| Record Information |
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| Version | 2.0 |
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| Created at | 2022-09-11 12:35:31 UTC |
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| Updated at | 2022-09-11 12:35:31 UTC |
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| NP-MRD ID | NP0314474 |
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| Secondary Accession Numbers | None |
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| Natural Product Identification |
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| Common Name | (-)-macrolactin a |
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| Description | Macrolactin-A belongs to the class of organic compounds known as macrolides and analogues. These are organic compounds containing a lactone ring of at least twelve members. (-)-macrolactin a was first documented in 2021 (PMID: 35478879). Based on a literature review a small amount of articles have been published on Macrolactin-A (PMID: 35722323) (PMID: 36081807) (PMID: 34570959) (PMID: 35145928). |
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| Structure | C[C@@H]1CCC\C=C\C=C\[C@@H](O)C[C@@H](O)C\C=C/C=C/[C@H](O)C\C=C\C=C/C(=O)O1 InChI=1S/C24H34O5/c1-20-13-7-3-2-4-8-16-22(26)19-23(27)17-11-5-9-14-21(25)15-10-6-12-18-24(28)29-20/h2,4-6,8-12,14,16,18,20-23,25-27H,3,7,13,15,17,19H2,1H3/b4-2+,10-6+,11-5-,14-9+,16-8+,18-12-/t20-,21+,22-,23+/m1/s1 |
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| Synonyms | | Value | Source |
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| Macrolactin a | MeSH |
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| Chemical Formula | C24H34O5 |
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| Average Mass | 402.5310 Da |
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| Monoisotopic Mass | 402.24062 Da |
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| IUPAC Name | (3Z,5E,8R,9E,11Z,14S,16S,17E,19E,24R)-8,14,16-trihydroxy-24-methyl-1-oxacyclotetracosa-3,5,9,11,17,19-hexaen-2-one |
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| Traditional Name | (3Z,5E,8R,9E,11Z,14S,16S,17E,19E,24R)-8,14,16-trihydroxy-24-methyl-1-oxacyclotetracosa-3,5,9,11,17,19-hexaen-2-one |
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| CAS Registry Number | Not Available |
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| SMILES | C[C@@H]1CCC\C=C\C=C\[C@@H](O)C[C@@H](O)C\C=C/C=C/[C@H](O)C\C=C\C=C/C(=O)O1 |
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| InChI Identifier | InChI=1S/C24H34O5/c1-20-13-7-3-2-4-8-16-22(26)19-23(27)17-11-5-9-14-21(25)15-10-6-12-18-24(28)29-20/h2,4-6,8-12,14,16,18,20-23,25-27H,3,7,13,15,17,19H2,1H3/b4-2+,10-6+,11-5-,14-9+,16-8+,18-12-/t20-,21+,22-,23+/m1/s1 |
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| InChI Key | XXDIJWSZFWZBRM-QCEWEWFLSA-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 | Not Available |
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| Chemical Taxonomy |
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| Description | Belongs to the class of organic compounds known as macrolides and analogues. These are organic compounds containing a lactone ring of at least twelve members. |
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| Kingdom | Organic compounds |
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| Super Class | Phenylpropanoids and polyketides |
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| Class | Macrolides and analogues |
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| Sub Class | Not Available |
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| Direct Parent | Macrolides and analogues |
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| Alternative Parents | |
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| Substituents | - Macrolide
- Enoate ester
- Alpha,beta-unsaturated carboxylic ester
- Carboxylic acid ester
- Lactone
- Secondary alcohol
- Carboxylic acid derivative
- Monocarboxylic acid or derivatives
- Polyol
- Oxacycle
- Organoheterocyclic compound
- Hydrocarbon derivative
- Organic oxide
- Organooxygen compound
- Carbonyl group
- Alcohol
- Organic oxygen compound
- Aliphatic heteromonocyclic compound
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| Molecular Framework | Aliphatic heteromonocyclic 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 | - Zhou L, Wang J, Wu F, Yin C, Kim KH, Zhang Y: Termite Nest Associated Bacillus siamensis YC-9 Mediated Biocontrol of Fusarium oxysporum f. sp. cucumerinum. Front Microbiol. 2022 Jun 1;13:893393. doi: 10.3389/fmicb.2022.893393. eCollection 2022. [PubMed:35722323 ]
- Li X, Munir S, Xu Y, Wang Y, He Y: Combined mass spectrometry-guided genome mining and virtual screening for acaricidal activity in secondary metabolites of Bacillus velezensis W1. RSC Adv. 2021 Jul 21;11(41):25441-25449. doi: 10.1039/d1ra01326b. eCollection 2021 Jul 19. [PubMed:35478879 ]
- Sui X, Han X, Cao J, Li Y, Yuan Y, Gou J, Zheng Y, Meng C, Zhang C: Biocontrol potential of Bacillus velezensis EM-1 associated with suppressive rhizosphere soil microbes against tobacco bacterial wilt. Front Microbiol. 2022 Aug 23;13:940156. doi: 10.3389/fmicb.2022.940156. eCollection 2022. [PubMed:36081807 ]
- Chu D, Ilyas N, Peng L, Wang X, Wang D, Xu Z, Gao Q, Tan X, Zhang C, Li Y, Yuan Y: Genomic insights on fighting bacterial wilt by a novel Bacillus amyloliquefaciens strain Cas02. Microb Biotechnol. 2022 Apr;15(4):1152-1167. doi: 10.1111/1751-7915.13925. Epub 2021 Sep 27. [PubMed:34570959 ]
- Zhou P, Chen W, Zhu Z, Zhou K, Luo S, Hu S, Xia L, Ding X: Comparative Study of Bacillus amyloliquefaciens X030 on the Intestinal Flora and Antibacterial Activity Against Aeromonas of Grass Carp. Front Cell Infect Microbiol. 2022 Jan 25;12:815436. doi: 10.3389/fcimb.2022.815436. eCollection 2022. [PubMed:35145928 ]
- LOTUS database [Link]
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