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Record Information
Version2.0
Created at2022-04-27 21:58:57 UTC
Updated at2022-04-27 21:58:57 UTC
NP-MRD IDNP0050609
Secondary Accession NumbersNone
Natural Product Identification
Common NameCupressuflavone
DescriptionCupressuflavone, also known as 8,8''-biapigenin, belongs to the class of organic compounds known as biflavonoids and polyflavonoids. These are organic compounds containing at least two flavan/flavone units. These units are usually linked through CC or C-O-C bonds. Some examples include C2-O-C3, C2-O-C4, C3'-C3''', and C6-C8''. Thus, cupressuflavone is considered to be a flavonoid. Cupressuflavone is a secondary metabolite. Secondary metabolites are metabolically or physiologically non-essential metabolites that may serve a role as defense or signalling molecules. In some cases they are simply molecules that arise from the incomplete metabolism of other secondary metabolites. Cupressuflavone is found in Agathis dammara, Agathis palmerstoni, Araucaria bidwillii , Casuarina cunninghamiana, Cupressus arizonica, Cupressus cashmeriana, Cupressus sempervirens , Cupressus spp., Cupressus torulosa, Diselma archeri, Juniperus communis, Juniperus drupacea, Juniperus horizontalis, Juniperus occidentalis HOOK. , Juniperus spp., Microbiota decussata, Phyllanthus sellowianus, Picea smithiana, Platycladus orientalis, Salix alba , Salix fragilis , Sciadopitys verticillata and Scutellaria baicalensis. Cupressuflavone was first documented in 2018 (PMID: 29790302). Based on a literature review a small amount of articles have been published on cupressuflavone (PMID: 34957868) (PMID: 32290339) (PMID: 31157484) (PMID: 29386485).
Structure
Thumb
Synonyms
ValueSource
4',4''',5,5'',7,7''-hexahydroxy-8-8''-biflavoneChEBI
8,8''-BiapigeninChEBI
Chemical FormulaC30H18O10
Average Mass538.4640 Da
Monoisotopic Mass538.09000 Da
IUPAC Name5,5',7,7'-tetrahydroxy-2,2'-bis(4-hydroxyphenyl)-4H,4'H-[8,8'-bichromene]-4,4'-dione
Traditional Namecupressuflavone
CAS Registry NumberNot Available
SMILES
OC1=CC=C(C=C1)C1=CC(=O)C2=C(O)C=C(O)C(=C2O1)C1=C2OC(=CC(=O)C2=C(O)C=C1O)C1=CC=C(O)C=C1
InChI Identifier
InChI=1S/C30H18O10/c31-15-5-1-13(2-6-15)23-11-21(37)25-17(33)9-19(35)27(29(25)39-23)28-20(36)10-18(34)26-22(38)12-24(40-30(26)28)14-3-7-16(32)8-4-14/h1-12,31-36H
InChI KeyLADPNODMUXOPRG-UHFFFAOYSA-N
Experimental Spectra
Not Available
Predicted Spectra
Not Available
Chemical Shift Submissions
Not Available
Species
Species of Origin
Species NameSourceReference
Agathis dammaraPlant
Agathis palmerstoniPlant
Araucaria bidwilliiPlant
Casuarina cunninghamianaPlant
Cupressus arizonicaPlant
Cupressus cashmerianaPlant
Cupressus sempervirensPlant
Cupressus spp.Plant
Cupressus torulosaPlant
Diselma archeriLOTUS Database
Juniperus communisLOTUS Database
Juniperus drupaceaLOTUS Database
Juniperus horizontalisPlant
Juniperus occidentalis HOOK.Plant
Juniperus spp.Plant
Microbiota decussataLOTUS Database
Phyllanthus sellowianusPlant
Picea smithianaLOTUS Database
Platycladus orientalisLOTUS Database
Salix albaPlant
Salix fragilisPlant
Sciadopitys verticillataLOTUS Database
Scutellaria baicalensisLOTUS Database
Chemical Taxonomy
Description Belongs to the class of organic compounds known as biflavonoids and polyflavonoids. These are organic compounds containing at least two flavan/flavone units. These units are usually linked through CC or C-O-C bonds. Some examples include C2-O-C3, C2-O-C4, C3'-C3''', and C6-C8''.
KingdomOrganic compounds
Super ClassPhenylpropanoids and polyketides
ClassFlavonoids
Sub ClassBiflavonoids and polyflavonoids
Direct ParentBiflavonoids and polyflavonoids
Alternative Parents
Substituents
  • Bi- and polyflavonoid skeleton
  • 4'-hydroxyflavonoid
  • 5-hydroxyflavonoid
  • 7-hydroxyflavonoid
  • Flavone
  • Hydroxyflavonoid
  • Biphenol
  • Chromone
  • Benzopyran
  • 1-benzopyran
  • 1-hydroxy-2-unsubstituted benzenoid
  • Phenol
  • Pyranone
  • Benzenoid
  • Monocyclic benzene moiety
  • Pyran
  • Vinylogous acid
  • Heteroaromatic compound
  • Organoheterocyclic compound
  • Oxacycle
  • Organooxygen compound
  • Hydrocarbon derivative
  • Organic oxygen compound
  • Organic oxide
  • Aromatic heteropolycyclic compound
Molecular FrameworkAromatic heteropolycyclic compounds
External Descriptors
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
logP4.43ALOGPS
logP5.09ChemAxon
logS-4.6ALOGPS
pKa (Strongest Acidic)5.82ChemAxon
pKa (Strongest Basic)-6.4ChemAxon
Physiological Charge-2ChemAxon
Hydrogen Acceptor Count10ChemAxon
Hydrogen Donor Count6ChemAxon
Polar Surface Area173.98 ŲChemAxon
Rotatable Bond Count2ChemAxon
Refractivity144.91 m³·mol⁻¹ChemAxon
Polarizability52.09 ųChemAxon
Number of Rings6ChemAxon
BioavailabilityNoChemAxon
Rule of FiveNoChemAxon
Ghose FilterNoChemAxon
Veber's RuleNoChemAxon
MDDR-like RuleNoChemAxon
HMDB IDNot Available
DrugBank IDNot Available
Phenol Explorer Compound IDNot Available
FoodDB IDNot Available
KNApSAcK IDC00001034
Chemspider ID4444928
KEGG Compound IDC10034
BioCyc IDNot Available
BiGG IDNot Available
Wikipedia LinkNot Available
METLIN IDNot Available
PubChem Compound5281609
PDB IDNot Available
ChEBI ID3960
Good Scents IDrw1701361
References
General References
  1. Frezza C, Sciubba F, Petrucci R, Serafini M: Phytochemical analysis on the leaves of Agathis microstachya J.F. Bailey & C.T. White. Nat Prod Res. 2021 Dec 27:1-5. doi: 10.1080/14786419.2021.2018435. [PubMed:34957868 ]
  2. Park SY, Nguyen PH, Kim G, Jang SN, Lee GH, Phuc NM, Wu Z, Liu KH: Strong and Selective Inhibitory Effects of the Biflavonoid Selamariscina A against CYP2C8 and CYP2C9 Enzyme Activities in Human Liver Microsomes. Pharmaceutics. 2020 Apr 10;12(4). pii: pharmaceutics12040343. doi: 10.3390/pharmaceutics12040343. [PubMed:32290339 ]
  3. Al Groshi A, Jasim HA, Evans AR, Ismail FMD, Dempster NM, Nahar L, Sarker SD: Growth inhibitory activity of biflavonoids and diterpenoids from the leaves of the Libyan Juniperus phoenicea against human cancer cells. Phytother Res. 2019 Aug;33(8):2075-2082. doi: 10.1002/ptr.6397. Epub 2019 Jun 3. [PubMed:31157484 ]
  4. Venditti A, Maggi F, Quassinti L, Bramucci M, Lupidi G, Ornano L, Ballero M, Sanna C, Bruno M, Rosselli S, Bianco A: Bioactive Constituents of Juniperus turbinata Guss. from La Maddalena Archipelago. Chem Biodivers. 2018 Aug;15(8):e1800148. doi: 10.1002/cbdv.201800148. Epub 2018 Jun 28. [PubMed:29790302 ]
  5. Jegal J, Park NJ, Park SA, Bong SK, Jegal H, Kim SN, Yang MH: Juniperus chinensis Fruits Attenuate Oxazolone- and 2,4-Dinitrochlorobenzene-Induced Atopic Dermatitis Symptoms in Mice. Biol Pharm Bull. 2018;41(2):259-265. doi: 10.1248/bpb.b17-00818. [PubMed:29386485 ]