N-ethylmaleimide (BioDeep_00000003450)
Secondary id: BioDeep_00001867788
human metabolite blood metabolite
代谢物信息卡片
化学式: C6H7NO2 (125.0477)
中文名称: N-乙基顺丁烯二酰亚胺, N-乙基马来酰亚胺
谱图信息:
最多检出来源 Homo sapiens(blood) 25.49%
分子结构信息
SMILES: CCn(c(=O)1)c(=O)cc1
InChI: InChI=1S/C6H7NO2/c1-2-7-5(8)3-4-6(7)9/h3-4H,2H2,1H3
描述信息
D019995 - Laboratory Chemicals > D007202 - Indicators and Reagents > D013439 - Sulfhydryl Reagents
D004791 - Enzyme Inhibitors
KEIO_ID E008
同义名列表
数据库引用编号
22 个数据库交叉引用编号
- ChEBI: CHEBI:44485
- KEGG: C02441
- PubChem: 4362
- HMDB: HMDB0255137
- Metlin: METLIN65769
- DrugBank: DB02967
- ChEMBL: CHEMBL8211
- Wikipedia: N-Ethylmaleimide
- MeSH: Ethylmaleimide
- MetaCyc: N-ETHYLMALEIMIDE
- CAS: 25668-22-8
- CAS: 128-53-0
- MoNA: KO002831
- MoNA: KO002832
- MoNA: KO002830
- MoNA: KO002833
- PMhub: MS000009696
- PubChem: 5463
- PDB-CCD: NEQ
- NIKKAJI: J21.254G
- RefMet: N-Ethylmaleimide
- KNApSAcK: 44485
分类词条
相关代谢途径
Reactome(0)
BioCyc(97)
- alkylnitronates degradation
- O-antigen building blocks biosynthesis (E. coli)
- superpathway of b heme biosynthesis from glycine
- superpathway of L-phenylalanine biosynthesis
- anaerobic energy metabolism (invertebrates, mitochondrial)
- superpathway of anaerobic energy metabolism (invertebrates)
- superpathway of demethylmenaquinol-8 biosynthesis I
- superpathway of L-methionine biosynthesis (transsulfuration)
- superpathway of L-homoserine and L-methionine biosynthesis
- superpathway of hexitol degradation (bacteria)
- D-sorbitol degradation II
- UDP-N-acetyl-D-glucosamine biosynthesis I
- lupanine biosynthesis
- superpathway of L-lysine, L-threonine and L-methionine biosynthesis I
- superpathway of aromatic amino acid biosynthesis
- superpathway of bacteriochlorophyll a biosynthesis
- 2-carboxy-1,4-naphthoquinol biosynthesis
- superpathway of menaquinol-8 biosynthesis I
- superpathway of chorismate metabolism
- gallate degradation III (anaerobic)
- aspartate superpathway
- superpathway of S-adenosyl-L-methionine biosynthesis
- salvianin biosynthesis
- pelargonidin conjugates biosynthesis
- superpathway of anthocyanin biosynthesis (from cyanidin and cyanidin 3-O-glucoside)
- shisonin biosynthesis
- superpathway of anthocyanin biosynthesis (from pelargonidin 3-O-glucoside)
- superpathway of UDP-N-acetylglucosamine-derived O-antigen building blocks biosynthesis
- tetrapyrrole biosynthesis II (from glycine)
- heme b biosynthesis I (aerobic)
- protocatechuate degradation I (meta-cleavage pathway)
- trans-4-hydroxy-L-proline degradation II
- indolmycin biosynthesis
- L-lysine biosynthesis I
- canavanine degradation
- superpathway of polyamine biosynthesis I
- superpathway of arginine and polyamine biosynthesis
- superpathway of L-arginine, putrescine, and 4-aminobutanoate degradation
- superpathway of L-arginine and L-ornithine degradation
- formaldehyde oxidation II (glutathione-dependent)
- aurone biosynthesis
- polymethylated quercetin glucoside biosynthesis I - quercetin series (Chrysosplenium)
- polymethylated quercetin glucoside biosynthesis II - quercetagetin series (Chrysosplenium)
- aflatoxins B1 and G1 biosynthesis
- kaempferide triglycoside biosynthesis
- superpathway of polymethylated quercetin/quercetagetin glucoside biosynthesis (Chrysosplenium)
- anhydromuropeptides recycling I
- formate oxidation to CO2
- curcumin degradation
- superpathway of microbial D-galacturonate and D-glucuronate degradation
- D-carnitine degradation I
- nicotinate degradation I
- L-valine degradation I
- superpathway of CMP-sialic acids biosynthesis
- glycocholate metabolism (bacteria)
- L-arginine degradation V (arginine deiminase pathway)
- superpathway of glycerol degradation to 1,3-propanediol
- 3,8-divinyl-chlorophyllide a biosynthesis II (anaerobic)
- superpathway of L-lysine degradation
- L-lysine fermentation to acetate and butanoate
- bile acids degradation
- 1,2-dichloroethane degradation
- spermidine biosynthesis I
- L-phenylalanine biosynthesis I
- eupatolitin 3-O-glucoside biosynthesis
- lactate biosynthesis (archaea)
- chitin derivatives degradation
- superpathway of ergosterol biosynthesis I
- superpathway of ergosterol biosynthesis
- CMP-N-acetylneuraminate biosynthesis I (eukaryotes)
- protein N-glycosylation initial phase (eukaryotic)
- diacylglycerol and triacylglycerol biosynthesis
- patchoulol biosynthesis
- methylgallate degradation
- 4-hydroxymandelate degradation
- 4-amino-3-hydroxybenzoate degradation
- superpathway of aromatic compound degradation via 2-hydroxypentadienoate
- ferrichrome biosynthesis
- superpathway of aromatic compound degradation via 3-oxoadipate
- norspermidine biosynthesis
- superpathway of polyamine biosynthesis III
- superpathway of penicillin, cephalosporin and cephamycin biosynthesis
- deacetylcephalosporin C biosynthesis
- isopenicillin N biosynthesis
- glycerol degradation II
- violdelphin biosynthesis
- trans-4-hydroxy-L-proline degradation I
- superpathway of L-methionine salvage and degradation
- S-adenosyl-L-methionine cycle II
- protein N-glycosylation (eukaryotic) initial steps
- pyruvate to cytochrome bo oxidase electron transfer
- methylglyoxal degradation VI
- sophorosyloxydocosanoate deacetylation
- L-homoserine biosynthesis
- superpathway of L-threonine biosynthesis
- cyclopropane fatty acid (CFA) biosynthesis
- superpathway of L-isoleucine biosynthesis I
PlantCyc(15)
- superpathway of anthocyanin biosynthesis (from pelargonidin 3-O-glucoside)
- salvianin biosynthesis
- shisonin biosynthesis
- pelargonidin conjugates biosynthesis
- lupanine biosynthesis
- superpathway of anthocyanin biosynthesis (from cyanidin and cyanidin 3-O-glucoside)
- canavanine degradation
- aurone biosynthesis
- polymethylated quercetin glucoside biosynthesis I - quercetin series (Chrysosplenium)
- polymethylated quercetin glucoside biosynthesis II - quercetagetin series (Chrysosplenium)
- kaempferide triglycoside biosynthesis
- superpathway of polymethylated quercetin/quercetagetin glucoside biosynthesis (Chrysosplenium)
- eupatolitin 3-O-glucoside biosynthesis
- violdelphin biosynthesis
- S-adenosyl-L-methionine cycle II
代谢反应
0 个相关的代谢反应过程信息。
Reactome(0)
BioCyc(0)
WikiPathways(0)
Plant Reactome(0)
INOH(0)
PlantCyc(0)
COVID-19 Disease Map(0)
PathBank(0)
PharmGKB(0)
1 个相关的物种来源信息
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
- Li Zhang, Quan Yuan, Chaoyang Hu, Xue Sun, Yifu Gong, Nianjun Xu. Characterization of monogalactosyldiacylglycerol synthases in Gracilariopsis lemaneiformis and their potential roles in the fading of the thallus.
Journal of phycology.
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Autophagy.
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The FEBS journal.
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Journal of ethnopharmacology.
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BioTechniques.
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Clinical biochemistry.
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Food chemistry.
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Food & function.
2016 Jan; 7(1):398-408. doi:
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Redox biology.
2015 Dec; 6(?):100-105. doi:
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Metabolic brain disease.
2015 Dec; 30(6):1359-67. doi:
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Analytical chemistry.
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Annals of hematology.
2012 Jul; 91(7):1097-105. doi:
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Journal of pharmaceutical and biomedical analysis.
2012 Jul; 66(?):314-24. doi:
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Journal of food science.
2012 Jun; 77(6):C620-6. doi:
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Journal of inflammation (London, England).
2012 Apr; 9(?):13. doi:
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Journal of experimental botany.
2012 Apr; 63(7):2513-24. doi:
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Journal of medicinal food.
2012 Apr; 15(4):378-83. doi:
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European journal of pharmacology.
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Journal of clinical biochemistry and nutrition.
2012 Mar; 50(2):91-105. doi:
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Purinergic signalling.
2012 Mar; 8(1):59-70. doi:
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Chemical research in toxicology.
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Drug testing and analysis.
2012 Feb; 4(2):158-66. doi:
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BMC biochemistry.
2012 Jan; 13(?):2. doi:
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PloS one.
2012; 7(5):e37508. doi:
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Evidence-based complementary and alternative medicine : eCAM.
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Ecotoxicology and environmental safety.
2012 Jan; 75(1):1-7. doi:
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Bulletin of experimental biology and medicine.
2012 Jan; 152(3):289-92. doi:
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PloS one.
2012; 7(5):e37693. doi:
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PloS one.
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Epilepsia.
2012 Jan; 53(1):157-67. doi:
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PloS one.
2012; 7(4):e34200. doi:
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Journal of proteome research.
2012 Jan; 11(1):412-24. doi:
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Orphanet journal of rare diseases.
2011 Dec; 6(?):86. doi:
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American journal of physiology. Regulatory, integrative and comparative physiology.
2011 Nov; 301(5):R1318-37. doi:
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Disease models & mechanisms.
2011 Nov; 4(6):777-85. doi:
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Molecular pharmaceutics.
2011 Oct; 8(5):1750-6. doi:
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Journal of ethnopharmacology.
2011 Sep; 137(1):192-8. doi:
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Cell.
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Proceedings of the National Academy of Sciences of the United States of America.
2011 Jul; 108(28):11411-6. doi:
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Journal of neuroinflammation.
2011 Jul; 8(?):78. doi:
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Meat science.
2011 Jul; 88(3):384-90. doi:
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Brain research reviews.
2011 Jun; 67(1-2):268-81. doi:
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American journal of physiology. Gastrointestinal and liver physiology.
2011 Jun; 300(6):G1105-14. doi:
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Journal of neurochemistry.
2011 May; 117(4):603-12. doi:
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Traffic (Copenhagen, Denmark).
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Patologicheskaia fiziologiia i eksperimental'naia terapiia.
2011 Apr; ?(2):55-60. doi:
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Journal of cell science.
2011 Mar; 124(Pt 6):921-32. doi:
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Journal of molecular and cellular cardiology.
2011 Mar; 50(3):401-7. doi:
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PLoS pathogens.
2011 Mar; 7(3):e1002008. doi:
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Diabetes.
2011 Mar; 60(3):838-47. doi:
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PloS one.
2011 Feb; 6(2):e17310. doi:
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PLoS pathogens.
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The Plant cell.
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Molecules (Basel, Switzerland).
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Journal of the science of food and agriculture.
2011 Jan; 91(1):94-9. doi:
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Journal of agricultural and food chemistry.
2011 Jan; 59(1):241-8. doi:
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Oxidative medicine and cellular longevity.
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Molecular vision.
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PloS one.
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PloS one.
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Methods in molecular biology (Clifton, N.J.).
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Scientific reports.
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