Record Information |
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Version | 2.0 |
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Created at | 2024-09-10 19:23:47 UTC |
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Updated at | 2024-09-10 19:23:47 UTC |
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NP-MRD ID | NP0334666 |
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Secondary Accession Numbers | None |
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Natural Product Identification |
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Common Name | Ursocholic acid |
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Description | Ursocholic acid is also known as ursocholate. Ursocholic acid was first documented in 2017 (PMID: 28751127). Based on a literature review a significant number of articles have been published on Ursocholic acid (PMID: 39131951) (PMID: 38563684) (PMID: 38107125) (PMID: 36991414) (PMID: 35774985) (PMID: 35738801). |
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Structure | [H][C@@]12CC[C@H]([C@H](C)CCC(O)=O)[C@@]1(C)[C@@H](O)C[C@@]1([H])[C@@]2([H])[C@@H](O)C[C@]2([H])C[C@H](O)CC[C@]12C InChI=1/C24H40O5/c1-13(4-7-21(28)29)16-5-6-17-22-18(12-20(27)24(16,17)3)23(2)9-8-15(25)10-14(23)11-19(22)26/h13-20,22,25-27H,4-12H2,1-3H3,(H,28,29)/t13-,14+,15-,16-,17+,18+,19+,20+,22+,23+,24-/s2 |
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Synonyms | Value | Source |
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Ursocholate | Generator |
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Chemical Formula | C24H40O5 |
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Average Mass | 408.5790 Da |
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Monoisotopic Mass | 408.28757 Da |
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IUPAC Name | (4R)-4-[(1R,3aS,3bR,4S,5aS,7R,9aS,9bS,11S,11aR)-4,7,11-trihydroxy-9a,11a-dimethyl-hexadecahydro-1H-cyclopenta[a]phenanthren-1-yl]pentanoic acid |
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Traditional Name | ursocholic acid |
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CAS Registry Number | Not Available |
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SMILES | [H][C@@]12CC[C@H]([C@H](C)CCC(O)=O)[C@@]1(C)[C@@H](O)C[C@@]1([H])[C@@]2([H])[C@@H](O)C[C@]2([H])C[C@H](O)CC[C@]12C |
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InChI Identifier | InChI=1/C24H40O5/c1-13(4-7-21(28)29)16-5-6-17-22-18(12-20(27)24(16,17)3)23(2)9-8-15(25)10-14(23)11-19(22)26/h13-20,22,25-27H,4-12H2,1-3H3,(H,28,29)/t13-,14+,15-,16-,17+,18+,19+,20+,22+,23+,24-/s2 |
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InChI Key | BHQCQFFYRZLCQQ-SDINWSFBNA-N |
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Experimental Spectra |
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| Not Available | Predicted Spectra |
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| Not Available | Chemical Shift Submissions |
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| Not Available | Species |
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Species of Origin | Not Available |
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Chemical Taxonomy |
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Description | This compound belongs to the class of organic compounds known as trihydroxy bile acids, alcohols and derivatives. These are prenol lipids structurally characterized by a bile acid or alcohol which bears three hydroxyl groups. |
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Kingdom | Organic compounds |
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Super Class | Lipids and lipid-like molecules |
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Class | Steroids and steroid derivatives |
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Sub Class | Bile acids, alcohols and derivatives |
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Direct Parent | Trihydroxy bile acids, alcohols and derivatives |
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Alternative Parents | |
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Substituents | - Trihydroxy bile acid, alcohol, or derivatives
- 3-hydroxysteroid
- 12-hydroxysteroid
- 7-hydroxysteroid
- 7-alpha-hydroxysteroid
- 3-alpha-hydroxysteroid
- Hydroxysteroid
- Cyclic alcohol
- Secondary alcohol
- Carboxylic acid derivative
- Carboxylic acid
- Polyol
- Monocarboxylic acid or derivatives
- Organic oxide
- Alcohol
- Organic oxygen compound
- Hydrocarbon derivative
- Carbonyl group
- Organooxygen compound
- Aliphatic homopolycyclic compound
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Molecular Framework | Aliphatic homopolycyclic compounds |
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External Descriptors | |
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Physical Properties |
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State | Not Available |
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Experimental Properties | Property | Value | Reference |
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Melting Point | Not Available | Not Available | Boiling Point | Not Available | Not Available | Water Solubility | Not Available | Not Available | LogP | Not Available | Not Available |
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Predicted Properties | |
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General References | - Wen Y, Chen B, Huang J, Luo Y, Lv S, Qiu H, Li S, Liu S, He L, He M, Yu Z, Zhao M, Yang Q, Li D, Gu C: Konjac supplementation can alleviate obesity induced by high-fat diet in mice by modulating gut microbiota and its metabolites. Curr Res Food Sci. 2024 Jul 14;9:100805. doi: 10.1016/j.crfs.2024.100805. eCollection 2024. [PubMed:39131951 ]
- Madjirebaye P, Peng Z, Mueed A, Huang T, Peng F, Allasra Y, Benar ME, Hu Z, Xie M, Xiong T: Promising probiotic-fermented soymilk for alleviating acute diarrhea: insights into the microbiome and metabolomics. Food Funct. 2024 Apr 22;15(8):4462-4474. doi: 10.1039/d3fo05690b. [PubMed:38563684 ]
- Yan J, Zhang R, Kang J, Zhong Y, Abudurexiti A, Tan H, Lei Y, Ma X: Effect of Cichorium glandulosum on intestinal microbiota and bile acid metabolism in db/db mice. Food Sci Nutr. 2023 Oct 25;11(12):7765-7778. doi: 10.1002/fsn3.3694. eCollection 2023 Dec. [PubMed:38107125 ]
- Yin G, Guo Y, Ding Q, Ma S, Chen F, Wang Q, Chen H, Wang H: Klebsiella quasipneumoniae in intestine damages bile acid metabolism in hematopoietic stem cell transplantation patients with bloodstream infection. J Transl Med. 2023 Mar 29;21(1):230. doi: 10.1186/s12967-023-04068-9. [PubMed:36991414 ]
- Yu C, Wang L, Cai W, Zhang W, Hu Z, Wang Z, Yang Z, Peng M, Huo H, Zhang Y, Zhou Q: Dietary Macroalgae Saccharina japonica Ameliorates Liver Injury Induced by a High-Carbohydrate Diet in Swamp Eel (Monopterus albus). Front Vet Sci. 2022 Jun 14;9:869369. doi: 10.3389/fvets.2022.869369. eCollection 2022. [PubMed:35774985 ]
- Lee PC, Wu CJ, Hung YW, Lee CJ, Chi CT, Lee IC, Yu-Lun K, Chou SH, Luo JC, Hou MC, Huang YH: Gut microbiota and metabolites associate with outcomes of immune checkpoint inhibitor-treated unresectable hepatocellular carcinoma. J Immunother Cancer. 2022 Jun;10(6):e004779. doi: 10.1136/jitc-2022-004779. [PubMed:35738801 ]
- Pilipovic A, Mitrovic D, Obradovic S, Posa M: Docking-based analysis and modeling of the activity of bile acids and their synthetic analogues on large conductance Ca2+ activated K channels in smooth muscle cells. Eur Rev Med Pharmacol Sci. 2021 Dec;25(23):7501-7507. doi: 10.26355/eurrev_202112_27449. [PubMed:34919252 ]
- Dong Z, Wan D, Yang H, Li G, Zhang Y, Zhou X, Wu X, Yin Y: Effects of Iron Deficiency on Serum Metabolome, Hepatic Histology, and Function in Neonatal Piglets. Animals (Basel). 2020 Aug 5;10(8):1353. doi: 10.3390/ani10081353. [PubMed:32764239 ]
- Tawthep S, Fukiya S, Lee JY, Hagio M, Ogura Y, Hayashi T, Yokota A: Isolation of six novel 7-oxo- or urso-type secondary bile acid-producing bacteria from rat cecal contents. J Biosci Bioeng. 2017 Nov;124(5):514-522. doi: 10.1016/j.jbiosc.2017.06.002. Epub 2017 Jul 24. [PubMed:28751127 ]
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