II:
D-glucopyranose + a plant soluble heteroglycan ⟶ a plant soluble heteroglycan + maltose
- starch degradation I:
H2O + maltose ⟶ D-glucopyranose
- starch degradation I:
H2O + maltose ⟶ D-glucopyranose
- sucrose biosynthesis II:
D-glucopyranose + a plant soluble heteroglycan ⟶ a plant soluble heteroglycan + maltose
- sucrose biosynthesis II:
D-glucopyranose + a plant soluble heteroglycan ⟶ a plant soluble heteroglycan + maltose
- sucrose biosynthesis II:
D-glucopyranose + a plant soluble heteroglycan ⟶ a plant soluble heteroglycan + maltose
- sucrose biosynthesis II:
D-glucopyranose + a plant soluble heteroglycan ⟶ a plant soluble heteroglycan + maltose
- sucrose biosynthesis II:
H2O + sucrose 6F-phosphate ⟶ phosphate + sucrose
- amygdalin and prunasin degradation:
(R)-amygdalin + H2O ⟶ (R)-prunasin + D-glucopyranose
- amygdalin and prunasin degradation:
(R)-prunasin + H2O ⟶ (R)-mandelonitrile + D-glucopyranose
- daidzein conjugates interconversion:
H2O + daidzin ⟶ D-glucopyranose + daidzein
- daidzein conjugates interconversion:
H2O + malonyldaidzin ⟶ H+ + daidzin + malonate
- afrormosin conjugates interconversion:
H2O + afrormosin-7-O-glucoside ⟶ D-glucopyranose + afrormosin
- genistein conjugates interconversion:
H2O + genistin ⟶ D-glucopyranose + H+ + genistein
- genistein conjugates interconversion:
H2O + genistin ⟶ D-glucopyranose + H+ + genistein
- DIMBOA-glucoside activation:
DIMBOA-β-D-glucoside + H2O ⟶ D-glucopyranose + DIMBOA + H+
- DIMBOA-glucoside activation:
DIMBOA-β-D-glucoside + H2O ⟶ D-glucopyranose + DIMBOA + H+
- DIMBOA-glucoside activation:
DIMBOA-β-D-glucoside + H2O ⟶ D-glucopyranose + DIMBOA + H+
- anthocyanidin 3-malylglucoside biosynthesis (acyl-glucose dependent):
1-O-malyl-β-D-glucose + cyanidin-3-O-β-D-glucoside ⟶ D-glucopyranose + cyanidin 3-O-(6'-O-malyl-β-D-glucoside)
- galloylated catechin biosynthesis:
UDP-α-D-glucose + gallate ⟶ 1-O-galloyl-β-D-glucose + UDP
- glucose and glucose-1-phosphate degradation:
α-D-glucopyranose 1-phosphate + H2O ⟶ D-glucopyranose + phosphate
- glucose and glucose-1-phosphate degradation:
D-glucopyranose + UQ ⟶ D-glucono-1,5-lactone + UQH2
- glucose and glucose-1-phosphate degradation:
α-D-glucopyranose 1-phosphate + H2O ⟶ D-glucopyranose + phosphate
- glucose and glucose-1-phosphate degradation:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- glucose and glucose-1-phosphate degradation:
α-D-glucopyranose 1-phosphate + H2O ⟶ D-glucopyranose + phosphate
- glucose and glucose-1-phosphate degradation:
α-D-glucopyranose 1-phosphate + H2O ⟶ D-glucopyranose + phosphate
- glucose and glucose-1-phosphate degradation:
α-D-glucopyranose 1-phosphate + H2O ⟶ D-glucopyranose + phosphate
- glucose and glucose-1-phosphate degradation:
D-glucopyranose + UQ ⟶ D-glucono-1,5-lactone + UQH2
- glucose and glucose-1-phosphate degradation:
α-D-glucopyranose 1-phosphate + H2O ⟶ D-glucopyranose + phosphate
- glucose and glucose-1-phosphate degradation:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- glucose and glucose-1-phosphate degradation:
α-D-glucopyranose 1-phosphate + H2O ⟶ D-glucopyranose + phosphate
- glucose and glucose-1-phosphate degradation:
α-D-glucopyranose 1-phosphate + H2O ⟶ D-glucopyranose + phosphate
- glucose and glucose-1-phosphate degradation:
α-D-glucopyranose 1-phosphate + H2O ⟶ D-glucopyranose + phosphate
- glucose and glucose-1-phosphate degradation:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- glucose and glucose-1-phosphate degradation:
D-glucopyranose + UQ ⟶ D-glucono-1,5-lactone + UQH2
- glucose and glucose-1-phosphate degradation:
D-glucopyranose + UQ ⟶ D-glucono-1,5-lactone + UQH2
- glucose and glucose-1-phosphate degradation:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- glucose and glucose-1-phosphate degradation:
α-D-glucopyranose 1-phosphate + H2O ⟶ D-glucopyranose + phosphate
- glucose and glucose-1-phosphate degradation:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- glucose and glucose-1-phosphate degradation:
α-D-glucopyranose 1-phosphate + H2O ⟶ D-glucopyranose + phosphate
- glucose and glucose-1-phosphate degradation:
α-D-glucopyranose 1-phosphate + H2O ⟶ D-glucopyranose + phosphate
- glucose and glucose-1-phosphate degradation:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- glucose and glucose-1-phosphate degradation:
D-glucopyranose + UQ ⟶ D-glucono-1,5-lactone + UQH2
- glucose and glucose-1-phosphate degradation:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- glucose and glucose-1-phosphate degradation:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- glucose and glucose-1-phosphate degradation:
α-D-glucopyranose 1-phosphate + H2O ⟶ D-glucopyranose + phosphate
- glucose and glucose-1-phosphate degradation:
α-D-glucopyranose 1-phosphate + H2O ⟶ D-glucopyranose + phosphate
- glucose and glucose-1-phosphate degradation:
α-D-glucopyranose 1-phosphate + H2O ⟶ D-glucopyranose + phosphate
- glucose and glucose-1-phosphate degradation:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- glucose and glucose-1-phosphate degradation:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- glucose and glucose-1-phosphate degradation:
D-glucopyranose + UQ ⟶ D-glucono-1,5-lactone + UQH2
- glucose and glucose-1-phosphate degradation:
α-D-glucopyranose 1-phosphate + H2O ⟶ D-glucopyranose + phosphate
- glucose and glucose-1-phosphate degradation:
α-D-glucopyranose 1-phosphate + H2O ⟶ D-glucopyranose + phosphate
- glucose and glucose-1-phosphate degradation:
D-glucopyranose + UQ ⟶ D-glucono-1,5-lactone + UQH2
- glucose and glucose-1-phosphate degradation:
α-D-glucopyranose 1-phosphate + H2O ⟶ D-glucopyranose + phosphate
- glucose and glucose-1-phosphate degradation:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- glucose and glucose-1-phosphate degradation:
α-D-glucopyranose 1-phosphate + H2O ⟶ D-glucopyranose + phosphate
- glucose and glucose-1-phosphate degradation:
α-D-glucopyranose 1-phosphate + H2O ⟶ D-glucopyranose + phosphate
- glucose and glucose-1-phosphate degradation:
α-D-glucopyranose 1-phosphate + H2O ⟶ D-glucopyranose + phosphate
- glucose and glucose-1-phosphate degradation:
D-glucopyranose + UQ ⟶ D-glucono-1,5-lactone + UQH2
- glucose and glucose-1-phosphate degradation:
α-D-glucopyranose 1-phosphate + H2O ⟶ D-glucopyranose + phosphate
- glucose and glucose-1-phosphate degradation:
D-glucopyranose + UQ ⟶ D-glucono-1,5-lactone + UQH2
- glucose and glucose-1-phosphate degradation:
α-D-glucopyranose 1-phosphate + H2O ⟶ D-glucopyranose + phosphate
- glucose and glucose-1-phosphate degradation:
α-D-glucopyranose 1-phosphate + H2O ⟶ D-glucopyranose + phosphate
- glucose and glucose-1-phosphate degradation:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- glucose and glucose-1-phosphate degradation:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- glucose and glucose-1-phosphate degradation:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- glucose and glucose-1-phosphate degradation:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- glucose and glucose-1-phosphate degradation:
D-glucopyranose + UQ ⟶ D-glucono-1,5-lactone + UQH2
- glucose and glucose-1-phosphate degradation:
α-D-glucopyranose 1-phosphate + H2O ⟶ D-glucopyranose + phosphate
- glucose and glucose-1-phosphate degradation:
α-D-glucopyranose 1-phosphate + H2O ⟶ D-glucopyranose + phosphate
- glucose and glucose-1-phosphate degradation:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucopyranose + UQ ⟶ D-glucono-1,5-lactone + UQH2
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- glucose and glucose-1-phosphate degradation:
α-D-glucopyranose 1-phosphate + H2O ⟶ D-glucopyranose + phosphate
- formononetin conjugates interconversion:
H2O + ononin ⟶ D-glucopyranose + formononetin
- superpathway of formononetin derivative biosynthesis:
O2 + a reduced [NADPH-hemoprotein reductase] + formononetin ⟶ H2O + an oxidized [NADPH-hemoprotein reductase] + calycosin
- formononetin conjugates interconversion:
H2O + ononin ⟶ D-glucopyranose + formononetin
- superpathway of formononetin derivative biosynthesis:
O2 + a reduced [NADPH-hemoprotein reductase] + formononetin ⟶ H2O + an oxidized [NADPH-hemoprotein reductase] + calycosin
- hyoscyamine and scopolamine biosynthesis:
(S)-atropine + 2-oxoglutarate + O2 ⟶ (6S)-hydroxyhyoscyamine + CO2 + succinate
- superpathway of hyoscyamine and scopolamine biosynthesis:
N-methylputrescine + H2O + O2 ⟶ N-methylaminobutanal + ammonium + hydrogen peroxide
- hyoscyamine and scopolamine biosynthesis:
(S)-atropine + 2-oxoglutarate + O2 ⟶ (6S)-hydroxyhyoscyamine + CO2 + succinate
- superpathway of hyoscyamine and scopolamine biosynthesis:
N-methylputrescine + H2O + O2 ⟶ N-methylaminobutanal + ammonium + hydrogen peroxide
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- sorbitol biosynthesis II:
keto-D-fructose + D-glucopyranose ⟶ D-glucono-1,5-lactone + D-sorbitol
- sorbitol biosynthesis II:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- crocetin biosynthesis:
heat + picrocrocin ⟶ D-glucopyranose + safranal
- medicarpin conjugates interconversion:
(-)-medicarpin-3-O-glucoside + H2O ⟶ (-)-medicarpin + D-glucopyranose
- medicarpin conjugates interconversion:
(-)-medicarpin-3-O-glucoside + H2O ⟶ (-)-medicarpin + D-glucopyranose
- indole-3-acetate inactivation IX:
1-O-(indol-3-ylacetyl)-β-D-glucose + myo-inositol ⟶ 1D-1-O-(indol-3-yl)acetyl-myo-inositol + D-glucopyranose
- superpathway of indole-3-acetate conjugate biosynthesis:
1-O-(indol-3-ylacetyl)-β-D-glucose + myo-inositol ⟶ 1D-1-O-(indol-3-yl)acetyl-myo-inositol + D-glucopyranose
- indole-3-acetate inactivation IX:
1-O-(indol-3-ylacetyl)-β-D-glucose + myo-inositol ⟶ 1D-1-O-(indol-3-yl)acetyl-myo-inositol + D-glucopyranose
- superpathway of indole-3-acetate conjugate biosynthesis:
1-O-(indol-3-ylacetyl)-β-D-glucose + myo-inositol ⟶ 1D-1-O-(indol-3-yl)acetyl-myo-inositol + D-glucopyranose
- superpathway of indole-3-acetate conjugate biosynthesis:
1-O-(indol-3-ylacetyl)-β-D-glucose + myo-inositol ⟶ 1D-1-O-(indol-3-yl)acetyl-myo-inositol + D-glucopyranose
- indole-3-acetate inactivation IX:
1-O-(indol-3-ylacetyl)-β-D-glucose + myo-inositol ⟶ 1D-1-O-(indol-3-yl)acetyl-myo-inositol + D-glucopyranose
- indole-3-acetate inactivation IX:
(indol-3-yl)acetate + UDP-α-D-glucose ⟶ 1-O-(indol-3-ylacetyl)-β-D-glucose + UDP
- superpathway of indole-3-acetate conjugate biosynthesis:
(indol-3-yl)acetate + ATP + gln ⟶ AMP + H+ + IAA-Gln + diphosphate
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- superpathway of sucrose and starch metabolism I (non-photosynthetic tissue):
α-amylose ⟶ amylopectin
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- superpathway of sucrose and starch metabolism I (non-photosynthetic tissue):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- superpathway of sucrose and starch metabolism I (non-photosynthetic tissue):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- superpathway of sucrose and starch metabolism I (non-photosynthetic tissue):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- superpathway of sucrose and starch metabolism I (non-photosynthetic tissue):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- superpathway of sucrose and starch metabolism I (non-photosynthetic tissue):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- sucrose degradation III (sucrose invertase):
H2O + sucrose ⟶ β-D-fructofuranose + D-glucopyranose
- sucrose degradation III (sucrose invertase):
D-glucopyranose 6-phosphate ⟶ F6P
- linustatin bioactivation:
H2O + linamarin ⟶ 2-hydroxy-2-methylpropanenitrile + D-glucopyranose
- linustatin bioactivation:
H2O + linustatin ⟶ D-glucopyranose + linamarin
- neolinustatin bioactivation:
H2O + lotaustralin ⟶ (2R)-2-hydroxy-2-methylbutanenitrile + D-glucopyranose
- neolinustatin bioactivation:
H2O + neolinustatin ⟶ D-glucopyranose + lotaustralin
- maackiain conjugates interconversion:
(-)-maackiain-3-O-glucoside + H2O ⟶ (-)-maackiain + D-glucopyranose
- maackiain conjugates interconversion:
(-)-maackiain-3-O-glucoside + H2O ⟶ (-)-maackiain + D-glucopyranose
- lotaustralin degradation:
H2O + lotaustralin ⟶ (2R)-2-hydroxy-2-methylbutanenitrile + D-glucopyranose
- lotaustralin degradation:
H2O + lotaustralin ⟶ (2R)-2-hydroxy-2-methylbutanenitrile + D-glucopyranose
- lotaustralin degradation:
H2O + lotaustralin ⟶ (2R)-2-hydroxy-2-methylbutanenitrile + D-glucopyranose
- lotaustralin degradation:
H2O + lotaustralin ⟶ (2R)-2-hydroxy-2-methylbutanenitrile + D-glucopyranose
- acylated cyanidin galactoside biosynthesis:
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-(6-O-β-D-glucosyl-2-O-β-D-xylosyl-β-D-galactoside) ⟶ D-glucopyranose + H+ + cyanidin O-O-[6-O-(6-O-sinapoyl-β-D-glucosyl)-2-O-β-D-xylosyl-β-D-galactoside]
- indole-3-acetate activation II:
4-O-(indol-3-ylacetyl)-β-D-glucose + H2O ⟶ (indol-3-yl)acetate + D-glucopyranose + H+
- starch biosynthesis:
D-glucopyranose 6-phosphate ⟶ F6P
- starch biosynthesis:
D-glucopyranose 6-phosphate ⟶ F6P
- starch biosynthesis:
D-glucopyranose 6-phosphate ⟶ F6P
- starch biosynthesis:
α-D-glucopyranose 1-phosphate ⟶ D-glucopyranose 6-phosphate
- starch biosynthesis:
α-D-glucopyranose 1-phosphate ⟶ D-glucopyranose 6-phosphate
- starch biosynthesis:
D-glucopyranose 6-phosphate ⟶ F6P
- starch biosynthesis:
α-D-glucopyranose 1-phosphate ⟶ D-glucopyranose 6-phosphate
- starch biosynthesis:
α-D-glucopyranose 1-phosphate ⟶ D-glucopyranose 6-phosphate
- starch biosynthesis:
α-D-glucopyranose 1-phosphate ⟶ D-glucopyranose 6-phosphate
- starch biosynthesis:
α-D-glucopyranose 1-phosphate ⟶ D-glucopyranose 6-phosphate
- starch biosynthesis:
D-glucopyranose 6-phosphate ⟶ F6P
- starch biosynthesis:
D-glucopyranose 6-phosphate ⟶ F6P
- starch biosynthesis:
α-D-glucopyranose 1-phosphate ⟶ D-glucopyranose 6-phosphate
- starch biosynthesis:
α-D-glucopyranose 1-phosphate ⟶ D-glucopyranose 6-phosphate
- starch biosynthesis:
D-glucopyranose 6-phosphate ⟶ F6P
- starch biosynthesis:
D-glucopyranose 6-phosphate ⟶ F6P
- starch biosynthesis:
α-D-glucopyranose 1-phosphate ⟶ D-glucopyranose 6-phosphate
- starch biosynthesis:
D-glucopyranose 6-phosphate ⟶ F6P
- starch biosynthesis:
α-D-glucopyranose 1-phosphate ⟶ D-glucopyranose 6-phosphate
- starch biosynthesis:
D-glucopyranose 6-phosphate ⟶ F6P
- starch biosynthesis:
D-glucopyranose 6-phosphate ⟶ F6P
- starch biosynthesis:
D-glucopyranose 6-phosphate ⟶ F6P
- starch biosynthesis:
D-glucopyranose 6-phosphate ⟶ F6P
- starch biosynthesis:
α-D-glucopyranose 1-phosphate ⟶ D-glucopyranose 6-phosphate
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- cyanidin diglucoside biosynthesis (acyl-glucose dependent):
H2O + cyanidin 3,7-di-O-β-D-glucoside ⟶ D-glucopyranose + H+ + cyanidin-3-O-β-D-glucoside
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- glucosinolate activation:
H2O + an aliphatic glucosinolate ⟶ D-glucopyranose + a thiohydroximate-O-sulfate
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- dhurrin degradation:
H2O + dhurrin ⟶ (S)-4-hydroxymandelonitrile + D-glucopyranose
- cyanidin diglucoside biosynthesis (acyl-glucose dependent):
H2O + cyanidin 3,7-di-O-β-D-glucoside ⟶ D-glucopyranose + H+ + cyanidin-3-O-β-D-glucoside
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- glucosinolate activation:
H2O + an aliphatic glucosinolate ⟶ D-glucopyranose + a thiohydroximate-O-sulfate
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ an exposed unphosphorylated, (α-1,6)-branched malto-oligosaccharide tail on amylopectin + maltose
- glucosinolate activation:
an N-(sulfonatooxy)alkanimidothioic acid ⟶ H+ + an isothiocyanate + sulfate
- trehalose degradation II (cytosolic):
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- indole glucosinolate activation (intact plant cell):
4-methoxy-3-indolylmethyl glucosinolate aglycone ⟶ 4-methoxy-3-indolylmethylisothiocyanate + sulfate
- gluconeogenesis III:
ATP + hydrogencarbonate + pyruvate ⟶ ADP + H+ + oxaloacetate + phosphate
- anthocyanidin modification (Arabidopsis):
UDP-α-D-xylose + cyanidin-3-O-β-D-glucoside ⟶ H+ + UDP + cyanidin 3-O-β-D-sambubioside
- glucose and glucose-1-phosphate degradation:
α-D-glucopyranose 1-phosphate + H2O ⟶ D-glucopyranose + phosphate
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- coumarin biosynthesis (via 2-coumarate):
H+ + coumarinate ⟶ H2O + coumarin
- indole glucosinolate activation (herbivore attack):
indole-3-carbinol ⟶ 3,3'-di(indol-3-yl)methane + H2O + formaldehyde
- GDP-glucose biosynthesis:
α-D-glucopyranose 1-phosphate + GTP + H+ ⟶ GDP-α-D-glucose + diphosphate
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- cyanidin diglucoside biosynthesis (acyl-glucose dependent):
H2O + cyanidin 3,7-di-O-β-D-glucoside ⟶ D-glucopyranose + H+ + cyanidin-3-O-β-D-glucoside
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- glucosinolate activation:
H2O + an alkenyl-glucosinolate ⟶ D-glucopyranose + a thiohydroximate-O-sulfate with a terminal alkene
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- glucosinolate activation:
H2O + a glucosinolate ⟶ D-glucopyranose + a thiohydroximate-O-sulfate
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- indole glucosinolate activation (herbivore attack):
H2O + glucobrassicin ⟶ D-glucopyranose + H+ + indol-3-yl-acetothiohydroxamate-O-sulfonate
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- glucosinolate activation:
H2O + a glucosinolate ⟶ D-glucopyranose + a thiohydroximate-O-sulfate
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- gluconeogenesis III:
D-glucopyranose 6-phosphate + H2O ⟶ D-glucopyranose + phosphate
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- glucosinolate activation:
H2O + a glucosinolate ⟶ D-glucopyranose + a thiohydroximate-O-sulfate
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- gluconeogenesis III:
D-glucopyranose 6-phosphate + H2O ⟶ D-glucopyranose + phosphate
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- biochanin A conjugates interconversion:
H2O + biochanin A-7-O-glucoside ⟶ D-glucopyranose + H+ + biochanin-A
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- cyanidin diglucoside biosynthesis (acyl-glucose dependent):
H2O + cyanidin 3,7-di-O-β-D-glucoside ⟶ D-glucopyranose + H+ + cyanidin-3-O-β-D-glucoside
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- linamarin degradation:
H2O + linamarin ⟶ 2-hydroxy-2-methylpropanenitrile + D-glucopyranose
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-glucoside ⟶ D-glucopyranose + delphinidin 3-O-rutinoside-7-O-(6-O-(p-hydroxybenzoyl)-glucoside)
- ajmaline and sarpagine biosynthesis:
3-α(S)-strictosidine + H2O ⟶ D-glucopyranose + strictosidine aglycone
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- glucosinolate activation:
H2O + a glucosinolate ⟶ D-glucopyranose + a thiohydroximate-O-sulfate
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3,7-di-O-β-D-glucoside ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(p-hydroxybenzoyl)-glucoside)
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- biochanin A conjugates interconversion:
H2O + biochanin A-7-O-glucoside ⟶ D-glucopyranose + H+ + biochanin-A
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- cyanidin diglucoside biosynthesis (acyl-glucose dependent):
H2O + cyanin ⟶ D-glucopyranose + H+ + cyanidin-3-O-β-D-glucoside
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3,7-di-O-β-D-glucoside ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(p-hydroxybenzoyl)-glucoside)
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3,7-di-O-β-D-glucoside ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(p-hydroxybenzoyl)-glucoside)
- DIMBOA-glucoside activation:
DIMBOA-β-D-glucoside + H2O ⟶ D-glucopyranose + DIMBOA + H+
- starch degradation I:
H2O + maltose ⟶ D-glucopyranose
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-glucoside ⟶ D-glucopyranose + delphinidin 3-O-rutinoside-7-O-(6-O-(p-hydroxybenzoyl)-glucoside)
- trehalose biosynthesis VI:
D-glucopyranose + an NDP-α-D-glucose ⟶ α,α-trehalose + H+ + a nucleoside diphosphate
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- ajmaline and sarpagine biosynthesis:
3-α(S)-strictosidine + H2O ⟶ D-glucopyranose + strictosidine aglycone
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- glucosinolate activation:
H2O + an aliphatic glucosinolate ⟶ D-glucopyranose + a thiohydroximate-O-sulfate
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- dhurrin degradation:
H2O + dhurrin ⟶ (S)-4-hydroxymandelonitrile + D-glucopyranose
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- cyanidin diglucoside biosynthesis (acyl-glucose dependent):
H2O + cyanidin 3,7-di-O-β-D-glucoside ⟶ D-glucopyranose + H+ + cyanidin-3-O-β-D-glucoside
- dhurrin degradation:
H2O + dhurrin ⟶ (S)-4-hydroxymandelonitrile + D-glucopyranose
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- gluconeogenesis III:
D-glucopyranose 6-phosphate + H2O ⟶ D-glucopyranose + phosphate
- glucosinolate activation:
H2O + a glucosinolate ⟶ D-glucopyranose + a thiohydroximate-O-sulfate
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- melibiose degradation:
H2O + melibiose ⟶ D-galactopyranose + D-glucopyranose
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- gluconeogenesis III:
D-glucopyranose 6-phosphate + H2O ⟶ D-glucopyranose + phosphate
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- gluconeogenesis III:
D-glucopyranose 6-phosphate + H2O ⟶ D-glucopyranose + phosphate
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- gluconeogenesis III:
D-glucopyranose 6-phosphate + H2O ⟶ D-glucopyranose + phosphate
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- cyanidin diglucoside biosynthesis (acyl-glucose dependent):
H2O + cyanin ⟶ D-glucopyranose + H+ + cyanidin-3-O-β-D-glucoside
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- biochanin A conjugates interconversion:
H2O + biochanin A-7-O-glucoside ⟶ D-glucopyranose + H+ + biochanin-A
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3,7-di-O-β-D-glucoside ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(p-hydroxybenzoyl)-glucoside)
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- cyanidin diglucoside biosynthesis (acyl-glucose dependent):
H2O + cyanidin 3,7-di-O-β-D-glucoside ⟶ D-glucopyranose + H+ + cyanidin-3-O-β-D-glucoside
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- biochanin A conjugates interconversion:
H2O + biochanin A-7-O-glucoside ⟶ D-glucopyranose + H+ + biochanin-A
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- starch degradation II:
a glucan + maltotriose ⟶ D-glucopyranose + a glucan
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3,7-di-O-β-D-glucoside ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(p-hydroxybenzoyl)-glucoside)
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-glucoside ⟶ D-glucopyranose + delphinidin 3-O-rutinoside-7-O-(6-O-(p-hydroxybenzoyl)-glucoside)
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- trehalose biosynthesis VI:
D-glucopyranose + an NDP-α-D-glucose ⟶ α,α-trehalose + H+ + a nucleoside diphosphate
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ an exposed unphosphorylated, (α-1,6)-branched malto-oligosaccharide tail on amylopectin + maltose
- glucose and glucose-1-phosphate degradation:
D-glucono-1,5-lactone + H2O ⟶ D-gluconate + H+
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-glucoside ⟶ D-glucopyranose + delphinidin 3-O-rutinoside-7-O-(6-O-(p-hydroxybenzoyl)-glucoside)
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- glucosinolate activation:
H2O + a glucosinolate ⟶ D-glucopyranose + a thiohydroximate-O-sulfate
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- gluconeogenesis III:
D-glucopyranose 6-phosphate + H2O ⟶ D-glucopyranose + phosphate
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- dhurrin degradation:
H2O + dhurrin ⟶ (S)-4-hydroxymandelonitrile + D-glucopyranose
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- cyanidin diglucoside biosynthesis (acyl-glucose dependent):
H2O + cyanin ⟶ D-glucopyranose + H+ + cyanidin-3-O-β-D-glucoside
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-glucoside ⟶ D-glucopyranose + delphinidin 3-O-rutinoside-7-O-(6-O-(p-hydroxybenzoyl)-glucoside)
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- trehalose degradation II (cytosolic):
α,α-trehalose + H2O ⟶ α-D-glucopyranose + β-D-glucopyranose
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- cyanidin diglucoside biosynthesis (acyl-glucose dependent):
H2O + cyanin ⟶ D-glucopyranose + H+ + cyanidin-3-O-β-D-glucoside
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- gluconeogenesis III:
D-glucopyranose 6-phosphate + H2O ⟶ D-glucopyranose + phosphate
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- biochanin A conjugates interconversion:
biochanin A-7-O-glucoside + malonyl-CoA ⟶ biochanin A-7-O-glucoside-6''-malonate + coenzyme A
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- dhurrin degradation:
H2O + dhurrin ⟶ (S)-4-hydroxymandelonitrile + D-glucopyranose
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- cyanidin diglucoside biosynthesis (acyl-glucose dependent):
H2O + cyanin ⟶ D-glucopyranose + H+ + cyanidin-3-O-β-D-glucoside
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-glucoside ⟶ D-glucopyranose + delphinidin 3-O-rutinoside-7-O-(6-O-(p-hydroxybenzoyl)-glucoside)
- 2-O-acetyl-3-O-trans-coutarate biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + meso-tartrate ⟶ trans-coutarate + D-glucopyranose
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- cyanidin diglucoside biosynthesis (acyl-glucose dependent):
H2O + cyanidin 3,7-di-O-β-D-glucoside ⟶ D-glucopyranose + H+ + cyanidin-3-O-β-D-glucoside
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- dhurrin degradation:
H2O + dhurrin ⟶ (S)-4-hydroxymandelonitrile + D-glucopyranose
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- trehalose biosynthesis VI:
D-glucopyranose + an NDP-α-D-glucose ⟶ α,α-trehalose + H+ + a nucleoside diphosphate
- GDP-glucose biosynthesis:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- melibiose degradation:
H2O + melibiose ⟶ D-galactopyranose + D-glucopyranose
- trehalose degradation II (cytosolic):
α,α-trehalose + H2O ⟶ α-D-glucopyranose + β-D-glucopyranose
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- biochanin A conjugates interconversion:
H2O + biochanin A-7-O-glucoside ⟶ D-glucopyranose + H+ + biochanin-A
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3,7-di-O-β-D-glucoside ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(p-hydroxybenzoyl)-glucoside)
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- cyanidin diglucoside biosynthesis (acyl-glucose dependent):
H2O + cyanidin 3,7-di-O-β-D-glucoside ⟶ D-glucopyranose + H+ + cyanidin-3-O-β-D-glucoside
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- gluconeogenesis III:
D-glucopyranose 6-phosphate + H2O ⟶ D-glucopyranose + phosphate
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- gluconeogenesis III:
D-glucopyranose 6-phosphate + H2O ⟶ D-glucopyranose + phosphate
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3,7-di-O-β-D-glucoside ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(p-hydroxybenzoyl)-glucoside)
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3,7-di-O-β-D-glucoside ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(p-hydroxybenzoyl)-glucoside)
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3,7-di-O-β-D-glucoside ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(p-hydroxybenzoyl)-glucoside)
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- glucosinolate activation:
H2O + an aliphatic glucosinolate ⟶ D-glucopyranose + a thiohydroximate-O-sulfate
- gluconeogenesis III:
D-glucopyranose 6-phosphate + H2O ⟶ D-glucopyranose + phosphate
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- cyanidin diglucoside biosynthesis (acyl-glucose dependent):
H2O + cyanin ⟶ D-glucopyranose + H+ + cyanidin-3-O-β-D-glucoside
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- linamarin degradation:
H2O + linamarin ⟶ 2-hydroxy-2-methylpropanenitrile + D-glucopyranose
- dhurrin degradation:
H2O + dhurrin ⟶ (S)-4-hydroxymandelonitrile + D-glucopyranose
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- gluconeogenesis III:
D-glucopyranose 6-phosphate + H2O ⟶ D-glucopyranose + phosphate
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3,7-di-O-β-D-glucoside ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(p-hydroxybenzoyl)-glucoside)
- aromatic glucosinolate activation:
H2O + glucotropaeolin ⟶ 2-benzyl-thiohydroximate-O-sulfate + D-glucopyranose + H+
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- glucosinolate activation:
H2O + an alkenyl-glucosinolate ⟶ D-glucopyranose + a thiohydroximate-O-sulfate with a terminal alkene
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3,7-di-O-β-D-glucoside ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(p-hydroxybenzoyl)-glucoside)
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- aromatic glucosinolate activation:
H2O + glucotropaeolin ⟶ 2-benzyl-thiohydroximate-O-sulfate + D-glucopyranose + H+
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- dhurrin degradation:
H2O + dhurrin ⟶ (S)-4-hydroxymandelonitrile + D-glucopyranose
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- cyanidin diglucoside biosynthesis (acyl-glucose dependent):
H2O + cyanidin 3,7-di-O-β-D-glucoside ⟶ D-glucopyranose + H+ + cyanidin-3-O-β-D-glucoside
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- dhurrin degradation:
H2O + dhurrin ⟶ (S)-4-hydroxymandelonitrile + D-glucopyranose
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- dhurrin degradation:
H2O + dhurrin ⟶ (S)-4-hydroxymandelonitrile + D-glucopyranose
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- starch degradation II:
H2O + a linear malto-oligosaccharide ⟶ a linear malto-oligosaccharide + maltose
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- aromatic glucosinolate activation:
H2O + glucotropaeolin ⟶ 2-benzyl-thiohydroximate-O-sulfate + D-glucopyranose + H+
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3,7-di-O-β-D-glucoside ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(p-hydroxybenzoyl)-glucoside)
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- biochanin A conjugates interconversion:
UDP-α-D-glucose + biochanin-A ⟶ UDP + biochanin A-7-O-glucoside
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-glucoside ⟶ D-glucopyranose + delphinidin 3-O-rutinoside-7-O-(6-O-(p-hydroxybenzoyl)-glucoside)
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- vindoline, vindorosine and vinblastine biosynthesis:
catharanthine + hydrogen peroxide + vindoline ⟶ α-3',4'-anhydrovinblastine radical + H2O
- aromatic glucosinolate activation:
H2O + glucotropaeolin ⟶ 2-benzyl-thiohydroximate-O-sulfate + D-glucopyranose + H+
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- gluconeogenesis III:
D-glucopyranose 6-phosphate + H2O ⟶ D-glucopyranose + phosphate
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- cyanidin diglucoside biosynthesis (acyl-glucose dependent):
H2O + cyanin ⟶ D-glucopyranose + H+ + cyanidin-3-O-β-D-glucoside
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- aromatic glucosinolate activation:
H2O + glucotropaeolin ⟶ 2-benzyl-thiohydroximate-O-sulfate + D-glucopyranose + H+
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- glucosinolate activation:
an N-(sulfonatooxy)alkanimidothioic acid ⟶ H+ + an isothiocyanate + sulfate
- anthocyanidin modification (Arabidopsis):
(E)-4-coumaroyl-CoA + H+ + cyanidin 3-O-β-D-sambubioside ⟶ coenzyme A + cyanidin 3-O-β-D-(p-coumaroyl)-sambubioside
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- aromatic glucosinolate activation:
2-benzyl-thiohydroximate-O-sulfate ⟶ benzylisothiocyanate + sulfate
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- GDP-glucose biosynthesis:
α-D-glucopyranose 1-phosphate + GTP + H+ ⟶ GDP-α-D-glucose + diphosphate
- indole glucosinolate activation (intact plant cell):
indol-3-yl-acetothiohydroxamate-O-sulfonate ⟶ indolylmethylisothiocyanate + sulfate
- indole glucosinolate activation (herbivore attack):
indole-3-carbinol ⟶ 3,3'-di(indol-3-yl)methane + H2O + formaldehyde
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- aromatic glucosinolate activation:
H2O + glucotropaeolin ⟶ 2-benzyl-thiohydroximate-O-sulfate + D-glucopyranose + H+
- aromatic glucosinolate activation:
H2O + glucotropaeolin ⟶ 2-benzyl-thiohydroximate-O-sulfate + D-glucopyranose + H+
- aromatic glucosinolate activation:
2-benzyl-thiohydroximate-O-sulfate ⟶ benzylisothiocyanate + sulfate
- aromatic glucosinolate activation:
H2O + glucotropaeolin ⟶ 2-benzyl-thiohydroximate-O-sulfate + D-glucopyranose + H+
- aromatic glucosinolate activation:
H2O + glucotropaeolin ⟶ 2-benzyl-thiohydroximate-O-sulfate + D-glucopyranose + H+
- aromatic glucosinolate activation:
H2O + glucotropaeolin ⟶ 2-benzyl-thiohydroximate-O-sulfate + D-glucopyranose + H+
- aromatic glucosinolate activation:
H2O + glucotropaeolin ⟶ 2-benzyl-thiohydroximate-O-sulfate + D-glucopyranose + H+
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(6-O-(p-hydroxybenzoyl)-glucosyl)-oxybenzoyl)-glucoside)
- aromatic glucosinolate activation:
H2O + glucotropaeolin ⟶ 2-benzyl-thiohydroximate-O-sulfate + D-glucopyranose + H+
- starch degradation II:
H2O + an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin ⟶ amylopectin + maltose
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- gluconeogenesis III:
D-glucopyranose 6-phosphate + H2O ⟶ D-glucopyranose + phosphate
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- anthocyanidin modification (Arabidopsis):
1-O-sinapoyl-β-D-glucose + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-malonylglucoside ⟶ D-glucopyranose + cyanidin 3-O-[2'-O-(2''-O-(sinapoyl) xylosyl) 6'-O-(p-coumaroyl) glucoside] 5-O-[6''-O-(malonyl) glucoside
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3,7-di-O-β-D-glucoside ⟶ D-glucopyranose + cyanidin 3-O-glucoside-7-O-(6-O-(p-hydroxybenzoyl)-glucoside)
- coumarin biosynthesis (via 2-coumarate):
cis-coumarinic acid-β-D-glucoside + H2O ⟶ D-glucopyranose + coumarinate
- UDP-N-acetyl-D-glucosamine biosynthesis II:
ATP + D-glucopyranose ⟶ ADP + D-glucopyranose 6-phosphate + H+
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- abscisic acid degradation by glucosylation:
β-D-glucopyranosyl abscisate + H2O ⟶ 2-cis-abscisate + D-glucopyranose + H+
- gluconeogenesis III:
ATP + hydrogencarbonate + pyruvate ⟶ ADP + H+ + oxaloacetate + phosphate
- dhurrin degradation:
(S)-4-hydroxymandelonitrile ⟶ 4-hydroxybenzaldehyde + hydrogen cyanide
- abscisic acid degradation by glucosylation:
2-cis-abscisate + UDP-α-D-glucose ⟶ β-D-glucopyranosyl abscisate + UDP
- starch degradation II:
ATP + H2O + a 6-phosphogluco-amylopectin ⟶ AMP + a 6-phosphogluco-3-phosphogluco-amylopectin + phosphate
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- abscisic acid degradation by glucosylation:
2-cis-abscisate + UDP-α-D-glucose ⟶ β-D-glucopyranosyl abscisate + UDP
- coumarin biosynthesis (via 2-coumarate):
H+ + NADPH + O2 + cinnamate ⟶ trans-2-coumarate + H2O + NADP+
- dalcochinin biosynthesis:
H2O + dalcochinin-8'-O-β-glucoside ⟶ D-glucopyranose + dalcochinin
- gluconeogenesis III:
ATP + hydrogencarbonate + pyruvate ⟶ ADP + H+ + oxaloacetate + phosphate
- protein N-glycosylation processing phase (plants and animals):
H2O + Man7(GlcNAc)2-protein (isomer 7A1,2,3B1) ⟶ β-D-mannopyranose + Man6(GlcNAc)2-[protein] (isomer 6A1,2,3)
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(p-hydroxybenzoyl)-glucoside) ⟶ 4-hydroxybenzoate + H+ + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside)
- dhurrin degradation:
(S)-4-hydroxymandelonitrile ⟶ 4-hydroxybenzaldehyde + hydrogen cyanide
- biochanin A conjugates interconversion:
UDP-α-D-glucose + biochanin-A ⟶ UDP + biochanin A-7-O-glucoside
- glycolysis III (from glucose):
ATP + pyruvate ⟶ ADP + H+ + phosphoenolpyruvate
- cyanidin diglucoside biosynthesis (acyl-glucose dependent):
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin-3-O-β-D-glucoside ⟶ 4-hydroxybenzoate + cyanidin 3,7-di-O-β-D-glucoside
- homolactic fermentation:
(S)-lactate + NAD+ ⟶ H+ + NADH + pyruvate
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- anthocyanidin modification (Arabidopsis):
UDP-α-D-glucose + cyanidin 3-O-β-D-(p-coumaroyl)-sambubioside ⟶ H+ + UDP + cyanidin 3-O-[2'-O-(xylosyl)-6'-O-(p-coumaroyl) glucoside] 5-O-glucoside
- UDP-N-acetyl-D-glucosamine biosynthesis II:
F6P + gln ⟶ D-glucosamine 6-phosphate + glu
- anthocyanidin modification (Arabidopsis):
(E)-4-coumaroyl-CoA + H+ + cyanidin 3-O-β-D-sambubioside ⟶ coenzyme A + cyanidin 3-O-[6-O-(4-coumaroyl)]-β-D-sambubioside
- dhurrin degradation:
(S)-4-hydroxymandelonitrile ⟶ 4-hydroxybenzaldehyde + hydrogen cyanide
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- starch degradation II:
H2O + a 6-phosphogluco-3-phosphogluco-amylopectin ⟶ an exposed unphosphorylated, unbranched malto-oligosaccharide tail on amylopectin + phosphate
- ternatin C3 biosynthesis:
1-O-(4-coumaroyl)-β-D-glucose + ternatin C5 ⟶ D-glucopyranose + ternatin C3
- cyanidin diglucoside biosynthesis (acyl-glucose dependent):
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin-3-O-β-D-glucoside ⟶ 4-hydroxybenzoate + cyanidin 3,7-di-O-β-D-glucoside
- violdelphin biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + delphinidin 3-O-rutinoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside) ⟶ D-glucopyranose + violdelphin
- cyanidin 3,7-diglucoside polyacylation biosynthesis:
1-O-4-hydroxybenzoyl-β-D-glucose + cyanidin 3-O-glucoside-7-O-(6-O-(p-hydroxybenzoyl)-glucoside) ⟶ 4-hydroxybenzoate + H+ + cyanidin 3-O-glucoside-7-O-(6-O-(4-O-(glucosyl)-oxybenzoyl)-glucoside)
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Adenosine + Pi ⟶ Adenine + _alpha_-D-Ribose 1-phosphate
PathBank(107)
- Starch and Sucrose Metabolism:
Isovalerylglucuronide + Water ⟶ Alcohol + D-Glucuronic acid
- Glycogen Synthetase Deficiency:
Isovalerylglucuronide + Water ⟶ Alcohol + D-Glucuronic acid
- Glycogenosis, Type III. Cori Disease, Debrancher Glycogenosis:
Isovalerylglucuronide + Water ⟶ Alcohol + D-Glucuronic acid
- Glycogenosis, Type IV. Amylopectinosis, Anderson Disease:
Isovalerylglucuronide + Water ⟶ Alcohol + D-Glucuronic acid
- Glycogenosis, Type VI. Hers Disease:
Isovalerylglucuronide + Water ⟶ Alcohol + D-Glucuronic acid
- Mucopolysaccharidosis VII. Sly Syndrome:
Isovalerylglucuronide + Water ⟶ Alcohol + D-Glucuronic acid
- Sucrase-Isomaltase Deficiency:
Isovalerylglucuronide + Water ⟶ Alcohol + D-Glucuronic acid
- Starch and Sucrose Metabolism:
Adenosine triphosphate + D-Glucose ⟶ Adenosine diphosphate + Glucose 6-phosphate
- Starch and Sucrose Metabolism:
Isovalerylglucuronide + Water ⟶ Alcohol + D-Glucuronic acid
- Glycogen Synthetase Deficiency:
Isovalerylglucuronide + Water ⟶ Alcohol + D-Glucuronic acid
- Glycogenosis, Type III. Cori Disease, Debrancher Glycogenosis:
Isovalerylglucuronide + Water ⟶ Alcohol + D-Glucuronic acid
- Glycogenosis, Type IV. Amylopectinosis, Anderson Disease:
Isovalerylglucuronide + Water ⟶ Alcohol + D-Glucuronic acid
- Glycogenosis, Type VI. Hers Disease:
Isovalerylglucuronide + Water ⟶ Alcohol + D-Glucuronic acid
- Mucopolysaccharidosis VII. Sly Syndrome:
Isovalerylglucuronide + Water ⟶ Alcohol + D-Glucuronic acid
- Sucrase-Isomaltase Deficiency:
Isovalerylglucuronide + Water ⟶ Alcohol + D-Glucuronic acid
- Starch and Sucrose Metabolism:
Isovalerylglucuronide + Water ⟶ Alcohol + D-Glucuronic acid
- Starch and Sucrose Metabolism:
Isovalerylglucuronide + Water ⟶ Alcohol + D-Glucuronic acid
- Glycogen Synthetase Deficiency:
Isovalerylglucuronide + Water ⟶ Alcohol + D-Glucuronic acid
- Glycogenosis, Type III. Cori Disease, Debrancher Glycogenosis:
Isovalerylglucuronide + Water ⟶ Alcohol + D-Glucuronic acid
- Glycogenosis, Type IV. Amylopectinosis, Anderson Disease:
Isovalerylglucuronide + Water ⟶ Alcohol + D-Glucuronic acid
- Glycogenosis, Type VI. Hers Disease:
Isovalerylglucuronide + Water ⟶ Alcohol + D-Glucuronic acid
- Mucopolysaccharidosis VII. Sly Syndrome:
Isovalerylglucuronide + Water ⟶ Alcohol + D-Glucuronic acid
- Sucrase-Isomaltase Deficiency:
Isovalerylglucuronide + Water ⟶ Alcohol + D-Glucuronic acid
- Galactose Metabolism:
D-Galactose + D-Mannose ⟶ Epimelibiose
- Galactosemia:
D-Galactose + D-Mannose ⟶ Epimelibiose
- Galactose Metabolism:
D-Galactose + D-Mannose ⟶ Epimelibiose
- Galactosemia:
D-Galactose + D-Mannose ⟶ Epimelibiose
- Galactose Metabolism:
D-Galactose + D-Mannose ⟶ Epimelibiose
- Galactose Metabolism:
D-Galactose + D-Mannose ⟶ Epimelibiose
- Galactosemia:
D-Galactose + D-Mannose ⟶ Epimelibiose
- Glycolysis:
Adenosine triphosphate + D-Glucose ⟶ Adenosine diphosphate + Glucose 6-phosphate
- Gluconeogenesis:
Glucose 1-phosphate + Water ⟶ D-Glucose + Phosphate
- Nucleotide Sugars Metabolism:
Adenosine triphosphate + D-Galactose ⟶ Adenosine diphosphate + Galactose 1-phosphate
- Glycogen Storage Disease Type 1A (GSD1A) or Von Gierke Disease:
Glucose 1-phosphate + Water ⟶ D-Glucose + Phosphate
- Galactosemia II (GALK):
Adenosine triphosphate + D-Galactose ⟶ Adenosine diphosphate + Galactose 1-phosphate
- Galactosemia III:
Adenosine triphosphate + D-Galactose ⟶ Adenosine diphosphate + Galactose 1-phosphate
- Glycogenosis, Type VII. Tarui Disease:
Adenosine triphosphate + D-Glucose ⟶ Adenosine diphosphate + Glucose 6-phosphate
- Phosphoenolpyruvate Carboxykinase Deficiency 1 (PEPCK1):
Glucose 1-phosphate + Water ⟶ D-Glucose + Phosphate
- Fructose-1,6-diphosphatase Deficiency:
Glucose 1-phosphate + Water ⟶ D-Glucose + Phosphate
- Triosephosphate Isomerase Deficiency:
Glucose 1-phosphate + Water ⟶ D-Glucose + Phosphate
- Fanconi-Bickel Syndrome:
Adenosine triphosphate + D-Glucose ⟶ Adenosine diphosphate + Glucose 6-phosphate
- Glycogenosis, Type IB:
Glucose 1-phosphate + Water ⟶ D-Glucose + Phosphate
- Glycogenosis, Type IC:
Glucose 1-phosphate + Water ⟶ D-Glucose + Phosphate
- Glycogenosis, Type IA. Von Gierke Disease:
Glucose 1-phosphate + Water ⟶ D-Glucose + Phosphate
- Glycolysis:
Adenosine triphosphate + D-Glucose ⟶ Adenosine diphosphate + Glucose 6-phosphate
- Glycolysis I:
Adenosine triphosphate + D-Glucose ⟶ Adenosine diphosphate + Glucose 6-phosphate
- Fructose Metabolism:
-D-fructofuranose + Adenosine triphosphate ⟶ -D-Fructose 6-phosphate + Adenosine triphosphate + Hydrogen Ion
- Ethanol Fermentation:
Adenosine triphosphate + D-Glucose ⟶ Adenosine diphosphate + Glucose 6-phosphate
- Glycolysis:
Adenosine triphosphate + D-Glucose ⟶ Adenosine diphosphate + Glucose 6-phosphate
- Gluconeogenesis:
Glucose 1-phosphate + Water ⟶ D-Glucose + Phosphate
- Nucleotide Sugars Metabolism:
Adenosine triphosphate + D-Galactose ⟶ Adenosine diphosphate + Galactose 1-phosphate
- Glycogen Storage Disease Type 1A (GSD1A) or Von Gierke Disease:
Glucose 1-phosphate + Water ⟶ D-Glucose + Phosphate
- Galactosemia II (GALK):
Adenosine triphosphate + D-Galactose ⟶ Adenosine diphosphate + Galactose 1-phosphate
- Galactosemia III:
Adenosine triphosphate + D-Galactose ⟶ Adenosine diphosphate + Galactose 1-phosphate
- Glycogenosis, Type VII. Tarui Disease:
Adenosine triphosphate + D-Glucose ⟶ Adenosine diphosphate + Glucose 6-phosphate
- Phosphoenolpyruvate Carboxykinase Deficiency 1 (PEPCK1):
Glucose 1-phosphate + Water ⟶ D-Glucose + Phosphate
- Fructose-1,6-diphosphatase Deficiency:
Glucose 1-phosphate + Water ⟶ D-Glucose + Phosphate
- Triosephosphate Isomerase Deficiency:
Glucose 1-phosphate + Water ⟶ D-Glucose + Phosphate
- Fanconi-Bickel Syndrome:
Adenosine triphosphate + D-Glucose ⟶ Adenosine diphosphate + Glucose 6-phosphate
- Glycogenosis, Type IB:
Glucose 1-phosphate + Water ⟶ D-Glucose + Phosphate
- Glycogenosis, Type IC:
Glucose 1-phosphate + Water ⟶ D-Glucose + Phosphate
- Glycogenosis, Type IA. Von Gierke Disease:
Glucose 1-phosphate + Water ⟶ D-Glucose + Phosphate
- Nucleotide Sugars Metabolism:
Adenosine triphosphate + D-Galactose ⟶ Adenosine diphosphate + Galactose 1-phosphate
- Glycolysis:
-D-Glucose + Adenosine triphosphate ⟶ -D-Glucose 6-phosphate + Adenosine diphosphate
- Gluconeogenesis:
-D-Glucose + Adenosine triphosphate ⟶ -D-Glucose 6-phosphate + Adenosine diphosphate
- Nucleotide Sugars Metabolism:
Adenosine triphosphate + D-Galactose ⟶ Adenosine diphosphate + Galactose 1-phosphate
- Glycolysis:
-D-Glucose + Adenosine triphosphate ⟶ -D-Glucose 6-phosphate + Adenosine diphosphate
- Gluconeogenesis:
-D-Glucose + Adenosine triphosphate ⟶ -D-Glucose 6-phosphate + Adenosine diphosphate
- Nucleotide Sugars Metabolism:
Adenosine triphosphate + D-Galactose ⟶ Adenosine diphosphate + Galactose 1-phosphate
- Glycolysis:
-D-Glucose + Adenosine triphosphate ⟶ -D-Glucose 6-phosphate + Adenosine diphosphate
- Nucleotide Sugars Metabolism:
Adenosine triphosphate + D-Galactose ⟶ Adenosine diphosphate + Galactose 1-phosphate
- Glycolysis:
-D-Glucose + Adenosine triphosphate ⟶ -D-Glucose 6-phosphate + Adenosine diphosphate
- Glycogen Storage Disease Type 1A (GSD1A) or Von Gierke Disease:
-D-Glucose + Adenosine triphosphate ⟶ -D-Glucose 6-phosphate + Adenosine diphosphate
- Galactosemia II (GALK):
Adenosine triphosphate + D-Galactose ⟶ Adenosine diphosphate + Galactose 1-phosphate
- Galactosemia III:
Adenosine triphosphate + D-Galactose ⟶ Adenosine diphosphate + Galactose 1-phosphate
- Glycogenosis, Type VII. Tarui Disease:
-D-Glucose + Adenosine triphosphate ⟶ -D-Glucose 6-phosphate + Adenosine diphosphate
- Phosphoenolpyruvate Carboxykinase Deficiency 1 (PEPCK1):
-D-Glucose + Adenosine triphosphate ⟶ -D-Glucose 6-phosphate + Adenosine diphosphate
- Fructose-1,6-diphosphatase Deficiency:
-D-Glucose + Adenosine triphosphate ⟶ -D-Glucose 6-phosphate + Adenosine diphosphate
- Triosephosphate Isomerase Deficiency:
-D-Glucose + Adenosine triphosphate ⟶ -D-Glucose 6-phosphate + Adenosine diphosphate
- Fanconi-Bickel Syndrome:
-D-Glucose + Adenosine triphosphate ⟶ -D-Glucose 6-phosphate + Adenosine diphosphate
- Glycogenosis, Type IB:
-D-Glucose + Adenosine triphosphate ⟶ -D-Glucose 6-phosphate + Adenosine diphosphate
- Glycogenosis, Type IC:
-D-Glucose + Adenosine triphosphate ⟶ -D-Glucose 6-phosphate + Adenosine diphosphate
- Glycogenosis, Type IA. Von Gierke Disease:
-D-Glucose + Adenosine triphosphate ⟶ -D-Glucose 6-phosphate + Adenosine diphosphate
- Fructose and Mannose Degradation:
D-Fructose 2,6-bisphosphate + Water ⟶ Fructose 6-phosphate + Phosphate
- Fructosuria:
D-Fructose 2,6-bisphosphate + Water ⟶ Fructose 6-phosphate + Phosphate
- Fructose Intolerance, Hereditary:
D-Fructose 2,6-bisphosphate + Water ⟶ Fructose 6-phosphate + Phosphate
- Fructose and Mannose Degradation:
Fructose 1,6-bisphosphate + Water ⟶ Fructose 6-phosphate + Phosphate
- Fructose Intolerance, Hereditary:
Fructose 1,6-bisphosphate + Water ⟶ Fructose 6-phosphate + Phosphate
- Fructosuria:
Adenosine triphosphate + D-Fructose ⟶ Adenosine diphosphate + Fructose 6-phosphate
- Fructose Intolerance, Hereditary:
Adenosine triphosphate + D-Fructose ⟶ Adenosine diphosphate + Fructose 6-phosphate
- Fructose and Mannose Degradation:
Adenosine triphosphate + D-Fructose ⟶ Adenosine diphosphate + Fructose 6-phosphate
- Fructose and Mannose Degradation:
Adenosine triphosphate + D-Fructose ⟶ Adenosine diphosphate + Fructose 6-phosphate
- Fructosuria:
Fructose 1,6-bisphosphate + Water ⟶ Fructose 6-phosphate + Phosphate
- Starch and Sucrose Metabolism:
D-Glucose + [PTS enzyme I]-N -phospho-L-histidine ⟶ -D-glucose 1-phosphate + [PTS enzyme I]-L-histidine
- Starch and Sucrose Metabolism:
-D-Glucose + Unknown ⟶ -D-Glucose 6-phosphate + Unknown
- Trehalose Degradation:
Trehalose + Water ⟶ -D-Glucose
- Galactose Metabolism:
-D-Glucose + Phosphocarrier protein HPr ⟶ -D-Glucose 6-phosphate + Phosphocarrier protein HPr
- Galactose Degradation/Leloir Pathway:
-D-Glucose + Phosphocarrier protein HPr ⟶ -D-Glucose 6-phosphate + Phosphocarrier protein HPr
- Amino Sugar and Nucleotide Sugar Metabolism II:
N-Acetyl-D-Glucosamine 6-Phosphate + Water ⟶ Acetic acid + Glucosamine 6-phosphate
- Amino Sugar and Nucleotide Sugar Metabolism III:
N-Acetyl-D-Glucosamine 6-Phosphate + Water ⟶ Acetic acid + Glucosamine 6-phosphate
- Secondary Metabolites: Trehalose Biosynthesis and Metabolism:
-D-Glucose + Adenosine triphosphate ⟶ -D-Glucose 6-phosphate + Adenosine diphosphate + Hydrogen ion
- Fructose Metabolism:
Adenosine triphosphate + D-Fructose ⟶ -D-Fructose 6-phosphate + Adenosine diphosphate
- Trehalose Degradation:
Trehalose + Water ⟶ -D-Glucose
- Trehalose Degradation:
Trehalose + Water ⟶ -D-Glucose
- Trehalose Degradation:
Trehalose + Water ⟶ -D-Glucose
- Amino Sugar and Nucleotide Sugar Metabolism III:
N-Acetyl-D-Glucosamine 6-Phosphate + Water ⟶ Acetic acid + Glucosamine 6-phosphate
- Secondary Metabolites: Trehalose Biosynthesis and Metabolism:
, -trehalose + Water ⟶ -D-Glucose
PharmGKB(0)
103 个相关的物种来源信息
- 4185 - Acanthaceae: LTS0132398
- 43363 - Aesculus: LTS0132398
- 290911 - Aesculus chinensis: LTS0132398
- 531827 - Aesculus chinensis var. wilsonii: 10.1055/S-0028-1097463
- 531827 - Aesculus chinensis var. wilsonii: LTS0132398
- 4056 - Apocynaceae: LTS0132398
- 4710 - Arecaceae: LTS0132398
- 262982 - Artemisia apiacea: 10.1016/J.CHROMA.2007.09.023
- 496566 - Artemisia carvifolia: 10.1016/J.CHROMA.2007.09.023
- 6656 - Arthropoda: LTS0132398
- 4210 - Asteraceae: LTS0132398
- 2 - Bacteria: LTS0132398
- 6658 - Branchiopoda: LTS0132398
- 3481 - Cannabaceae: LTS0132398
- 3482 - Cannabis: LTS0132398
- 3483 - Cannabis sativa: 10.1021/NP50008A001
- 3483 - Cannabis sativa: LTS0132398
- 3568 - Caryophyllaceae: LTS0132398
- 7711 - Chordata: LTS0132398
- 30102 - Cicadellidae: LTS0132398
- 13432 - Clerodendrum: LTS0132398
- 54221 - Clerodendrum mandarinorum: 10.1055/S-2006-957923
- 54221 - Clerodendrum mandarinorum: LTS0132398
- 6668 - Daphnia: LTS0132398
- 6669 - Daphnia pulex: 10.1038/SREP25125
- 6669 - Daphnia pulex: LTS0132398
- 77658 - Daphniidae: LTS0132398
- 162738 - Detarium: LTS0132398
- 327901 - Detarium microcarpum: 10.1016/S0008-6215(02)00025-3
- 327901 - Detarium microcarpum: LTS0132398
- 543 - Enterobacteriaceae: LTS0132398
- 2759 - Eukaryota: LTS0132398
- 3990 - Euphorbia: LTS0132398
- 212961 - Euphorbia plumerioides: 10.1016/0031-9422(91)84139-J
- 212961 - Euphorbia plumerioides: LTS0132398
- 3977 - Euphorbiaceae: LTS0132398
- 3803 - Fabaceae: LTS0132398
- 41579 - Galactites: LTS0132398
- 92911 - Galactites tomentosa: LTS0132398
- 92911 - Galactites tomentosus: 10.1007/S10600-017-2003-6
- 1236 - Gammaproteobacteria: LTS0132398
- 9606 - Homo sapiens: -
- 50557 - Insecta: LTS0132398
- 165307 - Lagotis: LTS0132398
- 495256 - Lagotis brevituba: 10.1055/S-2006-959389
- 495256 - Lagotis brevituba: LTS0132398
- 4136 - Lamiaceae: LTS0132398
- 4447 - Liliopsida: LTS0132398
- 3398 - Magnoliopsida: LTS0132398
- 40674 - Mammalia: LTS0132398
- 33208 - Metazoa: LTS0132398
- 102786 - Mikania: LTS0132398
- 43521 - Morinda: LTS0132398
- 43522 - Morinda citrifolia:
- 43522 - Morinda citrifolia: 10.1021/NP0495985
- 43522 - Morinda citrifolia: LTS0132398
- 10066 - Muridae: LTS0132398
- 10088 - Mus: LTS0132398
- 10090 - Mus musculus: LTS0132398
- 10090 - Mus musculus: NA
- 56627 - Ochnaceae: LTS0132398
- 58891 - Ouratea: LTS0132398
- 2699671 - Ouratea semiserrata: 10.1002/PCA.656
- 2699671 - Ouratea semiserrata: LTS0132398
- 1822464 - Paraburkholderia: 10.1128/AEM.01851-20
- 316257 - Phlomis: LTS0132398
- 1006602 - Phlomoides: LTS0132398
- 572115 - Phlomoides rotata: 10.1002/PCA.2557
- 572115 - Phlomoides rotata: LTS0132398
- 4719 - Phoenix: LTS0132398
- 42345 - Phoenix dactylifera: 10.1016/B978-0-08-028853-6.50009-7
- 42345 - Phoenix dactylifera: LTS0132398
- 156152 - Plantaginaceae: LTS0132398
- 49647 - Primula: LTS0132398
- 170927 - Primula veris: 10.1055/S-0028-1099459
- 170927 - Primula veris: LTS0132398
- 4335 - Primulaceae: LTS0132398
- 418401 - Pseudostellaria: LTS0132398
- 418402 - Pseudostellaria heterophylla: 10.3390/MOLECULES21111538
- 418402 - Pseudostellaria heterophylla: LTS0132398
- 4059 - Rauvolfia: LTS0132398
- 4060 - Rauvolfia serpentina: 10.1002/HLCA.19940770809
- 4060 - Rauvolfia serpentina: LTS0132398
- 24966 - Rubiaceae: LTS0132398
- 13659 - Ruellia: LTS0132398
- 441006 - Ruellia patula: 10.3109/13880209309082928
- 441006 - Ruellia patula: LTS0132398
- 590 - Salmonella: LTS0132398
- 28901 - Salmonella enterica: 10.1039/C3MB25598K
- 28901 - Salmonella enterica: LTS0132398
- 21880 - Salvia: LTS0132398
- 2026527 - Salvia rhyacophila: 10.1016/S0031-9422(00)90671-X
- 2026527 - Salvia rhyacophila: LTS0132398
- 23672 - Sapindaceae: LTS0132398
- 4070 - Solanaceae: LTS0132398
- 35493 - Streptophyta: LTS0132398
- 58023 - Tracheophyta: LTS0132398
- 33090 - Viridiplantae: LTS0132398
- 126908 - Withania: LTS0132398
- 126910 - Withania somnifera:
- 126910 - Withania somnifera: 10.1016/J.PHYTOCHEM.2005.10.001
- 126910 - Withania somnifera: 10.1016/J.PHYTOCHEM.2010.04.001
- 126910 - Withania somnifera: LTS0132398
在这里通过桑基图来展示出与当前的这个代谢物在我们的BioDeep知识库中具有相关联信息的其他代谢物。在这里进行关联的信息来源主要有:
- PubMed: 来源于PubMed文献库中的文献信息,我们通过自然语言数据挖掘得到的在同一篇文献中被同时提及的相关代谢物列表,这个列表按照代谢物同时出现的文献数量降序排序,取前10个代谢物作为相关研究中关联性很高的代谢物集合展示在桑基图中。
- NCBI Taxonomy: 通过文献数据挖掘,得到的代谢物物种来源信息关联。这个关联信息同样按照出现的次数降序排序,取前10个代谢物作为高关联度的代谢物集合展示在桑吉图上。
- Chemical Taxonomy: 在物质分类上处于同一个分类集合中的其他代谢物
- Chemical Reaction: 在化学反应过程中,存在为当前代谢物相关联的生化反应过程中的反应底物或者反应产物的关联代谢物信息。
点击图上的相关代谢物的名称,可以跳转到相关代谢物的信息页面。
文献列表
- Yusuke Matsumoto, Yukiko Enomoto, Satoshi Kimura, Tadahisa Iwata. Highly deformable and recoverable cross-linked hydrogels of 1,3-α-d and 1,3-β-d-glucans.
Carbohydrate polymers.
2021 Jan; 251(?):116794. doi:
10.1016/j.carbpol.2020.116794
. [PMID: 33142549] - Sylwia Stączek, Agnieszka Zdybicka-Barabas, Adrian Wiater, Małgorzata Pleszczyńska, Małgorzata Cytryńska. Activation of cellular immune response in insect model host Galleria mellonella by fungal α-1,3-glucan.
Pathogens and disease.
2020 12; 78(9):. doi:
10.1093/femspd/ftaa062
. [PMID: 33232457] - Ryan Shaktah, Laura Vardanyan, Elroma David, Alexis Aleman, Dupre Orr, Lawrence A Shaktah, Daniel Tamae, Thomas Minehan. Synthesis and Stereochemical Assignment of Conioidine A: DNA- and HSA-Binding Studies of the Four Diastereomers.
Journal of natural products.
2020 10; 83(10):3191-3198. doi:
10.1021/acs.jnatprod.0c00871
. [PMID: 33034450] - Qinfeng He, Ryosuke Kusumi, Satoshi Kimura, Ung-Jin Kim, Kenzo Deguchi, Shinobu Ohki, Atsushi Goto, Tadashi Shimizu, Masahisa Wada. Highly swellable hydrogel of regioselectively aminated (1→3)-α-d-glucan crosslinked with ethylene glycol diglycidyl ether.
Carbohydrate polymers.
2020 Jun; 237(?):116189. doi:
10.1016/j.carbpol.2020.116189
. [PMID: 32241412] - Kayoko Kobayashi, Takuto Hasegawa, Ryosuke Kusumi, Satoshi Kimura, Makoto Yoshida, Junji Sugiyama, Masahisa Wada. Characterization of crystalline linear (1→3)-α-d-glucan synthesized in vitro.
Carbohydrate polymers.
2017 Dec; 177(?):341-346. doi:
10.1016/j.carbpol.2017.09.003
. [PMID: 28962777] - Yuichiro Kurone, Ken-Ichi Ishibashi, Daisuke Yamanaka, Noriko N Miura, Yoshiyuki Adachi, Naohito Ohno. [Preparation and Biological Characterization of Limulus Factor G-activating Substance of Aspergillus spp.].
Medical mycology journal.
2017; 58(4):E121-E129. doi:
10.3314/mmj.17-00010
. [PMID: 29187714] - Sakarin Puanglek, Satoshi Kimura, Yukiko Enomoto-Rogers, Taizo Kabe, Makoto Yoshida, Masahisa Wada, Tadahisa Iwata. In vitro synthesis of linear α-1,3-glucan and chemical modification to ester derivatives exhibiting outstanding thermal properties.
Scientific reports.
2016 07; 6(?):30479. doi:
10.1038/srep30479
. [PMID: 27469976] - Junnosuke Otaka, Shigemi Seo, Marie Nishimura. Lutein, a Natural Carotenoid, Induces α-1,3-Glucan Accumulation on the Cell Wall Surface of Fungal Plant Pathogens.
Molecules (Basel, Switzerland).
2016 Jul; 21(8):. doi:
10.3390/molecules21080980
. [PMID: 27483218] - Chang-Suk Kong, Youngwan Seo. Antiadipogenic activity of isohamnetin 3-O-β-D-glucopyranoside from Salicornia herbacea.
Immunopharmacology and immunotoxicology.
2012 Dec; 34(6):907-11. doi:
10.3109/08923973.2012.670643
. [PMID: 22978277] - Nikolay V Kukushkin, Iona S Easthope, Dominic S Alonzi, Terry D Butters. Restricted processing of glycans by endomannosidase in mammalian cells.
Glycobiology.
2012 Oct; 22(10):1282-8. doi:
10.1093/glycob/cws088
. [PMID: 22641772] - Ayshamgul Hasim, Hong Ma, Batur Mamtimin, Abulizi Abudula, Madiniyet Niyaz, Li-Wei Zhang, Juret Anwer, Ilyar Sheyhidin. Revealing the metabonomic variation of EC using ¹H-NMR spectroscopy and its association with the clinicopathological characteristics.
Molecular biology reports.
2012 Sep; 39(9):8955-64. doi:
10.1007/s11033-012-1764-z
. [PMID: 22736106] - M S Freedman, C Metzig, L Kappos, C H Polman, G Edan, H-P Hartung, D H Miller, X Montalban, J Yarden, L Spector, E Fire, N Dotan, S Schwenke, V Lanius, R Sandbrink, C Pohl. Predictive nature of IgM anti-α-glucose serum biomarker for relapse activity and EDSS progression in CIS patients: a BENEFIT study analysis.
Multiple sclerosis (Houndmills, Basingstoke, England).
2012 Jul; 18(7):966-73. doi:
10.1177/1352458511432327
. [PMID: 22183938] - Hyun Ah Jung, Jin Ju Park, Md Nurul Islam, Seung Eun Jin, Byung-Sun Min, Je-Hyun Lee, Hee Sook Sohn, Jae Sue Choi. Inhibitory activity of coumarins from Artemisia capillaris against advanced glycation endproduct formation.
Archives of pharmacal research.
2012 Jun; 35(6):1021-35. doi:
10.1007/s12272-012-0610-0
. [PMID: 22870812] - Haiping Liu, Zhimao Chao, Xiaoyi Wu, Zhigao Tan, Chun Wang, Wen Sun. [Chemical constituents contained in Populus tomentosa].
Zhongguo Zhong yao za zhi = Zhongguo zhongyao zazhi = China journal of Chinese materia medica.
2012 May; 37(10):1422-5. doi:
. [PMID: 22860454]
- Tina Frisch, Birger L Møller. Possible evolution of alliarinoside biosynthesis from the glucosinolate pathway in Alliaria petiolata.
The FEBS journal.
2012 May; 279(9):1545-62. doi:
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