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dc.contributor.authorLewis, Benjamin C-
dc.contributor.authorNair, Pramod C-
dc.contributor.authorHeran, Subash S-
dc.contributor.authorSomogyi, Andrew A-
dc.contributor.authorBowden, Jeffrey J-
dc.contributor.authorDoogue, Matthew P-
dc.contributor.authorMiners, John O-
dc.identifier.citationPharmacogenetics and genomics 2016-01; 26(1): 44-50-
dc.description.abstractThe variable response to warfarin treatment often has a genetic basis. A protein homology model of human vitamin K epoxide reductase, subunit 1 (VKORC1), was generated to elucidate the mechanism of warfarin resistance observed in a patient with the Val66Met mutation. The VKORC1 homology model comprises four transmembrane (TM) helical domains and a half helical lid domain. Cys132 and Cys135, located in the N-terminal end of TM-4, are linked through a disulfide bond. Two distinct binding sites for warfarin were identified. Site-1, which binds vitamin K epoxide (KO) in a catalytically favorable orientation, shows higher affinity for S-warfarin compared with R-warfarin. Site-2, positioned in the domain occupied by the hydrophobic tail of KO, binds both warfarin enantiomers with similar affinity. Displacement of Arg37 occurs in the Val66Met mutant, blocking access of warfarin (but not KO) to Site-1, consistent with clinical observation of warfarin resistance.-
dc.subject.meshBinding Sites-
dc.subject.meshModels, Molecular-
dc.subject.meshProtein Structure, Secondary-
dc.subject.meshPulmonary Embolism-
dc.subject.meshStructural Homology, Protein-
dc.subject.meshVitamin K Epoxide Reductases-
dc.subject.meshDrug Resistance-
dc.subject.meshPolymorphism, Single Nucleotide-
dc.titleWarfarin resistance associated with genetic polymorphism of VKORC1: linking clinical response to molecular mechanism using computational modeling.-
dc.typeCase Reports-
dc.typeJournal Article-
dc.identifier.journaltitlePharmacogenetics and genomics-
Appears in Collections:Scholarly and Clinical

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