Literature DB >> 22985967

Disulfide biochemistry in 2-cys peroxiredoxin: requirement of Glu50 and Arg146 for the reduction of yeast Tsa1 by thioredoxin.

Carlos A Tairum1, Marcos A de Oliveira, Bruno B Horta, Fernando J Zara, Luis E S Netto.   

Abstract

2-Cys peroxiredoxin (Prx) enzymes are ubiquitously distributed peroxidases that make use of a peroxidatic cysteine (Cys(P)) to decompose hydroperoxides. A disulfide bond is generated as a consequence of the partial unfolding of the α-helix that contains Cys(P). Therefore, during its catalytic cycle, 2-Cys Prx alternates between two states, locally unfolded and fully folded. Tsa1 (thiol-specific antioxidant protein 1 from yeast) is by far the most abundant Cys-based peroxidase in Saccharomyces cerevisiae. In this work, we present the crystallographic structure at 2.8Å resolution of Tsa1(C47S) in the decameric form [(α(2))(5)] with a DTT molecule bound to the active site, representing one of the few available reports of a 2-Cys Prx (AhpC-Prx1 subfamily) (AhpC, alkyl hydroperoxide reductase subunit C) structure that incorporates a ligand. The analysis of the Tsa1(C47S) structure indicated that Glu50 and Arg146 participate in the stabilization of the Cys(P) α-helix. As a consequence, we raised the hypothesis that Glu50 and Arg146 might be relevant to the Cys(P) reactivity. Therefore, Tsa1(E50A) and Tsa1(R146Q) mutants were generated and were still able to decompose hydrogen peroxide, presenting a second-order rate constant in the range of 10(6)M(-1)s(-1). Remarkably, although Tsa1(E50A) and Tsa1(R146Q) were efficiently reduced by the low-molecular-weight reductant DTT, these mutants displayed only marginal thioredoxin (Trx)-dependent peroxidase activity, indicating that Glu50 and Arg146 are important for the Tsa1-Trx interaction. These results may impact the comprehension of downstream events of signaling pathways that are triggered by the oxidation of critical Cys residues, such as Trx.
Copyright © 2012 Elsevier Ltd. All rights reserved.

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Year:  2012        PMID: 22985967     DOI: 10.1016/j.jmb.2012.09.008

Source DB:  PubMed          Journal:  J Mol Biol        ISSN: 0022-2836            Impact factor:   5.469


  22 in total

Review 1.  The sulfiredoxin-peroxiredoxin (Srx-Prx) axis in cell signal transduction and cancer development.

Authors:  Murli Mishra; Hong Jiang; Lisha Wu; Hedy A Chawsheen; Qiou Wei
Journal:  Cancer Lett       Date:  2015-07-10       Impact factor: 8.679

2.  Experimentally Dissecting the Origins of Peroxiredoxin Catalysis.

Authors:  Kimberly J Nelson; Arden Perkins; Amanda E D Van Swearingen; Steven Hartman; Andrew E Brereton; Derek Parsonage; Freddie R Salsbury; P Andrew Karplus; Leslie B Poole
Journal:  Antioxid Redox Signal       Date:  2017-04-04       Impact factor: 8.401

Review 3.  The Multifaceted Impact of Peroxiredoxins on Aging and Disease.

Authors:  Svetlana N Radyuk; William C Orr
Journal:  Antioxid Redox Signal       Date:  2018-01-17       Impact factor: 8.401

4.  The extraordinary catalytic ability of peroxiredoxins: a combined experimental and QM/MM study on the fast thiol oxidation step.

Authors:  Ari Zeida; Anibal M Reyes; Mariano C G Lebrero; Rafael Radi; Madia Trujillo; Darío A Estrin
Journal:  Chem Commun (Camb)       Date:  2014-09-11       Impact factor: 6.222

Review 5.  Peroxiredoxins: guardians against oxidative stress and modulators of peroxide signaling.

Authors:  Arden Perkins; Kimberly J Nelson; Derek Parsonage; Leslie B Poole; P Andrew Karplus
Journal:  Trends Biochem Sci       Date:  2015-06-09       Impact factor: 13.807

6.  Fluorescence Lifetime Phasor Analysis of the Decamer-Dimer Equilibrium of Human Peroxiredoxin 1.

Authors:  Sebastián F Villar; Joaquín Dalla-Rizza; Matías N Möller; Gerardo Ferrer-Sueta; Leonel Malacrida; David M Jameson; Ana Denicola
Journal:  Int J Mol Sci       Date:  2022-05-09       Impact factor: 6.208

7.  Aromatic Residues at the Dimer-Dimer Interface in the Peroxiredoxin Tsa1 Facilitate Decamer Formation and Biological Function.

Authors:  Matthew A Loberg; Jennifer E Hurtig; Aaron H Graff; Kristin M Allan; John A Buchan; Matthew K Spencer; Joseph E Kelly; Jill E Clodfelter; Kevin A Morano; W Todd Lowther; James D West
Journal:  Chem Res Toxicol       Date:  2019-02-11       Impact factor: 3.739

Review 8.  Redox regulation of the proteasome via S-glutathionylation.

Authors:  Marilene Demasi; Luis E S Netto; Gustavo M Silva; Adrian Hand; Cristiano L P de Oliveira; Renata N Bicev; Fabio Gozzo; Mario H Barros; Janaina M M Leme; Erina Ohara
Journal:  Redox Biol       Date:  2013-12-14       Impact factor: 11.799

9.  A 14.7 kDa protein from Francisella tularensis subsp. novicida (named FTN_1133), involved in the response to oxidative stress induced by organic peroxides, is not endowed with thiol-dependent peroxidase activity.

Authors:  Diogo de Abreu Meireles; Thiago Geronimo Pires Alegria; Simone Vidigal Alves; Carla Rani Rocha Arantes; Luis Eduardo Soares Netto
Journal:  PLoS One       Date:  2014-06-24       Impact factor: 3.240

Review 10.  Hydrogen peroxide - production, fate and role in redox signaling of tumor cells.

Authors:  Claudia Lennicke; Jette Rahn; Rudolf Lichtenfels; Ludger A Wessjohann; Barbara Seliger
Journal:  Cell Commun Signal       Date:  2015-09-14       Impact factor: 5.712

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