Please use this identifier to cite or link to this item: https://ir.swu.ac.th/jspui/handle/123456789/12728
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dc.contributor.authorArunrattiyakorn P.
dc.contributor.authorKuno M.
dc.contributor.authorAree T.
dc.contributor.authorLaphookhieo S.
dc.contributor.authorSriyatep T.
dc.contributor.authorKanzaki H.
dc.contributor.authorGarcia Chavez M.A.
dc.contributor.authorWang Y.A.
dc.contributor.authorAndersen R.J.
dc.date.accessioned2021-04-05T03:05:20Z-
dc.date.available2021-04-05T03:05:20Z-
dc.date.issued2018
dc.identifier.issn1633864
dc.identifier.other2-s2.0-85055189576
dc.identifier.urihttps://ir.swu.ac.th/jspui/handle/123456789/12728-
dc.identifier.urihttps://www.scopus.com/inward/record.uri?eid=2-s2.0-85055189576&doi=10.1021%2facs.jnatprod.8b00519&partnerID=40&md5=ffa8ee20c6805a758cd3f21cf8f05784
dc.description.abstractBiotransformation of β-mangostin (1) by the endophytic fungus Xylaria feejeensis GM06 afforded hexacyclic ring-fused xanthenes with an unprecedented hexacyclic heterocylic skeleton. β-Mangostin (1) was transformed to two diastereomeric pairs of enantiomers, mangostafeejin A [(-)-2a/(+)-2b)] and mangostafeejin B [(-)-3a/(+)-3b)]. The chemical structures of the transformation products were elucidated by analysis of NMR and MS data, and the structure of mangostafeejin A [(-)-2a/(+)-2b)] was confirmed by single-crystal X-ray diffraction analysis. The absolute configurations of 3a and 3b were established on the basis of calculated and measured ECD data using the ECD spectra of 2a and 2b as models. The fungal biotransformation described herein provides an effective method to convert an abundant achiral plant natural product scaffold into new chiral heterocyclic scaffolds representing expanded chemical diversity for biological activity screening. © 2018 American Chemical Society and American Society of Pharmacognosy.
dc.subjectbeta mangostin
dc.subjectherbaceous agent
dc.subjectmangostafeejin A
dc.subjectmangostafeejin B
dc.subjectnatural product
dc.subjectunclassified drug
dc.subjectxanthene derivative
dc.subjectheterocyclic carboxylic acid
dc.subjectmangostin
dc.subjectxanthene derivative
dc.subjectxanthone derivative
dc.subjectArticle
dc.subjectbiotransformation
dc.subjectcarbon nuclear magnetic resonance
dc.subjectcomparative study
dc.subjectdiastereoisomer
dc.subjectdrug isolation
dc.subjectdrug structure
dc.subjectenantiomer
dc.subjectendophytic fungus
dc.subjectGarcinia mangostana
dc.subjecthigh performance liquid chromatography
dc.subjecthydrogen bond
dc.subjectnonhuman
dc.subjectreversed phase high performance liquid chromatography
dc.subjectX ray diffraction
dc.subjectXylaria feejeensis
dc.subjectbiotransformation
dc.subjectchemical structure
dc.subjectcircular dichroism
dc.subjectGarcinia mangostana
dc.subjectmass spectrometry
dc.subjectmetabolism
dc.subjectmicrobiology
dc.subjectnuclear magnetic resonance spectroscopy
dc.subjectstereoisomerism
dc.subjectsynthesis
dc.subjectXylariales
dc.subjectAcids, Heterocyclic
dc.subjectBiotransformation
dc.subjectCircular Dichroism
dc.subjectGarcinia mangostana
dc.subjectMagnetic Resonance Spectroscopy
dc.subjectMass Spectrometry
dc.subjectMolecular Structure
dc.subjectStereoisomerism
dc.subjectX-Ray Diffraction
dc.subjectXanthenes
dc.subjectXanthones
dc.subjectXylariales
dc.titleBiotransformation of β-Mangostin by an Endophytic Fungus of Garcinia mangostana to Furnish Xanthenes with an Unprecedented Heterocyclic Skeleton
dc.typeArticle
dc.rights.holderScopus
dc.identifier.bibliograpycitationJournal of Natural Products. Vol 81, No.10 (2018), p.2244-2250
dc.identifier.doi10.1021/acs.jnatprod.8b00519
Appears in Collections:Scopus 1983-2021

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