Chorismic acid (BioDeep_00001868720)
Main id: BioDeep_00000003941
natural product
代谢物信息卡片
化学式: C10H10O6 (226.0477)
中文名称: 氯磺酸
谱图信息:
最多检出来源 () 0%
分子结构信息
SMILES: C=C(C(=O)O)OC1C=C(C=CC1O)C(=O)O
InChI: InChI=1S/C10H10O6/c1-5(9(12)13)16-8-4-6(10(14)15)2-3-7(8)11/h2-4,7-8,11H,1H2,(H,12,13)(H,14,15)/t7-,8-/m1/s1
描述信息
The (3R,4R)-stereoisomer of 5-[(1-carboxyethenyl)oxy]-6-hydroxycyclohexa-1,3-diene-1-carboxylic acid.
同义名列表
2 个代谢物同义名
数据库引用编号
15 个数据库交叉引用编号
- ChEBI: CHEBI:17333
- KEGG: C00251
- PubChem: 12039
- MeSH: Chorismic Acid
- CAS: 617-12-9
- MetaboLights: MTBLC17333
- PubChem: 3550
- KNApSAcK: C00000733
- PDB-CCD: ISJ
- 3DMET: B01200
- NIKKAJI: J7.035A
- RefMet: Chorismic acid
- LOTUS: LTS0252042
- KNApSAcK: 17333
- LOTUS: LTS0229809
分类词条
相关代谢途径
PlantCyc(0)
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)
68 个相关的物种来源信息
- 4056 - Apocynaceae: LTS0229809
- 4056 - Apocynaceae: LTS0252042
- 2 - Bacteria: LTS0229809
- 2 - Bacteria: LTS0252042
- 4057 - Catharanthus: LTS0229809
- 4057 - Catharanthus: LTS0252042
- 4058 - Catharanthus roseus: 10.1007/BF00233788
- 4058 - Catharanthus roseus: LTS0229809
- 4058 - Catharanthus roseus: LTS0252042
- 2759 - Eukaryota: LTS0229809
- 2759 - Eukaryota: LTS0252042
- 4751 - Fungi: LTS0229809
- 4751 - Fungi: LTS0252042
- 25168 - Galium: LTS0229809
- 25168 - Galium: LTS0252042
- 254777 - Galium mollugo: 10.1007/S004250050120
- 254777 - Galium mollugo: LTS0229809
- 254777 - Galium mollugo: LTS0252042
- 3398 - Magnoliopsida: LTS0229809
- 3398 - Magnoliopsida: LTS0252042
- 2212703 - Mucoromycetes: LTS0229809
- 2212703 - Mucoromycetes: LTS0252042
- 1913637 - Mucoromycota: LTS0229809
- 1913637 - Mucoromycota: LTS0252042
- 4836 - Phycomyces: LTS0229809
- 4836 - Phycomyces: LTS0252042
- 4837 - Phycomyces blakesleeanus: 10.1016/0031-9422(96)00146-X
- 4837 - Phycomyces blakesleeanus: LTS0229809
- 4837 - Phycomyces blakesleeanus: LTS0252042
- 1344966 - Phycomycetaceae: LTS0229809
- 1344966 - Phycomycetaceae: LTS0252042
- 24966 - Rubiaceae: LTS0229809
- 24966 - Rubiaceae: LTS0252042
- 1883 - Streptomyces: 10.1099/00221287-131-6-1279
- 1883 - Streptomyces: 10.1139/M79-220
- 1883 - Streptomyces: LTS0229809
- 1883 - Streptomyces: LTS0252042
- 1886 - Streptomyces albidoflavus: 10.1099/00221287-131-6-1279
- 1886 - Streptomyces albidoflavus: 10.1139/M79-220
- 1886 - Streptomyces albidoflavus: LTS0229809
- 1886 - Streptomyces albidoflavus: LTS0252042
- 1890 - Streptomyces antibioticus: LTS0229809
- 1890 - Streptomyces antibioticus: LTS0252042
- 1898 - Streptomyces cacaoi: LTS0229809
- 1898 - Streptomyces cacaoi: LTS0252042
- 66857 - Streptomyces cacaoi subsp. cacaoi: 10.1099/00221287-131-6-1279
- 66857 - Streptomyces cacaoi subsp. cacaoi: 10.1139/M79-220
- 1902 - Streptomyces coelicolor: 10.1099/00221287-131-6-1279
- 1902 - Streptomyces coelicolor: 10.1139/M79-220
- 1902 - Streptomyces coelicolor: LTS0229809
- 1902 - Streptomyces coelicolor: LTS0252042
- 1911 - Streptomyces griseus:
- 1911 - Streptomyces griseus: 10.1099/00221287-131-6-1279
- 1911 - Streptomyces griseus: 10.1139/M79-220
- 1911 - Streptomyces griseus: LTS0229809
- 1911 - Streptomyces griseus: LTS0252042
- 1912 - Streptomyces hygroscopicus: 10.1099/00221287-131-6-1279
- 1912 - Streptomyces hygroscopicus: 10.1139/M79-220
- 1912 - Streptomyces hygroscopicus: LTS0229809
- 1912 - Streptomyces hygroscopicus: LTS0252042
- 2062 - Streptomycetaceae: LTS0229809
- 2062 - Streptomycetaceae: LTS0252042
- 35493 - Streptophyta: LTS0229809
- 35493 - Streptophyta: LTS0252042
- 58023 - Tracheophyta: LTS0229809
- 58023 - Tracheophyta: LTS0252042
- 33090 - Viridiplantae: LTS0229809
- 33090 - Viridiplantae: LTS0252042
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
- Wei Li, Jinyu He, Xiuzhuo Wang, Matthew Ashline, Zirui Wu, Fengquan Liu, Zheng Qing Fu, Ming Chang. PBS3: a versatile player in and beyond salicylic acid biosynthesis in Arabidopsis.
The New phytologist.
2023 01; 237(2):414-422. doi:
10.1111/nph.18558
. [PMID: 36263689] - Ravikumar R Patel, Disha D Patel, Jaimika Bhatt, Parth Thakor, Lindsay R Triplett, Vasudev R Thakkar. Induction of pre-chorismate, jasmonate and salicylate pathways by Burkholderia sp. RR18 in peanut seedlings.
Journal of applied microbiology.
2021 Sep; 131(3):1417-1430. doi:
10.1111/jam.15019
. [PMID: 33522007] - Estanislao Burgos, Maria Belen De Luca, Isidore Diouf, Luis A de Haro, Elise Albert, Christopher Sauvage, Zhao J Tao, Luisa Bermudez, Ramon Asís, Adriano N Nesi, Michel Matringe, Claire Bréhélin, Thomas Guiraud, Carine Ferrand, Isabelle Atienza, Joana Jorly, Jean P Mauxion, Pierre Baldet, Alisdair R Fernie, Leandro Quadrana, Christophe Rothan, Mathilde Causse, Fernando Carrari. Validated MAGIC and GWAS population mapping reveals the link between vitamin E content and natural variation in chorismate metabolism in tomato.
The Plant journal : for cell and molecular biology.
2021 02; 105(4):907-923. doi:
10.1111/tpj.15077
. [PMID: 33179365] - Wenfang Lin, Hong Zhang, Dongmei Huang, Dirk Schenke, Daguang Cai, Binghua Wu, Ying Miao. Dual-Localized WHIRLY1 Affects Salicylic Acid Biosynthesis via Coordination of ISOCHORISMATE SYNTHASE1, PHENYLALANINE AMMONIA LYASE1, and S-ADENOSYL-L-METHIONINE-DEPENDENT METHYLTRANSFERASE1.
Plant physiology.
2020 12; 184(4):1884-1899. doi:
10.1104/pp.20.00964
. [PMID: 32900979] - Amna Mhamdi. Here, There, and Everywhere: Plastid- and Nuclear-Localized WHIRLY1 Regulates Salicylic Acid Homeostasis during Developmental Senescence.
Plant physiology.
2020 12; 184(4):1620-1621. doi:
10.1104/pp.20.01475
. [PMID: 33277328] - Zhu Li, Huiying Wang, Dongqin Ding, Yongfei Liu, Huan Fang, Zhishuai Chang, Tao Chen, Dawei Zhang. Metabolic engineering of Escherichia coli for production of chemicals derived from the shikimate pathway.
Journal of industrial microbiology & biotechnology.
2020 Jul; 47(6-7):525-535. doi:
10.1007/s10295-020-02288-2
. [PMID: 32642925] - Michael P Torrens-Spence, Anastassia Bobokalonova, Valentina Carballo, Christopher M Glinkerman, Tomáš Pluskal, Amber Shen, Jing-Ke Weng. PBS3 and EPS1 Complete Salicylic Acid Biosynthesis from Isochorismate in Arabidopsis.
Molecular plant.
2019 12; 12(12):1577-1586. doi:
10.1016/j.molp.2019.11.005
. [PMID: 31760159] - Yongkun Lv, Monireh Marsafari, Mattheos Koffas, Jingwen Zhou, Peng Xu. Optimizing Oleaginous Yeast Cell Factories for Flavonoids and Hydroxylated Flavonoids Biosynthesis.
ACS synthetic biology.
2019 11; 8(11):2514-2523. doi:
10.1021/acssynbio.9b00193
. [PMID: 31622552] - Cynthia K Holland, Corey S Westfall, Jason E Schaffer, Alejandro De Santiago, Chloe Zubieta, Sophie Alvarez, Joseph M Jez. Brassicaceae-specific Gretchen Hagen 3 acyl acid amido synthetases conjugate amino acids to chorismate, a precursor of aromatic amino acids and salicylic acid.
The Journal of biological chemistry.
2019 11; 294(45):16855-16864. doi:
10.1074/jbc.ra119.009949
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Science (New York, N.Y.).
2019 08; 365(6452):498-502. doi:
10.1126/science.aaw1720
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Nature.
2019 01; 565(7741):650-653. doi:
10.1038/s41586-018-0857-9
. [PMID: 30651637] - Yingjie Zhou, Johan Memelink, Huub J M Linthorst. An E. coli biosensor for screening of cDNA libraries for isochorismate pyruvate lyase-encoding cDNAs.
Molecular genetics and genomics : MGG.
2018 Oct; 293(5):1181-1190. doi:
10.1007/s00438-018-1450-5
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Molecular biology reports.
2018 Oct; 45(5):1331-1338. doi:
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The Biochemical journal.
2017 04; 474(10):1579-1590. doi:
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Mini reviews in medicinal chemistry.
2017; 17(12):1013-1027. doi:
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The Plant journal : for cell and molecular biology.
2017 01; 89(1):141-154. doi:
10.1111/tpj.13352
. [PMID: 27612091] - David A Lovelock, Ivana Šola, Sabine Marschollek, Caroline E Donald, Gordana Rusak, Karl-Heinz van Pée, Jutta Ludwig-Müller, David M Cahill. Analysis of salicylic acid-dependent pathways in Arabidopsis thaliana following infection with Plasmodiophora brassicae and the influence of salicylic acid on disease.
Molecular plant pathology.
2016 10; 17(8):1237-51. doi:
10.1111/mpp.12361
. [PMID: 26719902] - Rafia Mir, Shais Jallu, T P Singh. The shikimate pathway: review of amino acid sequence, function and three-dimensional structures of the enzymes.
Critical reviews in microbiology.
2015 Jun; 41(2):172-89. doi:
10.3109/1040841x.2013.813901
. [PMID: 23919299] - Münevver Doğramacı, Michael E Foley, David P Horvath, Alvaro G Hernandez, Radhika S Khetani, Christopher J Fields, Kathleen M Keating, Mark A Mikel, James V Anderson. Glyphosate's impact on vegetative growth in leafy spurge identifies molecular processes and hormone cross-talk associated with increased branching.
BMC genomics.
2015 May; 16(?):395. doi:
10.1186/s12864-015-1627-9
. [PMID: 25986459] - Xiaoyan Wang, Jiong Gao, Zheng Zhu, Xianxin Dong, Xiaolei Wang, Guodong Ren, Xin Zhou, Benke Kuai. TCP transcription factors are critical for the coordinated regulation of isochorismate synthase 1 expression in Arabidopsis thaliana.
The Plant journal : for cell and molecular biology.
2015 Apr; 82(1):151-62. doi:
10.1111/tpj.12803
. [PMID: 25702611] - Marina Eremina, Wilfried Rozhon, Saiqi Yang, Brigitte Poppenberger. ENO2 activity is required for the development and reproductive success of plants, and is feedback-repressed by AtMBP-1.
The Plant journal : for cell and molecular biology.
2015 Mar; 81(6):895-906. doi:
10.1111/tpj.12775
. [PMID: 25620024] - Corey S Westfall, Ang Xu, Joseph M Jez. Structural evolution of differential amino acid effector regulation in plant chorismate mutases.
The Journal of biological chemistry.
2014 Oct; 289(41):28619-28. doi:
10.1074/jbc.m114.591123
. [PMID: 25160622] - Christian Pfaff, Niels Glindemann, Jens Gruber, Margrit Frentzen, Radin Sadre. Chorismate pyruvate-lyase and 4-hydroxy-3-solanesylbenzoate decarboxylase are required for plastoquinone biosynthesis in the cyanobacterium Synechocystis sp. PCC6803.
The Journal of biological chemistry.
2014 Jan; 289(5):2675-86. doi:
10.1074/jbc.m113.511709
. [PMID: 24337576] - Jon Lucas Boatwright, Karolina Pajerowska-Mukhtar. Salicylic acid: an old hormone up to new tricks.
Molecular plant pathology.
2013 Aug; 14(6):623-34. doi:
10.1111/mpp.12035
. [PMID: 23621321] - Yeon Hee Ban, Jong Hyun Lee, Gyo Rim Gu, Boram Lee, SangJoon Mo, Ho Jeong Kwon, Yeo Joon Yoon. Mutational biosynthesis of a FK506 analogue containing a non-natural starter unit.
Molecular bioSystems.
2013 May; 9(5):944-7. doi:
10.1039/c2mb25419k
. [PMID: 23223556] - David Hansson, Audrius Menkis, Ke Olson, Jan Stenlid, Anders Broberg, Magnus Karlsson. Biosynthesis of fomannoxin in the root rotting pathogen Heterobasidion occidentale.
Phytochemistry.
2012 Dec; 84(?):31-9. doi:
10.1016/j.phytochem.2012.08.008
. [PMID: 22981000] - Alex Van Moerkercke, Carlos S Galván-Ampudia, Julian C Verdonk, Michel A Haring, Robert C Schuurink. Regulators of floral fragrance production and their target genes in petunia are not exclusively active in the epidermal cells of petals.
Journal of experimental botany.
2012 May; 63(8):3157-71. doi:
10.1093/jxb/ers034
. [PMID: 22345641] - Darren M Soanes, Apratim Chakrabarti, Konrad H Paszkiewicz, Angus L Dawe, Nicholas J Talbot. Genome-wide transcriptional profiling of appressorium development by the rice blast fungus Magnaporthe oryzae.
PLoS pathogens.
2012 Feb; 8(2):e1002514. doi:
10.1371/journal.ppat.1002514
. [PMID: 22346750] - Stephanus J Ferreira, Uwe Sonnewald. The mode of sucrose degradation in potato tubers determines the fate of assimilate utilization.
Frontiers in plant science.
2012; 3(?):23. doi:
10.3389/fpls.2012.00023
. [PMID: 22639642] - Christoph Hemetsberger, Christian Herrberger, Bernd Zechmann, Morten Hillmer, Gunther Doehlemann. The Ustilago maydis effector Pep1 suppresses plant immunity by inhibition of host peroxidase activity.
PLoS pathogens.
2012; 8(5):e1002684. doi:
10.1371/journal.ppat.1002684
. [PMID: 22589719] - Janick Mathys, Kaat De Cremer, Pieter Timmermans, Stefan Van Kerckhove, Bart Lievens, Mieke Vanhaecke, Bruno P A Cammue, Barbara De Coninck. Genome-Wide Characterization of ISR Induced in Arabidopsis thaliana by Trichoderma hamatum T382 Against Botrytis cinerea Infection.
Frontiers in plant science.
2012; 3(?):108. doi:
10.3389/fpls.2012.00108
. [PMID: 22661981] - Samantha Rayson, Luis Arciga-Reyes, Lucie Wootton, Marta De Torres Zabala, William Truman, Neil Graham, Murray Grant, Brendan Davies. A role for nonsense-mediated mRNA decay in plants: pathogen responses are induced in Arabidopsis thaliana NMD mutants.
PloS one.
2012; 7(2):e31917. doi:
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PLoS pathogens.
2012; 8(3):e1002515. doi:
10.1371/journal.ppat.1002515
. [PMID: 22396640] - Ilga Porth, Björn Hamberger, Richard White, Kermit Ritland. Defense mechanisms against herbivory in Picea: sequence evolution and expression regulation of gene family members in the phenylpropanoid pathway.
BMC genomics.
2011 Dec; 12(?):608. doi:
10.1186/1471-2164-12-608
. [PMID: 22177423] - Yunliu Zeng, Zhiyong Pan, Yuduan Ding, Andan Zhu, Hongbo Cao, Qiang Xu, Xiuxin Deng. A proteomic analysis of the chromoplasts isolated from sweet orange fruits [Citrus sinensis (L.) Osbeck].
Journal of experimental botany.
2011 Nov; 62(15):5297-309. doi:
10.1093/jxb/err140
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Nature.
2011 Oct; 478(7369):395-8. doi:
10.1038/nature10454
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Microbial cell factories.
2011 Sep; 10(?):71. doi:
10.1186/1475-2859-10-71
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BMC plant biology.
2011 Aug; 11(?):118. doi:
10.1186/1471-2229-11-118
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BMC bioinformatics.
2011 Aug; 12(?):343. doi:
10.1186/1471-2105-12-343
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BMC structural biology.
2011 Aug; 11(?):33. doi:
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Journal of experimental botany.
2011 Aug; 62(13):4423-31. doi:
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Journal of chemical ecology.
2011 Aug; 37(8):857-70. doi:
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2011 Jul; 11(?):169. doi:
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Plant physiology.
2011 Jul; 156(3):1269-77. doi:
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2011 Jul; 62(11):3837-48. doi:
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2011 Jul; 178(1-2):7-14. doi:
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2011 Jul; 62(11):3781-98. doi:
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BMC plant biology.
2011 May; 11(?):89. doi:
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BMC plant biology.
2011 Apr; 11(?):62. doi:
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BMC genomics.
2011 Jan; 12(?):87. doi:
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2011 Jan; 62(3):1133-43. doi:
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