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S-Glutathionyl-(chloro)hydroquinone reductases: a novel class of glutathione transferases

dc.contributor.authorXun, Luying
dc.contributor.authorBelchik, Sara M
dc.contributor.authorXun, Randy
dc.contributor.authorHuang, Yan
dc.contributor.authorZhou, Huina
dc.contributor.authorSanchez, Emiliano
dc.contributor.authorKang, ChulHee
dc.contributor.authorBoard, Philip
dc.date.accessioned2015-12-07T22:21:18Z
dc.date.issued2010
dc.date.updated2016-02-24T11:26:25Z
dc.description.abstractSphingobium chlorophenolicum completely mineralizes PCP (pentachlorophenol). Two GSTs (glutathione transferases), PcpC and PcpF, are involved in the degradation. PcpC uses GSH to reduce TeCH (tetrachloro-p- hydroquinone) to TriCH (trichlorop-hydroquinone) and then to DiCH (dichloro-p-hydroquinone) during PCP degradation. However, oxidatively damaged PcpC produces GS-TriCH (S-glutathionyl-TriCH) and GS-DiCH (Sglutathionyl-TriCH) conjugates. PcpF converts the conjugates into TriCH and DiCH, re-entering the degradation pathway. PcpF was further characterized in the present study. It catalysed GSH-dependent reduction of GS-TriCH via a Ping Pong mechanism. First, PcpF reacted with GS-TriCH to release TriCH and formed disulfide bond between its Cys53 residue and the GS moiety. Then, a GSH came in to regenerate PcpF and release GS-SG. A TBLASTN search revealed that PcpF homologues were widely distributed in bacteria, halobacteria (archaea), fungi and plants, and they belonged to ECM4 (extracellular mutant 4) group COG0435 in the conserved domain database. Phylogenetic analysis grouped PcpF and homologues into a distinct group, separated from Omega class GSTs. The two groups shared conserved amino acid residues, for GSH binding, but had different residues for the binding of the second substrate. Several recombinant PcpF homologues and two human Omega class GSTs were produced in Escherichia coli and purified. They had zero or low activities for transferring GSH to standard substrates, but all had reasonable activities for GSH-dependent reduction of disulfide bond (thiol transfer), dehydroascorbate and dimethylarsinate. All the tested PcpF homologues reduced GS-TriCH, but the two Omega class GSTs did not. Thus PcpF homologues were tentatively named S-glutathionyl-(chloro)hydroquinone reductases for catalysing the GSH-dependent reduction of GS-TriCH.
dc.identifier.issn0264-6021
dc.identifier.urihttp://hdl.handle.net/1885/19982
dc.publisherPortland Press
dc.sourceBiochemical Journal
dc.subjectKeywords: Amino acid residues; Archaea; Degradation pathways; Dimethylarsinate; Disulfide bonds; Extracellular; Glutathione transferase; Glutathiones; PCP degradation; Phylogenetic analysis; Ping-pong mechanism; Sphingobium chlorophenolicum; Amino acids; Degradatio Glutathione conjugate; Glutathione transferase (GST); Glutathione-dependent reductase; Pentachlorophenol; S-glutathionyl-hydroquinone
dc.titleS-Glutathionyl-(chloro)hydroquinone reductases: a novel class of glutathione transferases
dc.typeJournal article
local.bibliographicCitation.lastpage427
local.bibliographicCitation.startpage419
local.contributor.affiliationXun, Luying, Washington State University
local.contributor.affiliationBelchik, Sara M, Washington State University
local.contributor.affiliationXun, Randy, Washington State University
local.contributor.affiliationHuang, Yan, Washington State university
local.contributor.affiliationZhou, Huina, College of Medicine, Biology and Environment, ANU
local.contributor.affiliationSanchez, Emiliano, Washington State University
local.contributor.affiliationKang, ChulHee, Washington State University
local.contributor.affiliationBoard, Philip, College of Medicine, Biology and Environment, ANU
local.contributor.authoruidZhou, Huina, u4426159
local.contributor.authoruidBoard, Philip, u7701651
local.description.embargo2037-12-31
local.description.notesImported from ARIES
local.identifier.absfor060107 - Enzymes
local.identifier.ariespublicationu4897219xPUB10
local.identifier.citationvolume428
local.identifier.doi10.1042/BJ20091863
local.identifier.scopusID2-s2.0-77954947303
local.identifier.thomsonID000278914400010
local.type.statusPublished Version

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