| Record Information |
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| Version | 2.0 |
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| Created at | 2022-09-10 09:30:01 UTC |
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| Updated at | 2022-09-10 09:30:01 UTC |
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| NP-MRD ID | NP0298328 |
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| Secondary Accession Numbers | None |
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| Natural Product Identification |
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| Common Name | benzyl (2e)-3-(3,4-dihydroxyphenyl)prop-2-enoate |
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| Description | Benzyl caffeate, also known as BN-caffeate, belongs to the class of organic compounds known as coumaric acids and derivatives. These are aromatic compounds containing Aromatic compounds containing a cinnamic acid moiety (or a derivative thereof) hydroxylated at the C2 (ortho-), C3 (meta-), or C4 (para-) carbon atom of the benzene ring. benzyl (2e)-3-(3,4-dihydroxyphenyl)prop-2-enoate is found in Baccharis sarothroides, Populus deltoides, Populus laurifolia and Populus tremuloides. benzyl (2e)-3-(3,4-dihydroxyphenyl)prop-2-enoate was first documented in 2003 (PMID: 12673030). Based on a literature review a significant number of articles have been published on Benzyl caffeate (PMID: 28337227) (PMID: 27618006) (PMID: 26351514) (PMID: 21222608) (PMID: 19634328) (PMID: 17654520). |
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| Structure | OC1=CC=C(\C=C\C(=O)OCC2=CC=CC=C2)C=C1O InChI=1S/C16H14O4/c17-14-8-6-12(10-15(14)18)7-9-16(19)20-11-13-4-2-1-3-5-13/h1-10,17-18H,11H2/b9-7+ |
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| Synonyms | | Value | Source |
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| Benzyl caffeic acid | Generator | | BN-Caffeate | MeSH |
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| Chemical Formula | C16H14O4 |
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| Average Mass | 270.2840 Da |
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| Monoisotopic Mass | 270.08921 Da |
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| IUPAC Name | benzyl (2E)-3-(3,4-dihydroxyphenyl)prop-2-enoate |
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| Traditional Name | benzyl (2E)-3-(3,4-dihydroxyphenyl)prop-2-enoate |
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| CAS Registry Number | Not Available |
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| SMILES | OC1=CC=C(\C=C\C(=O)OCC2=CC=CC=C2)C=C1O |
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| InChI Identifier | InChI=1S/C16H14O4/c17-14-8-6-12(10-15(14)18)7-9-16(19)20-11-13-4-2-1-3-5-13/h1-10,17-18H,11H2/b9-7+ |
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| InChI Key | WWVKQTNONPWVEL-VQHVLOKHSA-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 coumaric acids and derivatives. These are aromatic compounds containing Aromatic compounds containing a cinnamic acid moiety (or a derivative thereof) hydroxylated at the C2 (ortho-), C3 (meta-), or C4 (para-) carbon atom of the benzene ring. |
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| Kingdom | Organic compounds |
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| Super Class | Phenylpropanoids and polyketides |
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| Class | Cinnamic acids and derivatives |
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| Sub Class | Hydroxycinnamic acids and derivatives |
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| Direct Parent | Coumaric acids and derivatives |
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| Alternative Parents | |
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| Substituents | - Coumaric acid or derivatives
- Cinnamic acid ester
- Benzyloxycarbonyl
- Catechol
- Styrene
- 1-hydroxy-4-unsubstituted benzenoid
- 1-hydroxy-2-unsubstituted benzenoid
- Fatty acid ester
- Phenol
- Monocyclic benzene moiety
- Fatty acyl
- Benzenoid
- Alpha,beta-unsaturated carboxylic ester
- Enoate ester
- Carboxylic acid ester
- Monocarboxylic acid or derivatives
- Carboxylic acid derivative
- Organooxygen compound
- Hydrocarbon derivative
- Organic oxide
- Carbonyl group
- Organic oxygen 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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| 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 | - Sun L, Wang K, Xu X, Ge M, Chen Y, Hu F: Potential Protective Effects of Bioactive Constituents from Chinese Propolis against Acute Oxidative Stress Induced by Hydrogen Peroxide in Cardiac H9c2 Cells. Evid Based Complement Alternat Med. 2017;2017:7074147. doi: 10.1155/2017/7074147. Epub 2017 Feb 27. [PubMed:28337227 ]
- El-Guendouz S, Aazza S, Lyoussi B, Bankova V, Lourenco JP, Costa AM, Mariano JF, Miguel MG, Faleiro ML: Impact of Biohybrid Magnetite Nanoparticles and Moroccan Propolis on Adherence of Methicillin Resistant Strains of Staphylococcus aureus. Molecules. 2016 Sep 9;21(9):1208. doi: 10.3390/molecules21091208. [PubMed:27618006 ]
- Sun C, Wu Z, Wang Z, Zhang H: Effect of Ethanol/Water Solvents on Phenolic Profiles and Antioxidant Properties of Beijing Propolis Extracts. Evid Based Complement Alternat Med. 2015;2015:595393. doi: 10.1155/2015/595393. Epub 2015 Aug 17. [PubMed:26351514 ]
- Jaikang C, Chaiyasut C, Narongchai P, Niwatananun K, Narongchai S, Kusirisin W: Inhibitory effects of caffeic acid ester analogues on free radicals and human liver microsome CYP1A2 activities. Med Chem. 2011 Mar;7(2):99-105. doi: 10.2174/157340611794859316. [PubMed:21222608 ]
- Sha N, Huang HL, Zhang JQ, Chen GT, Tao SJ, Yang M, Li XN, Li P, Guo DA: Simultaneous quantification of eight major bioactive phenolic compounds in Chinese propolis by high-performance liquid chromatography. Nat Prod Commun. 2009 Jun;4(6):813-8. [PubMed:19634328 ]
- Medana C, Carbone F, Aigotti R, Appendino G, Baiocchi C: Selective analysis of phenolic compounds in propolis by HPLC-MS/MS. Phytochem Anal. 2008 Jan-Feb;19(1):32-9. doi: 10.1002/pca.1010. [PubMed:17654520 ]
- Hausen BM: Evaluation of the main contact allergens in propolis (1995 to 2005). Dermatitis. 2005 Sep;16(3):127-9. [PubMed:16242084 ]
- Nagaoka T, Banskota AH, Tezuka Y, Midorikawa K, Matsushige K, Kadota S: Caffeic acid phenethyl ester (CAPE) analogues: potent nitric oxide inhibitors from the Netherlands propolis. Biol Pharm Bull. 2003 Apr;26(4):487-91. doi: 10.1248/bpb.26.487. [PubMed:12673030 ]
- LOTUS database [Link]
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