Literature DB >> 17087494

Thermodynamic basis for redox regulation of the Yap1 signal transduction pathway.

Jeremy T Mason1, Sung-Kun Kim, David B Knaff, Matthew J Wood.   

Abstract

The Yap1 oxidative stress signal transduction pathway found in Saccharomyces cerevisiae is redox-regulated. We have examined the thermodynamic basis of the disulfide/dithiol couples that are involved in the regulation of this pathway. The oxidized form of the Yap1 redox domain (Yap1-RD) fragment, derived from the Yap1 transcription factor, contains two disulfide bonds, one between Cys303 and Cys598 and one between Cys310 and Cys629. Oxidation-reduction titrations reveal the presence of two separate two-electron redox couples in Yap1-RD, with redox midpoint potentials (E(m)) of -155 and -330 mV, respectively, at pH 7.0. We measured E(m) values of -275 and -265 mV for the two cytoplasmic S. cerevisiae thioredoxins, Trx1 and Trx2, respectively, both at pH 7.0. Last, we measured an E(m) value of -255 mV for the Cys36-Cys82 disulfide bond at pH 6.0 in the glutathione peroxidase-like enzyme, oxidant receptor protein (Orp1). We were unable to obtain satisfactory redox titration data for Orp1 at pH 7.0, but if the redox-active disulfide of Orp1 exhibits the -59 mV per pH unit dependence for E(m) typical of protein disulfides in this pH region, an E(m) value of -315 mV can be estimated for Orp1 at pH 7.0 by extrapolation. Together, these data suggest that, at physiological ratios of Trx(ox)/Trx(red), the reduction of both the E(m) = -315 mV disulfide of Orp1 and the E(m) = -330 mV disulfide of Yap1 by either Trx1 or Trx2 would be thermodynamically possible.

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Year:  2006        PMID: 17087494     DOI: 10.1021/bi061136y

Source DB:  PubMed          Journal:  Biochemistry        ISSN: 0006-2960            Impact factor:   3.162


  13 in total

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8.  Activation of Cu,Zn-superoxide dismutase in the absence of oxygen and the copper chaperone CCS.

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9.  Trx2p-dependent regulation of Saccharomyces cerevisiae oxidative stress response by the Skn7p transcription factor under respiring conditions.

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10.  Loss of the thioredoxin reductase Trr1 suppresses the genomic instability of peroxiredoxin tsa1 mutants.

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Journal:  PLoS One       Date:  2014-09-23       Impact factor: 3.240

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