| Record Information |
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| Version | 2.0 |
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| Created at | 2022-09-06 23:18:59 UTC |
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| Updated at | 2022-09-06 23:18:59 UTC |
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| NP-MRD ID | NP0239668 |
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| Secondary Accession Numbers | None |
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| Natural Product Identification |
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| Common Name | (1s,3as,3br,9ar,9br)-1-[(2r,5s)-5-(2-hydroxypropan-2-yl)-2-methyloxolan-2-yl]-3a,3b,6,6,9a-pentamethyl-dodecahydrocyclopenta[a]phenanthren-7-one |
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| Description | Ocotillone belongs to the class of organic compounds known as triterpene saponins. These are glycosylated derivatives of triterpene sapogenins. The sapogenin moiety backbone is usually based on the oleanane, ursane, taraxastane, bauerane, lanostane, lupeol, lupane, dammarane, cycloartane, friedelane, hopane, 9b,19-cyclo-lanostane, cycloartane, or cycloartanol skeleton. (1s,3as,3br,9ar,9br)-1-[(2r,5s)-5-(2-hydroxypropan-2-yl)-2-methyloxolan-2-yl]-3a,3b,6,6,9a-pentamethyl-dodecahydrocyclopenta[a]phenanthren-7-one is found in Aglaia foveolata, Aglaia rubiginosa, Amphipterygium adstringens, Betula pendula, Cabralea canjerana, Dysoxylum cauliflorum, Dysoxylum malabaricum, Forsythia suspensa and Simarouba versicolor. (1s,3as,3br,9ar,9br)-1-[(2r,5s)-5-(2-hydroxypropan-2-yl)-2-methyloxolan-2-yl]-3a,3b,6,6,9a-pentamethyl-dodecahydrocyclopenta[a]phenanthren-7-one was first documented in 2004 (PMID: 15132542). Based on a literature review a significant number of articles have been published on ocotillone (PMID: 21812341) (PMID: 34657566) (PMID: 34482293) (PMID: 32524840) (PMID: 17851443) (PMID: 17193324). |
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| Structure | CC(C)(O)[C@@H]1CC[C@@](C)(O1)[C@H]1CC[C@@]2(C)C1CC[C@@H]1[C@@]3(C)CCC(=O)C(C)(C)C3CC[C@@]21C InChI=1S/C30H50O3/c1-25(2)21-12-17-29(7)22(27(21,5)15-13-23(25)31)10-9-19-20(11-16-28(19,29)6)30(8)18-14-24(33-30)26(3,4)32/h19-22,24,32H,9-18H2,1-8H3/t19?,20-,21?,22+,24-,27-,28-,29+,30+/m0/s1 |
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| Synonyms | Not Available |
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| Chemical Formula | C30H50O3 |
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| Average Mass | 458.7270 Da |
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| Monoisotopic Mass | 458.37600 Da |
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| IUPAC Name | Not Available |
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| Traditional Name | Not Available |
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| CAS Registry Number | Not Available |
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| SMILES | CC(C)(O)[C@@H]1CC[C@@](C)(O1)[C@H]1CC[C@@]2(C)C1CC[C@@H]1[C@@]3(C)CCC(=O)C(C)(C)C3CC[C@@]21C |
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| InChI Identifier | InChI=1S/C30H50O3/c1-25(2)21-12-17-29(7)22(27(21,5)15-13-23(25)31)10-9-19-20(11-16-28(19,29)6)30(8)18-14-24(33-30)26(3,4)32/h19-22,24,32H,9-18H2,1-8H3/t19?,20-,21?,22+,24-,27-,28-,29+,30+/m0/s1 |
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| InChI Key | XSQYWMLMQVUWSF-STRFAOHKSA-N |
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| Experimental Spectra |
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| Not Available | | Predicted Spectra |
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| | Spectrum Type | Description | Depositor ID | Depositor Organization | Depositor | Deposition Date | View |
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| 1D NMR | 13C NMR Spectrum (1D, 25 MHz, H2O, predicted) | Wishart Lab | Wishart Lab | David Wishart | 2021-06-20 | View Spectrum | | 1D NMR | 1H NMR Spectrum (1D, 100 MHz, H2O, predicted) | Wishart Lab | Wishart Lab | David Wishart | 2021-06-20 | View Spectrum | | 1D NMR | 13C NMR Spectrum (1D, 252 MHz, H2O, predicted) | Wishart Lab | Wishart Lab | David Wishart | 2021-06-20 | View Spectrum | | 1D NMR | 1H NMR Spectrum (1D, 1000 MHz, H2O, predicted) | Wishart Lab | Wishart Lab | David Wishart | 2021-06-20 | View Spectrum | | 1D NMR | 13C NMR Spectrum (1D, 50 MHz, H2O, predicted) | Wishart Lab | Wishart Lab | David Wishart | 2021-06-20 | View Spectrum | | 1D NMR | 1H NMR Spectrum (1D, 200 MHz, H2O, predicted) | Wishart Lab | Wishart Lab | David Wishart | 2021-06-20 | View Spectrum | | 1D NMR | 13C NMR Spectrum (1D, 75 MHz, H2O, predicted) | Wishart Lab | Wishart Lab | David Wishart | 2021-06-20 | View Spectrum | | 1D NMR | 1H NMR Spectrum (1D, 300 MHz, H2O, predicted) | Wishart Lab | Wishart Lab | David Wishart | 2021-06-20 | View Spectrum | | 1D NMR | 13C NMR Spectrum (1D, 101 MHz, H2O, predicted) | Wishart Lab | Wishart Lab | David Wishart | 2021-06-20 | View Spectrum | | 1D NMR | 1H NMR Spectrum (1D, 400 MHz, H2O, predicted) | Wishart Lab | Wishart Lab | David Wishart | 2021-06-20 | View Spectrum | | 1D NMR | 13C NMR Spectrum (1D, 126 MHz, H2O, predicted) | Wishart Lab | Wishart Lab | David Wishart | 2021-06-20 | View Spectrum | | 1D NMR | 1H NMR Spectrum (1D, 500 MHz, H2O, predicted) | Wishart Lab | Wishart Lab | David Wishart | 2021-06-20 | View Spectrum | | 1D NMR | 13C NMR Spectrum (1D, 151 MHz, H2O, predicted) | Wishart Lab | Wishart Lab | David Wishart | 2021-06-20 | View Spectrum | | 1D NMR | 1H NMR Spectrum (1D, 600 MHz, H2O, predicted) | Wishart Lab | Wishart Lab | David Wishart | 2021-06-20 | View Spectrum | | 1D NMR | 13C NMR Spectrum (1D, 176 MHz, H2O, predicted) | Wishart Lab | Wishart Lab | David Wishart | 2021-06-20 | View Spectrum | | 1D NMR | 1H NMR Spectrum (1D, 700 MHz, H2O, predicted) | Wishart Lab | Wishart Lab | David Wishart | 2021-06-20 | View Spectrum | | 1D NMR | 13C NMR Spectrum (1D, 201 MHz, H2O, predicted) | Wishart Lab | Wishart Lab | David Wishart | 2021-06-20 | View Spectrum | | 1D NMR | 1H NMR Spectrum (1D, 800 MHz, H2O, predicted) | Wishart Lab | Wishart Lab | David Wishart | 2021-06-20 | View Spectrum | | 1D NMR | 13C NMR Spectrum (1D, 226 MHz, H2O, predicted) | Wishart Lab | Wishart Lab | David Wishart | 2021-06-20 | View Spectrum | | 1D NMR | 1H NMR Spectrum (1D, 900 MHz, H2O, predicted) | Wishart Lab | Wishart Lab | David Wishart | 2021-06-20 | View Spectrum |
| | Chemical Shift Submissions |
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| Not Available | | Species |
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| Species of Origin | |
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| Chemical Taxonomy |
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| Description | Belongs to the class of organic compounds known as triterpene saponins. These are glycosylated derivatives of triterpene sapogenins. The sapogenin moiety backbone is usually based on the oleanane, ursane, taraxastane, bauerane, lanostane, lupeol, lupane, dammarane, cycloartane, friedelane, hopane, 9b,19-cyclo-lanostane, cycloartane, or cycloartanol skeleton. |
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| Kingdom | Organic compounds |
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| Super Class | Lipids and lipid-like molecules |
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| Class | Prenol lipids |
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| Sub Class | Terpene glycosides |
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| Direct Parent | Triterpene saponins |
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| Alternative Parents | |
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| Substituents | - Triterpene saponin
- Triterpenoid
- Oxosteroid
- 3-oxosteroid
- Steroid
- Tetrahydrofuran
- Tertiary alcohol
- Cyclic ketone
- Ketone
- Oxacycle
- Organoheterocyclic compound
- Ether
- Dialkyl ether
- Organic oxygen compound
- Organic oxide
- Hydrocarbon derivative
- Organooxygen compound
- Carbonyl group
- Alcohol
- Aliphatic heteropolycyclic compound
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| Molecular Framework | Aliphatic heteropolycyclic compounds |
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| External Descriptors | Not Available |
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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 | - Hwang BY, Su BN, Chai H, Mi Q, Kardono LB, Afriastini JJ, Riswan S, Santarsiero BD, Mesecar AD, Wild R, Fairchild CR, Vite GD, Rose WC, Farnsworth NR, Cordell GA, Pezzuto JM, Swanson SM, Kinghorn AD: Silvestrol and episilvestrol, potential anticancer rocaglate derivatives from Aglaia silvestris. J Org Chem. 2004 May 14;69(10):3350-8. doi: 10.1021/jo040120f. [PubMed:15132542 ]
- Sarria AL, Soares MS, Matos AP, Fernandes JB, Vieira PC, da Silva MF: Effect of triterpenoids and limonoids isolated from Cabralea canjerana and Carapa guianensis (Meliaceae) against Spodoptera frugiperda (J. E. Smith). Z Naturforsch C J Biosci. 2011 May-Jun;66(5-6):245-50. doi: 10.1515/znc-2011-5-607. [PubMed:21812341 ]
- Morales-Cepeda AB, Macclesh Del Pino-Perez LA, Marmolejo M, Rivera-Armenta JL, Peraza-Vazquez H: Isolation of ocotillol/ocotillone from Fouquieria splendens (Ocote) using a batch reactor. Prep Biochem Biotechnol. 2022;52(5):540-548. doi: 10.1080/10826068.2021.1972425. Epub 2021 Oct 17. [PubMed:34657566 ]
- Toklo PM, Yayi Ladekan E, Linden A, Hounzangbe-Adote S, Kouam SF, Gbenou JD: Anthelmintic flavonoids and other compounds from Combretum glutinosum Perr. ex DC (Combretaceae) leaves. Acta Crystallogr C Struct Chem. 2021 Sep 1;77(Pt 9):505-512. doi: 10.1107/S2053229621007841. Epub 2021 Aug 6. [PubMed:34482293 ]
- Duan ZK, Lv TM, Song GS, Wang YX, Lin B, Huang XX: Structure reassignment of two triterpenes with CASE algorithms and DFT chemical shift predictions. Nat Prod Res. 2022 Jan;36(1):229-236. doi: 10.1080/14786419.2020.1777122. Epub 2020 Jun 11. [PubMed:32524840 ]
- Li Q, Yao ZH, Shi YH, Yao XS, Ye WC, Liu X: Determination of the three-dimensional structure of Gynoside A in solution using NMR and molecular modeling. Molecules. 2007 Apr 30;12(4):907-16. doi: 10.3390/12040907. [PubMed:17851443 ]
- Srinivas PV, Rao RR, Rao JM: Two new tetracyclic triterpenes from the heartwood of Ailanthus excelsa Roxb. Chem Biodivers. 2006 Aug;3(8):930-4. doi: 10.1002/cbdv.200690095. [PubMed:17193324 ]
- Liu X, Ye W, Mo Z, Yu B, Zhao S, Wu H, Che C, Jiang R, Mak TC, Hsiao WL: Five new Ocotillone-type saponins from Gynostemma pentaphyllum. J Nat Prod. 2004 Jul;67(7):1147-51. doi: 10.1021/np034018+. [PubMed:15270569 ]
- Rivero-Cruz JF, Chai HB, Kardono LB, Setyowati FM, Afriatini JJ, Riswan S, Farnsworth NR, Cordell GA, Pezzuto JM, Swanson SM, Kinghorn AD: Cytotoxic constituents of the twigs and leaves of Aglaia rubiginosa. J Nat Prod. 2004 Mar;67(3):343-7. doi: 10.1021/np0304417. [PubMed:15043407 ]
- LOTUS database [Link]
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