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Record Information
Version1.0
Created at2022-09-07 06:08:13 UTC
Updated at2022-09-07 06:08:13 UTC
NP-MRD IDNP0245161
Secondary Accession NumbersNone
Natural Product Identification
Common Name(6s,7ar)-2-[(2e,4e,6e,8e,10e,12e,14e)-15-[(6s,7ar)-6-hydroxy-4,4,7a-trimethyl-2,5,6,7-tetrahydro-1-benzofuran-2-yl]-6,11-dimethylhexadeca-2,4,6,8,10,12,14-heptaen-2-yl]-4,4,7a-trimethyl-2,5,6,7-tetrahydro-1-benzofuran-6-ol
DescriptionAuroxanthin belongs to the class of organic compounds known as tetraterpenoids. These are terpenoid molecules containing 10 consecutively linked isoprene units. Thus, auroxanthin is considered to be an isoprenoid. (6s,7ar)-2-[(2e,4e,6e,8e,10e,12e,14e)-15-[(6s,7ar)-6-hydroxy-4,4,7a-trimethyl-2,5,6,7-tetrahydro-1-benzofuran-2-yl]-6,11-dimethylhexadeca-2,4,6,8,10,12,14-heptaen-2-yl]-4,4,7a-trimethyl-2,5,6,7-tetrahydro-1-benzofuran-6-ol is found in Camellia oleifera, Citrus cavaleriei, Eschscholzia californica, Hibiscus syriacus, Mangifera indica, Metasequoia glyptostroboides, Pittosporum tobira and Sticta canariensis. It was first documented in 2016 (PMID: 27960276). Based on a literature review a significant number of articles have been published on Auroxanthin (PMID: 34338805) (PMID: 30884700) (PMID: 30589260) (PMID: 27748562).
Structure
Thumb
SynonymsNot Available
Chemical FormulaC40H56O4
Average Mass600.8840 Da
Monoisotopic Mass600.41786 Da
IUPAC Name(6S,7aR)-2-[(2E,4E,6E,8E,10E,12E,14E)-15-[(6S,7aR)-6-hydroxy-4,4,7a-trimethyl-2,4,5,6,7,7a-hexahydro-1-benzofuran-2-yl]-6,11-dimethylhexadeca-2,4,6,8,10,12,14-heptaen-2-yl]-4,4,7a-trimethyl-2,4,5,6,7,7a-hexahydro-1-benzofuran-6-ol
Traditional Name(6S,7aR)-2-[(2E,4E,6E,8E,10E,12E,14E)-15-[(6S,7aR)-6-hydroxy-4,4,7a-trimethyl-2,5,6,7-tetrahydro-1-benzofuran-2-yl]-6,11-dimethylhexadeca-2,4,6,8,10,12,14-heptaen-2-yl]-4,4,7a-trimethyl-2,5,6,7-tetrahydro-1-benzofuran-6-ol
CAS Registry NumberNot Available
SMILES
C\C(\C=C\C=C(/C)C1O[C@]2(C)C[C@@H](O)CC(C)(C)C2=C1)=C/C=C/C=C(\C)/C=C/C=C(\C)C1O[C@]2(C)C[C@@H](O)CC(C)(C)C2=C1
InChI Identifier
InChI=1S/C40H56O4/c1-27(17-13-19-29(3)33-21-35-37(5,6)23-31(41)25-39(35,9)43-33)15-11-12-16-28(2)18-14-20-30(4)34-22-36-38(7,8)24-32(42)26-40(36,10)44-34/h11-22,31-34,41-42H,23-26H2,1-10H3/b12-11+,17-13+,18-14+,27-15+,28-16+,29-19+,30-20+/t31-,32-,33?,34?,39+,40+/m0/s1
InChI KeyYLUSVJDFTAATNS-RFIAJWJGSA-N
Experimental Spectra
Not Available
Predicted Spectra
Spectrum TypeDescriptionDepositor IDDepositor OrganizationDepositorDeposition DateView
1D NMR13C NMR Spectrum (1D, 25 MHz, H2O, predicted)Wishart LabWishart LabDavid Wishart2021-06-20View Spectrum
1D NMR1H NMR Spectrum (1D, 100 MHz, H2O, predicted)Wishart LabWishart LabDavid Wishart2021-06-20View Spectrum
1D NMR13C NMR Spectrum (1D, 252 MHz, H2O, predicted)Wishart LabWishart LabDavid Wishart2021-06-20View Spectrum
1D NMR1H NMR Spectrum (1D, 1000 MHz, H2O, predicted)Wishart LabWishart LabDavid Wishart2021-06-20View Spectrum
1D NMR13C NMR Spectrum (1D, 50 MHz, H2O, predicted)Wishart LabWishart LabDavid Wishart2021-06-20View Spectrum
1D NMR1H NMR Spectrum (1D, 200 MHz, H2O, predicted)Wishart LabWishart LabDavid Wishart2021-06-20View Spectrum
1D NMR13C NMR Spectrum (1D, 75 MHz, H2O, predicted)Wishart LabWishart LabDavid Wishart2021-06-20View Spectrum
1D NMR1H NMR Spectrum (1D, 300 MHz, H2O, predicted)Wishart LabWishart LabDavid Wishart2021-06-20View Spectrum
1D NMR13C NMR Spectrum (1D, 101 MHz, H2O, predicted)Wishart LabWishart LabDavid Wishart2021-06-20View Spectrum
1D NMR1H NMR Spectrum (1D, 400 MHz, H2O, predicted)Wishart LabWishart LabDavid Wishart2021-06-20View Spectrum
1D NMR13C NMR Spectrum (1D, 126 MHz, H2O, predicted)Wishart LabWishart LabDavid Wishart2021-06-20View Spectrum
1D NMR1H NMR Spectrum (1D, 500 MHz, H2O, predicted)Wishart LabWishart LabDavid Wishart2021-06-20View Spectrum
1D NMR13C NMR Spectrum (1D, 151 MHz, H2O, predicted)Wishart LabWishart LabDavid Wishart2021-06-20View Spectrum
1D NMR1H NMR Spectrum (1D, 600 MHz, H2O, predicted)Wishart LabWishart LabDavid Wishart2021-06-20View Spectrum
1D NMR13C NMR Spectrum (1D, 176 MHz, H2O, predicted)Wishart LabWishart LabDavid Wishart2021-06-20View Spectrum
1D NMR1H NMR Spectrum (1D, 700 MHz, H2O, predicted)Wishart LabWishart LabDavid Wishart2021-06-20View Spectrum
1D NMR13C NMR Spectrum (1D, 201 MHz, H2O, predicted)Wishart LabWishart LabDavid Wishart2021-06-20View Spectrum
1D NMR1H NMR Spectrum (1D, 800 MHz, H2O, predicted)Wishart LabWishart LabDavid Wishart2021-06-20View Spectrum
1D NMR13C NMR Spectrum (1D, 226 MHz, H2O, predicted)Wishart LabWishart LabDavid Wishart2021-06-20View Spectrum
1D NMR1H NMR Spectrum (1D, 900 MHz, H2O, predicted)Wishart LabWishart LabDavid Wishart2021-06-20View Spectrum
Chemical Shift Submissions
Not Available
Species
Species of Origin
Species NameSourceReference
Camellia oleiferaLOTUS Database
Citrus ichangensisLOTUS Database
Eschscholzia californicaLOTUS Database
Hibiscus syriacusLOTUS Database
Mangifera indicaLOTUS Database
Metasequoia glyptostroboidesLOTUS Database
Pittosporum tobiraLOTUS Database
Sticta canariensisLOTUS Database
Chemical Taxonomy
Description Belongs to the class of organic compounds known as tetraterpenoids. These are terpenoid molecules containing 10 consecutively linked isoprene units.
KingdomOrganic compounds
Super ClassLipids and lipid-like molecules
ClassPrenol lipids
Sub ClassTetraterpenoids
Direct ParentTetraterpenoids
Alternative Parents
Substituents
  • Tetraterpenoid
  • Benzofuran
  • Dihydrofuran
  • Cyclic alcohol
  • Secondary alcohol
  • Oxacycle
  • Organoheterocyclic compound
  • Ether
  • Dialkyl ether
  • Organic oxygen compound
  • Hydrocarbon derivative
  • Organooxygen compound
  • Alcohol
  • Aliphatic heteropolycyclic compound
Molecular FrameworkAliphatic heteropolycyclic compounds
External DescriptorsNot Available
Physical Properties
StateNot Available
Experimental Properties
PropertyValueReference
Melting PointNot AvailableNot Available
Boiling PointNot AvailableNot Available
Water SolubilityNot AvailableNot Available
LogPNot AvailableNot Available
Predicted Properties
PropertyValueSource
logP6.72ChemAxon
pKa (Strongest Acidic)14.83ChemAxon
pKa (Strongest Basic)-2.7ChemAxon
Physiological Charge0ChemAxon
Hydrogen Acceptor Count4ChemAxon
Hydrogen Donor Count2ChemAxon
Polar Surface Area58.92 ŲChemAxon
Rotatable Bond Count8ChemAxon
Refractivity192.08 m³·mol⁻¹ChemAxon
Polarizability73.68 ųChemAxon
Number of Rings4ChemAxon
BioavailabilityNoChemAxon
Rule of FiveNoChemAxon
Ghose FilterNoChemAxon
Veber's RuleNoChemAxon
MDDR-like RuleYesChemAxon
HMDB IDNot Available
DrugBank IDNot Available
Phenol Explorer Compound IDNot Available
FoodDB IDNot Available
KNApSAcK IDNot Available
Chemspider ID24607901
KEGG Compound IDNot Available
BioCyc IDNot Available
BiGG IDNot Available
Wikipedia LinkNot Available
METLIN IDNot Available
PubChem Compound134781708
PDB IDNot Available
ChEBI IDNot Available
Good Scents IDNot Available
References
General References
  1. Takemura M, Sahara T, Misawa N: Violaxanthin: natural function and occurrence, biosynthesis, and heterologous production. Appl Microbiol Biotechnol. 2021 Aug;105(16-17):6133-6142. doi: 10.1007/s00253-021-11452-2. Epub 2021 Aug 2. [PubMed:34338805 ]
  2. Araki M, Kaku N, Harada M, Ando Y, Yamaguchi R, Shindo K: Production of Auroxanthins from Violaxanthin and 9-cis-Violaxanthin by Acidic Treatment and the Antioxidant Activities of Violaxanthin, 9-cis-Violaxanthin, and Auroxanthins. J Agric Food Chem. 2016 Dec 14;64(49):9352-9355. doi: 10.1021/acs.jafc.6b04506. Epub 2016 Dec 5. [PubMed:27960276 ]
  3. Rodrigues DB, Mercadante AZ, Mariutti LRB: Marigold carotenoids: Much more than lutein esters. Food Res Int. 2019 May;119:653-664. doi: 10.1016/j.foodres.2018.10.043. Epub 2018 Oct 12. [PubMed:30884700 ]
  4. Zheng X, Tang Y, Ye J, Pan Z, Tan M, Xie Z, Chai L, Xu Q, Fraser PD, Deng X: SLAF-Based Construction of a High-Density Genetic Map and Its Application in QTL Mapping of Carotenoids Content in Citrus Fruit. J Agric Food Chem. 2019 Jan 23;67(3):994-1002. doi: 10.1021/acs.jafc.8b05176. Epub 2019 Jan 10. [PubMed:30589260 ]
  5. Duarte B, Cabrita MT, Gameiro C, Matos AR, Godinho R, Marques JC, Cacador I: Disentangling the photochemical salinity tolerance in Aster tripolium L.: connecting biophysical traits with changes in fatty acid composition. Plant Biol (Stuttg). 2017 Mar;19(2):239-248. doi: 10.1111/plb.12517. Epub 2016 Nov 13. [PubMed:27748562 ]
  6. LOTUS database [Link]