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Record Information
Version2.0
Created at2022-09-04 16:35:13 UTC
Updated at2022-09-04 16:35:13 UTC
NP-MRD IDNP0198180
Secondary Accession NumbersNone
Natural Product Identification
Common Name(2s,3r,4r,7r)-7-[(3r,3as,5ar,5br,7as,11as,11br,13ar,13bs)-5a,5b,8,8,11a,13b-hexamethyl-hexadecahydrocyclopenta[a]chrysen-3-yl]octane-1,2,3,4-tetrol
DescriptionBacteriohopane-32,33,34,35-tetrol, also known as 32,33,34,35-bacteriohopanetetrol or tetrahydroxybacteriohopane, belongs to the class of organic compounds known as bacteriohopanoids. These are bacterial terpenoids structurally characterized by a C30 skeleton, which is usually conjugated to a C5 (usually hydroxylated) unit linked by a carbon-carbon bond. (2s,3r,4r,7r)-7-[(3r,3as,5ar,5br,7as,11as,11br,13ar,13bs)-5a,5b,8,8,11a,13b-hexamethyl-hexadecahydrocyclopenta[a]chrysen-3-yl]octane-1,2,3,4-tetrol is found in Ciceribacter lividus, Methylobacterium organophilum, Plakortis simplex and Zymomonas mobilis. (2s,3r,4r,7r)-7-[(3r,3as,5ar,5br,7as,11as,11br,13ar,13bs)-5a,5b,8,8,11a,13b-hexamethyl-hexadecahydrocyclopenta[a]chrysen-3-yl]octane-1,2,3,4-tetrol was first documented in 2003 (PMID: 14673828). Based on a literature review a small amount of articles have been published on bacteriohopane-32,33,34,35-tetrol (PMID: 22221333) (PMID: 15997292) (PMID: 19222571) (PMID: 23413216).
Structure
Thumb
Synonyms
ValueSource
(32R,33R,34S)-32,33,34,35-BacteriohopanetetrolChEBI
32,33,34,35-BacteriohopanetetrolChEBI
BacteriohopanetetrolChEBI
TetrahydroxybacteriohopaneChEBI
Bacteriohopane-tetrolMeSH
Chemical FormulaC35H62O4
Average Mass546.8770 Da
Monoisotopic Mass546.46481 Da
IUPAC Name(2S,3R,4R,7R)-7-[(1R,2R,5S,6R,9S,10R,13R,14S,19S)-1,2,9,14,18,18-hexamethylpentacyclo[11.8.0.0^{2,10}.0^{5,9}.0^{14,19}]henicosan-6-yl]octane-1,2,3,4-tetrol
Traditional Name(2S,3R,4R,7R)-7-[(1R,2R,5S,6R,9S,10R,13R,14S,19S)-1,2,9,14,18,18-hexamethylpentacyclo[11.8.0.0^{2,10}.0^{5,9}.0^{14,19}]henicosan-6-yl]octane-1,2,3,4-tetrol
CAS Registry NumberNot Available
SMILES
C[C@H](CC[C@@H](O)[C@@H](O)[C@@H](O)CO)[C@H]1CC[C@@]2(C)[C@H]1CC[C@]1(C)[C@@H]2CC[C@@H]2[C@@]3(C)CCCC(C)(C)[C@@H]3CC[C@@]12C
InChI Identifier
InChI=1S/C35H62O4/c1-22(9-10-25(37)30(39)26(38)21-36)23-13-18-32(4)24(23)14-19-34(6)28(32)11-12-29-33(5)17-8-16-31(2,3)27(33)15-20-35(29,34)7/h22-30,36-39H,8-21H2,1-7H3/t22-,23-,24+,25-,26+,27+,28-,29-,30-,32+,33+,34-,35-/m1/s1
InChI KeyJMKBTQYGOKJMBJ-ZQPPIKFSSA-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
Ciceribacter lividusLOTUS Database
Methylobacterium organophilumLOTUS Database
Plakortis simplexLOTUS Database
Zymomonas mobilisLOTUS Database
Chemical Taxonomy
Description Belongs to the class of organic compounds known as bacteriohopanoids. These are bacterial terpenoids structurally characterized by a C30 skeleton, which is usually conjugated to a C5 (usually hydroxylated) unit linked by a carbon-carbon bond.
KingdomOrganic compounds
Super ClassLipids and lipid-like molecules
ClassPrenol lipids
Sub ClassHopanoids
Direct ParentBacteriohopanoids
Alternative Parents
Substituents
  • Bacteriohopane skeleton
  • Sesquaterpenoid
  • 27-hydroxysteroid
  • 25-hydroxysteroid
  • 24-hydroxysteroid
  • Steroid
  • Fatty alcohol
  • Monosaccharide
  • Fatty acyl
  • Secondary alcohol
  • 1,2-diol
  • Polyol
  • Organooxygen compound
  • Hydrocarbon derivative
  • Organic oxygen compound
  • Alcohol
  • Primary alcohol
  • Aliphatic homopolycyclic compound
Molecular FrameworkAliphatic homopolycyclic 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
logP6.59ChemAxon
pKa (Strongest Acidic)12.91ChemAxon
pKa (Strongest Basic)-3ChemAxon
Physiological Charge0ChemAxon
Hydrogen Acceptor Count4ChemAxon
Hydrogen Donor Count4ChemAxon
Polar Surface Area80.92 ŲChemAxon
Rotatable Bond Count7ChemAxon
Refractivity158.63 m³·mol⁻¹ChemAxon
Polarizability67.62 ųChemAxon
Number of Rings5ChemAxon
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 ID9664487
KEGG Compound IDNot Available
BioCyc IDCPD-14519
BiGG IDNot Available
Wikipedia LinkNot Available
METLIN IDNot Available
PubChem Compound11489675
PDB IDNot Available
ChEBI ID132468
Good Scents IDNot Available
References
General References
  1. Welander PV, Doughty DM, Wu CH, Mehay S, Summons RE, Newman DK: Identification and characterization of Rhodopseudomonas palustris TIE-1 hopanoid biosynthesis mutants. Geobiology. 2012 Mar;10(2):163-77. doi: 10.1111/j.1472-4669.2011.00314.x. Epub 2012 Jan 4. [PubMed:22221333 ]
  2. Talbot HM, Summons R, Jahnke L, Farrimond P: Characteristic fragmentation of bacteriohopanepolyols during atmospheric pressure chemical ionisation liquid chromatography/ion trap mass spectrometry. Rapid Commun Mass Spectrom. 2003;17(24):2788-96. doi: 10.1002/rcm.1265. [PubMed:14673828 ]
  3. Pan W, Zhang Y, Liang G, Vincent SP, Sinay P: Concise syntheses of bacteriohopanetetrol and its glucosamine derivative. Chem Commun (Camb). 2005 Jul 21;(27):3445-7. doi: 10.1039/b504558d. Epub 2005 Jun 9. [PubMed:15997292 ]
  4. Blumenberg M, Oppermann BI, Guyoneaud R, Michaelis W: Hopanoid production by Desulfovibrio bastinii isolated from oilfield formation water. FEMS Microbiol Lett. 2009 Apr;293(1):73-8. doi: 10.1111/j.1574-6968.2009.01520.x. Epub 2009 Feb 12. [PubMed:19222571 ]
  5. Leefmann T, Heim C, Siljestrom S, Blumenberg M, Sjovall P, Thiel V: Spectral characterization of ten cyclic lipids using time-of-flight secondary ion mass spectrometry. Rapid Commun Mass Spectrom. 2013 Mar 15;27(5):565-81. doi: 10.1002/rcm.6483. [PubMed:23413216 ]
  6. LOTUS database [Link]