Record Information |
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Version | 5.0 |
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Status | Detected but not Quantified |
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Creation Date | 2014-10-08 15:55:17 UTC |
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Update Date | 2022-03-07 03:17:47 UTC |
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HMDB ID | HMDB0061823 |
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Secondary Accession Numbers | |
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Metabolite Identification |
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Common Name | 3-Hexenyl salicylic acid |
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Description | 3-Hexenyl salicylic acid, also known as cis-3-hexenyl salicylate, belongs to the class of organic compounds known as o-hydroxybenzoic acid esters. These are benzoic acid esters where the benzene ring is ortho-substituted with a hydroxy group. 3-Hexenyl salicylic acid is an extremely weak basic (essentially neutral) compound (based on its pKa). |
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Structure | [H]\C(CC)=C(\[H])CCOC(=O)C1=CC=CC=C1O InChI=1S/C13H16O3/c1-2-3-4-7-10-16-13(15)11-8-5-6-9-12(11)14/h3-6,8-9,14H,2,7,10H2,1H3/b4-3+ |
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Synonyms | Value | Source |
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3-Hexenyl salicylate | Generator | cis-3-Hexenyl salicylate | HMDB | 3-Hexenyl salicylate, (e)-isomer | HMDB |
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Chemical Formula | C13H16O3 |
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Average Molecular Weight | 220.2643 |
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Monoisotopic Molecular Weight | 220.109944378 |
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IUPAC Name | (3E)-hex-3-en-1-yl 2-hydroxybenzoate |
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Traditional Name | 3-hexenyl salicylate |
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CAS Registry Number | Not Available |
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SMILES | [H]\C(CC)=C(\[H])CCOC(=O)C1=CC=CC=C1O |
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InChI Identifier | InChI=1S/C13H16O3/c1-2-3-4-7-10-16-13(15)11-8-5-6-9-12(11)14/h3-6,8-9,14H,2,7,10H2,1H3/b4-3+ |
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InChI Key | IEPWIPZLLIOZLU-ONEGZZNKSA-N |
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Chemical Taxonomy |
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Description | Belongs to the class of organic compounds known as o-hydroxybenzoic acid esters. These are benzoic acid esters where the benzene ring is ortho-substituted with a hydroxy group. |
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Kingdom | Organic compounds |
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Super Class | Benzenoids |
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Class | Benzene and substituted derivatives |
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Sub Class | Benzoic acids and derivatives |
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Direct Parent | o-Hydroxybenzoic acid esters |
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Alternative Parents | |
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Substituents | - O-hydroxybenzoic acid ester
- Salicylic acid or derivatives
- Benzoyl
- 1-hydroxy-4-unsubstituted benzenoid
- 1-hydroxy-2-unsubstituted benzenoid
- Phenol
- Vinylogous acid
- Carboxylic acid ester
- Monocarboxylic acid or derivatives
- Carboxylic acid derivative
- Organic oxygen compound
- Organic oxide
- Hydrocarbon derivative
- Organooxygen compound
- Aromatic homomonocyclic compound
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Molecular Framework | Aromatic homomonocyclic compounds |
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External Descriptors | Not Available |
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Ontology |
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Physiological effect | Not Available |
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Disposition | |
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Process | Not Available |
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Role | Not Available |
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Physical Properties |
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State | Not Available |
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Experimental Molecular 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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Experimental Chromatographic Properties | Not Available |
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Predicted Molecular Properties | |
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Predicted Chromatographic Properties | Predicted Collision Cross SectionsPredicted Kovats Retention IndicesUnderivatizedDerivatized |
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Spectra |
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| GC-MS SpectraSpectrum Type | Description | Splash Key | Deposition Date | Source | View |
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Predicted GC-MS | Predicted GC-MS Spectrum - 3-Hexenyl salicylic acid GC-MS (Non-derivatized) - 70eV, Positive | splash10-00di-6900000000-9c23698cbe1973b08977 | 2017-09-20 | Wishart Lab | View Spectrum | Predicted GC-MS | Predicted GC-MS Spectrum - 3-Hexenyl salicylic acid GC-MS (1 TMS) - 70eV, Positive | splash10-0006-5900000000-66ff71ab7da7411e7267 | 2017-10-06 | Wishart Lab | View Spectrum | Predicted GC-MS | Predicted GC-MS Spectrum - 3-Hexenyl salicylic acid GC-MS (Non-derivatized) - 70eV, Positive | Not Available | 2021-10-12 | Wishart Lab | View Spectrum | Predicted GC-MS | Predicted GC-MS Spectrum - 3-Hexenyl salicylic acid GC-MS (Non-derivatized) - 70eV, Positive | Not Available | 2021-10-12 | Wishart Lab | View Spectrum |
MS/MS SpectraSpectrum Type | Description | Splash Key | Deposition Date | Source | View |
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Predicted LC-MS/MS | Predicted LC-MS/MS Spectrum - 3-Hexenyl salicylic acid 10V, Positive-QTOF | splash10-00di-3390000000-8010f528bce1e5ce68cf | 2017-10-06 | Wishart Lab | View Spectrum | Predicted LC-MS/MS | Predicted LC-MS/MS Spectrum - 3-Hexenyl salicylic acid 20V, Positive-QTOF | splash10-0089-9410000000-256ae1cd2de192372357 | 2017-10-06 | Wishart Lab | View Spectrum | Predicted LC-MS/MS | Predicted LC-MS/MS Spectrum - 3-Hexenyl salicylic acid 40V, Positive-QTOF | splash10-0ukl-9100000000-a09589911e1695c8ead5 | 2017-10-06 | Wishart Lab | View Spectrum | Predicted LC-MS/MS | Predicted LC-MS/MS Spectrum - 3-Hexenyl salicylic acid 10V, Negative-QTOF | splash10-014i-3390000000-d4badb5c1d6537223293 | 2017-10-06 | Wishart Lab | View Spectrum | Predicted LC-MS/MS | Predicted LC-MS/MS Spectrum - 3-Hexenyl salicylic acid 20V, Negative-QTOF | splash10-00ko-9830000000-93338d5791f48a106ea2 | 2017-10-06 | Wishart Lab | View Spectrum | Predicted LC-MS/MS | Predicted LC-MS/MS Spectrum - 3-Hexenyl salicylic acid 40V, Negative-QTOF | splash10-0006-9100000000-d52a3cdf8eacf5e9f185 | 2017-10-06 | Wishart Lab | View Spectrum | Predicted LC-MS/MS | Predicted LC-MS/MS Spectrum - 3-Hexenyl salicylic acid 10V, Negative-QTOF | splash10-014i-2090000000-0695443a95e15e3bdfe3 | 2021-09-24 | Wishart Lab | View Spectrum | Predicted LC-MS/MS | Predicted LC-MS/MS Spectrum - 3-Hexenyl salicylic acid 20V, Negative-QTOF | splash10-0006-9200000000-630549873e9a0e796852 | 2021-09-24 | Wishart Lab | View Spectrum | Predicted LC-MS/MS | Predicted LC-MS/MS Spectrum - 3-Hexenyl salicylic acid 40V, Negative-QTOF | splash10-0006-9000000000-455fb2cdd65dbc5306b2 | 2021-09-24 | Wishart Lab | View Spectrum | Predicted LC-MS/MS | Predicted LC-MS/MS Spectrum - 3-Hexenyl salicylic acid 10V, Positive-QTOF | splash10-00di-0930000000-007d8e0b7872b79a07dd | 2021-09-24 | Wishart Lab | View Spectrum | Predicted LC-MS/MS | Predicted LC-MS/MS Spectrum - 3-Hexenyl salicylic acid 20V, Positive-QTOF | splash10-00di-3900000000-8f88bb9b0194efc09f49 | 2021-09-24 | Wishart Lab | View Spectrum | Predicted LC-MS/MS | Predicted LC-MS/MS Spectrum - 3-Hexenyl salicylic acid 40V, Positive-QTOF | splash10-0a4i-9100000000-8bb15305aacb84a2123a | 2021-09-24 | Wishart Lab | View Spectrum |
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Biological Properties |
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Cellular Locations | Not Available |
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Biospecimen Locations | |
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Tissue Locations | Not Available |
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Pathways | |
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Normal Concentrations |
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Saliva | Detected but not Quantified | Not Quantified | Adult (>18 years old) | Not Specified | Normal | | details |
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Abnormal Concentrations |
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| Not Available |
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Associated Disorders and Diseases |
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Disease References | None |
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Associated OMIM IDs | None |
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External Links |
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DrugBank ID | Not Available |
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Phenol Explorer Compound ID | Not Available |
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FooDB ID | Not Available |
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KNApSAcK ID | Not Available |
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Chemspider ID | Not Available |
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KEGG Compound ID | Not Available |
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BioCyc ID | Not Available |
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BiGG ID | Not Available |
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Wikipedia Link | Not Available |
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METLIN ID | Not Available |
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PubChem Compound | 6021887 |
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PDB ID | Not Available |
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ChEBI ID | 88591 |
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Food Biomarker Ontology | Not Available |
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VMH ID | Not Available |
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MarkerDB ID | Not Available |
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Good Scents ID | Not Available |
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References |
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Synthesis Reference | Not Available |
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Material Safety Data Sheet (MSDS) | Not Available |
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General References | - Fontana A, Reichelt M, Hempel S, Gershenzon J, Unsicker SB: The effects of arbuscular mycorrhizal fungi on direct and indirect defense metabolites of Plantago lanceolata L. J Chem Ecol. 2009 Jul;35(7):833-43. doi: 10.1007/s10886-009-9654-0. Epub 2009 Jul 2. [PubMed:19568812 ]
- Liu S, Han B: Differential expression pattern of an acidic 9/13-lipoxygenase in flower opening and senescence and in leaf response to phloem feeders in the tea plant. BMC Plant Biol. 2010 Oct 25;10:228. doi: 10.1186/1471-2229-10-228. [PubMed:20969806 ]
- Erb M, Foresti N, Turlings TC: A tritrophic signal that attracts parasitoids to host-damaged plants withstands disruption by non-host herbivores. BMC Plant Biol. 2010 Nov 15;10:247. doi: 10.1186/1471-2229-10-247. [PubMed:21078181 ]
- Arimura G, Ozawa R, Maffei ME: Recent advances in plant early signaling in response to herbivory. Int J Mol Sci. 2011;12(6):3723-39. doi: 10.3390/ijms12063723. Epub 2011 Jun 7. [PubMed:21747702 ]
- Furstenberg-Hagg J, Zagrobelny M, Bak S: Plant defense against insect herbivores. Int J Mol Sci. 2013 May 16;14(5):10242-97. doi: 10.3390/ijms140510242. [PubMed:23681010 ]
- Song GC, Ryu CM: Two volatile organic compounds trigger plant self-defense against a bacterial pathogen and a sucking insect in cucumber under open field conditions. Int J Mol Sci. 2013 May 8;14(5):9803-19. doi: 10.3390/ijms14059803. [PubMed:23698768 ]
- Holopainen JK, Blande JD: Where do herbivore-induced plant volatiles go? Front Plant Sci. 2013 Jun 11;4:185. doi: 10.3389/fpls.2013.00185. eCollection 2013. [PubMed:23781224 ]
- Niinemets U, Kannaste A, Copolovici L: Quantitative patterns between plant volatile emissions induced by biotic stresses and the degree of damage. Front Plant Sci. 2013 Jul 23;4:262. doi: 10.3389/fpls.2013.00262. eCollection 2013. [PubMed:23888161 ]
- Scala A, Allmann S, Mirabella R, Haring MA, Schuurink RC: Green leaf volatiles: a plant's multifunctional weapon against herbivores and pathogens. Int J Mol Sci. 2013 Aug 30;14(9):17781-811. doi: 10.3390/ijms140917781. [PubMed:23999587 ]
- Engelberth J, Contreras CF, Dalvi C, Li T, Engelberth M: Early transcriptome analyses of Z-3-Hexenol-treated zea mays revealed distinct transcriptional networks and anti-herbivore defense potential of green leaf volatiles. PLoS One. 2013 Oct 14;8(10):e77465. doi: 10.1371/journal.pone.0077465. eCollection 2013. [PubMed:24155960 ]
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