| Record Information |
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| Version | 2.0 |
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| Created at | 2022-09-07 02:41:03 UTC |
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| Updated at | 2022-09-07 02:41:03 UTC |
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| NP-MRD ID | NP0242374 |
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| Secondary Accession Numbers | None |
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| Natural Product Identification |
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| Common Name | (1s,14r)-9,20,21,25-tetramethoxy-15,30-dimethyl-7,23-dioxa-15,30-diazaheptacyclo[22.6.2.2³,⁶.1⁸,¹².1¹⁴,¹⁸.0²⁷,³¹.0²²,³³]hexatriaconta-3,5,8(34),9,11,18(33),19,21,24,26,31,35-dodecaene |
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| Description | Isotetrandrine, also known as hanjisong or phaeanthine, belongs to the class of organic compounds known as lignans, neolignans and related compounds. These are plant products of low molecular weight formed primarily from oxidative coupling of two p-propylphenol moieties. They can also be described as micromolecules with two phenylpropanoid units coupled together. They can be attached in various manners, like C5-C5', C8-C8'. Most known natural lignans are oxidized at C9 and C9´ and, based upon the way in which oxygen is incorporated into the skeleton and on the cyclization patterns, a wide range of lignans of very different structural types can be formed. (1s,14r)-9,20,21,25-tetramethoxy-15,30-dimethyl-7,23-dioxa-15,30-diazaheptacyclo[22.6.2.2³,⁶.1⁸,¹².1¹⁴,¹⁸.0²⁷,³¹.0²²,³³]hexatriaconta-3,5,8(34),9,11,18(33),19,21,24,26,31,35-dodecaene is found in Atherosperma moschatum, Berberis aquifolium, Berberis crataegina, Berberis japonica, Berberis stolonifera, Berberis vulgaris and Stephania pierrei. (1s,14r)-9,20,21,25-tetramethoxy-15,30-dimethyl-7,23-dioxa-15,30-diazaheptacyclo[22.6.2.2³,⁶.1⁸,¹².1¹⁴,¹⁸.0²⁷,³¹.0²²,³³]hexatriaconta-3,5,8(34),9,11,18(33),19,21,24,26,31,35-dodecaene was first documented in 2020 (PMID: 32503690). Based on a literature review a small amount of articles have been published on Isotetrandrine (PMID: 33166629) (PMID: 33371844) (PMID: 35563670) (PMID: 33119545). |
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| Structure | COC1=CC=C2C[C@H]3N(C)CCC4=C3C(OC3=C(OC)C=C5CCN(C)[C@@H](CC6=CC=C(OC1=C2)C=C6)C5=C3)=C(OC)C(OC)=C4 InChI=1S/C38H42N2O6/c1-39-15-13-25-20-32(42-4)34-22-28(25)29(39)17-23-7-10-27(11-8-23)45-33-19-24(9-12-31(33)41-3)18-30-36-26(14-16-40(30)2)21-35(43-5)37(44-6)38(36)46-34/h7-12,19-22,29-30H,13-18H2,1-6H3/t29-,30+/m0/s1 |
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| Synonyms | | Value | Source |
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| Tetrandrine | MeSH | | (-)-Tetrandrine | MeSH | | (S,S)-Tetrandrine | MeSH | | L-Tetrandrine | MeSH | | D-Tetrandrine | MeSH | | Hanjisong | MeSH | | Isotetrandrine dihydrochloride | MeSH | | Tetrandrine, (1'beta)-isomer | MeSH | | (+-)-Tetrandrine | MeSH | | Phaeanthine | MeSH | | (+)-Tetrandrine | MeSH | | (R,S)-Tetrandrine | MeSH | | 6,6',7,12-Tetramethoxy-2,2'-dimethyl-(1beta)-berbaman | MeSH | | DL-Tetrandrine | MeSH | | Tetrandrine dihydrochloride | MeSH | | Tetrandrine dihydrochloride, (1beta)-isomer | MeSH |
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| Chemical Formula | C38H42N2O6 |
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| Average Mass | 622.7620 Da |
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| Monoisotopic Mass | 622.30429 Da |
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| IUPAC Name | (1S,14R)-9,20,21,25-tetramethoxy-15,30-dimethyl-7,23-dioxa-15,30-diazaheptacyclo[22.6.2.2^{3,6}.1^{8,12}.1^{14,18}.0^{27,31}.0^{22,33}]hexatriaconta-3,5,8(34),9,11,18(33),19,21,24,26,31,35-dodecaene |
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| Traditional Name | (1S,14R)-9,20,21,25-tetramethoxy-15,30-dimethyl-7,23-dioxa-15,30-diazaheptacyclo[22.6.2.2^{3,6}.1^{8,12}.1^{14,18}.0^{27,31}.0^{22,33}]hexatriaconta-3,5,8(34),9,11,18(33),19,21,24,26,31,35-dodecaene |
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| CAS Registry Number | Not Available |
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| SMILES | COC1=CC=C2C[C@H]3N(C)CCC4=C3C(OC3=C(OC)C=C5CCN(C)[C@@H](CC6=CC=C(OC1=C2)C=C6)C5=C3)=C(OC)C(OC)=C4 |
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| InChI Identifier | InChI=1S/C38H42N2O6/c1-39-15-13-25-20-32(42-4)34-22-28(25)29(39)17-23-7-10-27(11-8-23)45-33-19-24(9-12-31(33)41-3)18-30-36-26(14-16-40(30)2)21-35(43-5)37(44-6)38(36)46-34/h7-12,19-22,29-30H,13-18H2,1-6H3/t29-,30+/m0/s1 |
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| InChI Key | WVTKBKWTSCPRNU-XZWHSSHBSA-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 lignans, neolignans and related compounds. These are plant products of low molecular weight formed primarily from oxidative coupling of two p-propylphenol moieties. They can also be described as micromolecules with two phenylpropanoid units coupled together. They can be attached in various manners, like C5-C5', C8-C8'. Most known natural lignans are oxidized at C9 and C9´ and, based upon the way in which oxygen is incorporated into the skeleton and on the cyclization patterns, a wide range of lignans of very different structural types can be formed. |
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| Kingdom | Organic compounds |
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| Super Class | Lignans, neolignans and related compounds |
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| Class | Not Available |
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| Sub Class | Not Available |
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| Direct Parent | Lignans, neolignans and related compounds |
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| Alternative Parents | |
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| Substituents | - Oxyneolignan skeleton
- Diaryl ether
- Tetrahydroisoquinoline
- Anisole
- Alkyl aryl ether
- Aralkylamine
- Benzenoid
- Tertiary amine
- Tertiary aliphatic amine
- Ether
- Oxacycle
- Azacycle
- Organoheterocyclic compound
- Organonitrogen compound
- Hydrocarbon derivative
- Organic nitrogen compound
- Organopnictogen compound
- Organooxygen compound
- Amine
- Organic oxygen 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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| General References | - Zhang H, Wang X, Guo Y, Liu X, Zhao X, Teka T, Lv C, Han L, Huang Y, Pan G: Thirteen bisbenzylisoquinoline alkaloids in five Chinese medicinal plants: Botany, traditional uses, phytochemistry, pharmacokinetic and toxicity studies. J Ethnopharmacol. 2021 Mar 25;268:113566. doi: 10.1016/j.jep.2020.113566. Epub 2020 Nov 7. [PubMed:33166629 ]
- Xu W, Chen S, Wang X, Wu H, Yamada H, Hirano T: Bisbenzylisoquinoline alkaloids and P-glycoprotein function: A structure activity relationship study. Bioorg Med Chem. 2020 Jun 15;28(12):115553. doi: 10.1016/j.bmc.2020.115553. Epub 2020 May 11. [PubMed:32503690 ]
- Khalid H, Ashfaq UA: Molecular Docking and Pharmacoinformatics Studies Reveal Potential Phytochemicals Against HCV NS5B Polymerase. Comb Chem High Throughput Screen. 2022;25(2):335-346. doi: 10.2174/1386207323666201228160224. [PubMed:33371844 ]
- Lee HS, Kim DH, Lee IS, Park JH, Martin G, Safe S, Kim KJ, Kim JH, Jang BI, Lee SO: Plant Alkaloid Tetrandrine Is a Nuclear Receptor 4A1 Antagonist and Inhibits Panc-1 Cell Growth In Vitro and In Vivo. Int J Mol Sci. 2022 May 9;23(9):5280. doi: 10.3390/ijms23095280. [PubMed:35563670 ]
- Xu W, Kusano J, Chen S, Yamamoto R, Matsuda H, Hara Y, Fujii Y, Hayashi S, Tanaka S, Sugiyama K, Yamada H, Hirano T: Absolute configuration of tetrandrine and isotetrandrine influences their anti-proliferation effects in human T cells via different regulation of NF-kappaB. Z Naturforsch C J Biosci. 2020 Oct 30;76(1-2):21-25. doi: 10.1515/znc-2020-0064. Print 2021 Jan 27. [PubMed:33119545 ]
- LOTUS database [Link]
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