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Mass Spectral Characterization of Dichloroacetic Acid-Modified Human Glutathione Transferase Zeta

dc.contributor.authorAnderson, Wayne
dc.contributor.authorLiebler, Daniel
dc.contributor.authorBoard, Philip
dc.contributor.authorAnders, Michael
dc.date.accessioned2015-12-13T23:41:01Z
dc.date.issued2002
dc.date.updated2015-12-12T09:31:06Z
dc.description.abstractGlutathione transferase zeta (GSTZ1-1) is widely expressed in eukaryotic species, and four human allelic variants of hGSTZ1-1 have been described. GSTZ1-1 catalyzes the cis-trans isomerization of maleylacetoacetate to fumarylacetoacetate and the biotransformation of a range of α-haloalkanoic acids. GSTZ1-1-catalyzed biotransformation of fluorine-lacking α,α-diha-loalkanoic acids, including dichloroacetic acid (DCA), results in the mechanism-based inactivation and covalent modification of the enzyme. The objective of this study was to investigate further the DCA-induced inactivation of hGSTZ1c-1c and to explore the mechanism of inactivation by characterization of the sites and types of DCA-induced covalent modifications. The partition ratio for the DCA-induced, mechanism-based inactivation of hGSTZ1c-1c was (5.7 ± 0.5) × 102, and the kcat for the biotransformation of DCA was 39 min-1. Inactivation of hGSTZ1c-1c in vitro was limited at high enzyme concentrations and was inhibited by glyoxylate. The stoichiometry of DCA binding to hGSTZ1c-1c was ∼0.5 mol of DCA/mol of enzyme monomer. A single DCA-derived adduct was observed and was assigned to cysteine-16 by a combination of matrix-assisted laser-desorption-ionization time-of-flight and electrospray-ionization quadrupole ion-trap mass spectrometry and by analysis of [1-14C]DCA binding to C16A hGSTZ1c1c. The DCA-derived adduct contained both glutathione and the carbon skeleton of DCA, presumably in a dithioacetal linkage. Also, cysteine-16 formed a mixed disulfide bond with glutathione. These data support a mechanism of inactivation whereby glutathione displaces a chlorine atom from DCA, and cysteine-16 in the enzyme active site displaces the second chlorine atom to result in a covalently modified and inactivated enzyme. These findings explain the DCA-induced inactivation of GSTZ1-1 observed in humans and rats.
dc.identifier.issn0893-228X
dc.identifier.urihttp://hdl.handle.net/1885/94700
dc.publisherAmerican Chemical Society
dc.sourceChemical Research in Toxicology
dc.subjectKeywords: acetoacetic acid derivative; alkanoic acid; cysteine; dichloroacetic acid; fluorine; glutathione; glutathione transferase; glutathione transferase zeta; glyoxylic acid; unclassified drug; dichloroacetic acid; enzyme inhibitor; peptide fragment; article; b
dc.titleMass Spectral Characterization of Dichloroacetic Acid-Modified Human Glutathione Transferase Zeta
dc.typeJournal article
local.bibliographicCitation.issue11
local.bibliographicCitation.lastpage1397
local.bibliographicCitation.startpage1387
local.contributor.affiliationAnderson, Wayne, University of Rochester Medical Center
local.contributor.affiliationLiebler, Daniel, University of Arizona
local.contributor.affiliationBoard, Philip, College of Medicine, Biology and Environment, ANU
local.contributor.affiliationAnders, Michael, University of Rochester
local.contributor.authoruidBoard, Philip, u7701651
local.description.embargo2037-12-31
local.description.notesImported from ARIES
local.description.refereedYes
local.identifier.absfor060107 - Enzymes
local.identifier.ariespublicationMigratedxPub24355
local.identifier.citationvolume15
local.identifier.doi10.1021/tx025553x
local.identifier.scopusID2-s2.0-0036852695
local.type.statusPublished Version

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