| Record Information |
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| Version | 2.0 |
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| Created at | 2022-09-06 13:55:46 UTC |
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| Updated at | 2022-09-06 13:55:46 UTC |
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| NP-MRD ID | NP0232630 |
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| Secondary Accession Numbers | None |
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| Natural Product Identification |
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| Common Name | 6,7,8,15,16,17,21,29,35,36,37,40,41,42-tetradecahydroxy-2,12,19,25,28,31,46-heptaoxanonacyclo[25.20.0.0⁴,⁹.0¹⁰,²³.0¹¹,²⁰.0¹³,¹⁸.0³⁰,⁴⁷.0³³,³⁸.0³⁹,⁴⁴]heptatetraconta-4(9),5,7,10,13,15,17,20,22,33(38),34,36,39,41,43-pentadecaene-3,24,32,45-tetrone |
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| Description | 6,7,8,15,16,17,21,29,35,36,37,40,41,42-Tetradecahydroxy-2,12,19,25,28,31,46-heptaoxanonacyclo[25.20.0.0⁴,⁹.0¹⁰,²³.0¹¹,²⁰.0¹³,¹⁸.0³⁰,⁴⁷.0³³,³⁸.0³⁹,⁴⁴]Heptatetraconta-4,6,8,10,13(18),14,16,20,22,33,35,37,39,41,43-pentadecaene-3,24,32,45-tetrone belongs to the class of organic compounds known as hydrolyzable tannins. These are tannins with a structure characterized by either of the following models. In model 1, the structure contains galloyl units (in some cases, shikimic acid units) that are linked to diverse polyol carbohydrate-, catechin-, or triterpenoid units. In model 2, contains at least two galloyl units C-C coupled to each other, and do not contain a glycosidically linked catechin unit. 6,7,8,15,16,17,21,29,35,36,37,40,41,42-tetradecahydroxy-2,12,19,25,28,31,46-heptaoxanonacyclo[25.20.0.0⁴,⁹.0¹⁰,²³.0¹¹,²⁰.0¹³,¹⁸.0³⁰,⁴⁷.0³³,³⁸.0³⁹,⁴⁴]heptatetraconta-4(9),5,7,10,13,15,17,20,22,33(38),34,36,39,41,43-pentadecaene-3,24,32,45-tetrone is found in Juglans regia. 6,7,8,15,16,17,21,29,35,36,37,40,41,42-Tetradecahydroxy-2,12,19,25,28,31,46-heptaoxanonacyclo[25.20.0.0⁴,⁹.0¹⁰,²³.0¹¹,²⁰.0¹³,¹⁸.0³⁰,⁴⁷.0³³,³⁸.0³⁹,⁴⁴]Heptatetraconta-4,6,8,10,13(18),14,16,20,22,33,35,37,39,41,43-pentadecaene-3,24,32,45-tetrone is an extremely weak basic (essentially neutral) compound (based on its pKa). |
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| Structure | OC1OC2COC(=O)C3=CC(O)=C4OC5=C(O)C(O)=C(O)C=C5OC4=C3C3=C(O)C(O)=C(O)C=C3C(=O)OC2C2OC(=O)C3=CC(O)=C(O)C(O)=C3C3=C(O)C(O)=C(O)C=C3C(=O)OC12 InChI=1S/C40H26O25/c41-11-1-7-18(26(50)22(11)46)19-8(2-12(42)23(47)27(19)51)39(57)65-35-34(64-38(7)56)32-17(61-40(35)58)6-59-36(54)10-4-15(45)30-33(60-16-5-14(44)25(49)29(53)31(16)62-30)21(10)20-9(37(55)63-32)3-13(43)24(48)28(20)52/h1-5,17,32,34-35,40-53,58H,6H2 |
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| Synonyms | Not Available |
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| Chemical Formula | C40H26O25 |
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| Average Mass | 906.6230 Da |
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| Monoisotopic Mass | 906.07632 Da |
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| IUPAC Name | 6,7,8,15,16,17,21,29,35,36,37,40,41,42-tetradecahydroxy-2,12,19,25,28,31,46-heptaoxanonacyclo[25.20.0.0⁴,⁹.0¹⁰,²³.0¹¹,²⁰.0¹³,¹⁸.0³⁰,⁴⁷.0³³,³⁸.0³⁹,⁴⁴]heptatetraconta-4,6,8,10,13,15,17,20,22,33,35,37,39,41,43-pentadecaene-3,24,32,45-tetrone |
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| Traditional Name | 6,7,8,15,16,17,21,29,35,36,37,40,41,42-tetradecahydroxy-2,12,19,25,28,31,46-heptaoxanonacyclo[25.20.0.0⁴,⁹.0¹⁰,²³.0¹¹,²⁰.0¹³,¹⁸.0³⁰,⁴⁷.0³³,³⁸.0³⁹,⁴⁴]heptatetraconta-4,6,8,10,13,15,17,20,22,33,35,37,39,41,43-pentadecaene-3,24,32,45-tetrone |
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| CAS Registry Number | Not Available |
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| SMILES | OC1OC2COC(=O)C3=CC(O)=C4OC5=C(O)C(O)=C(O)C=C5OC4=C3C3=C(O)C(O)=C(O)C=C3C(=O)OC2C2OC(=O)C3=CC(O)=C(O)C(O)=C3C3=C(O)C(O)=C(O)C=C3C(=O)OC12 |
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| InChI Identifier | InChI=1S/C40H26O25/c41-11-1-7-18(26(50)22(11)46)19-8(2-12(42)23(47)27(19)51)39(57)65-35-34(64-38(7)56)32-17(61-40(35)58)6-59-36(54)10-4-15(45)30-33(60-16-5-14(44)25(49)29(53)31(16)62-30)21(10)20-9(37(55)63-32)3-13(43)24(48)28(20)52/h1-5,17,32,34-35,40-53,58H,6H2 |
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| InChI Key | KTDJGCWDXFLJQJ-UHFFFAOYSA-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 hydrolyzable tannins. These are tannins with a structure characterized by either of the following models. In model 1, the structure contains galloyl units (in some cases, shikimic acid units) that are linked to diverse polyol carbohydrate-, catechin-, or triterpenoid units. In model 2, contains at least two galloyl units C-C coupled to each other, and do not contain a glycosidically linked catechin unit. |
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| Kingdom | Organic compounds |
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| Super Class | Phenylpropanoids and polyketides |
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| Class | Tannins |
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| Sub Class | Hydrolyzable tannins |
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| Direct Parent | Hydrolyzable tannins |
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| Alternative Parents | |
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| Substituents | - Hydrolyzable tannin
- Dibenzo-p-dioxin
- Tetracarboxylic acid or derivatives
- Gallic acid or derivatives
- Diaryl ether
- 1-hydroxy-4-unsubstituted benzenoid
- 1-hydroxy-2-unsubstituted benzenoid
- Benzenoid
- Oxane
- Monosaccharide
- Carboxylic acid ester
- Hemiacetal
- Lactone
- Carboxylic acid derivative
- Ether
- Oxacycle
- Organoheterocyclic compound
- Polyol
- Organic oxygen compound
- Organic oxide
- Hydrocarbon derivative
- Organooxygen compound
- Aromatic heteropolycyclic compound
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| Molecular Framework | Aromatic 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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