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Loss of the Thioredoxin Reductase Trr1 Suppresses the Genomic Instability of Peroxiredoxin tsa1 Mutants

The absence of Tsa1, a key peroxiredoxin that scavenges H(2)O(2) in Saccharomyces cerevisiae, causes the accumulation of a broad spectrum of mutations. Deletion of TSA1 also causes synthetic lethality in combination with mutations in RAD51 or several key genes involved in DNA double-strand break rep...

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Autores principales: Ragu, Sandrine, Dardalhon, Michèle, Sharma, Sushma, Iraqui, Ismail, Buhagiar-Labarchède, Géraldine, Grondin, Virginie, Kienda, Guy, Vernis, Laurence, Chanet, Roland, Kolodner, Richard D., Huang, Meng-Er, Faye, Gérard
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4172583/
https://www.ncbi.nlm.nih.gov/pubmed/25247923
http://dx.doi.org/10.1371/journal.pone.0108123
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author Ragu, Sandrine
Dardalhon, Michèle
Sharma, Sushma
Iraqui, Ismail
Buhagiar-Labarchède, Géraldine
Grondin, Virginie
Kienda, Guy
Vernis, Laurence
Chanet, Roland
Kolodner, Richard D.
Huang, Meng-Er
Faye, Gérard
author_facet Ragu, Sandrine
Dardalhon, Michèle
Sharma, Sushma
Iraqui, Ismail
Buhagiar-Labarchède, Géraldine
Grondin, Virginie
Kienda, Guy
Vernis, Laurence
Chanet, Roland
Kolodner, Richard D.
Huang, Meng-Er
Faye, Gérard
author_sort Ragu, Sandrine
collection PubMed
description The absence of Tsa1, a key peroxiredoxin that scavenges H(2)O(2) in Saccharomyces cerevisiae, causes the accumulation of a broad spectrum of mutations. Deletion of TSA1 also causes synthetic lethality in combination with mutations in RAD51 or several key genes involved in DNA double-strand break repair. In the present study, we propose that the accumulation of reactive oxygen species (ROS) is the primary cause of genome instability of tsa1Δ cells. In searching for spontaneous suppressors of synthetic lethality of tsa1Δ rad51Δ double mutants, we identified that the loss of thioredoxin reductase Trr1 rescues their viability. The trr1Δ mutant displayed a Can(R) mutation rate 5-fold lower than wild-type cells. Additional deletion of TRR1 in tsa1Δ mutant reduced substantially the Can(R) mutation rate of tsa1Δ strain (33-fold), and to a lesser extent, of rad51Δ strain (4-fold). Loss of Trr1 induced Yap1 nuclear accumulation and over-expression of a set of Yap1-regulated oxido-reductases with antioxidant properties that ultimately re-equilibrate intracellular redox environment, reducing substantially ROS-associated DNA damages. This trr1Δ -induced effect was largely thioredoxin-dependent, probably mediated by oxidized forms of thioredoxins, the primary substrates of Trr1. Thioredoxin Trx1 and Trx2 were constitutively and strongly oxidized in the absence of Trr1. In trx1Δ trx2Δ cells, Yap1 was only moderately activated; consistently, the trx1Δ trx2Δ double deletion failed to efficiently rescue the viability of tsa1Δ rad51Δ. Finally, we showed that modulation of the dNTP pool size also influences the formation of spontaneous mutation in trr1Δ and trx1Δ trx2Δ strains. We present a tentative model that helps to estimate the respective impact of ROS level and dNTP concentration in the generation of spontaneous mutations.
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spelling pubmed-41725832014-10-02 Loss of the Thioredoxin Reductase Trr1 Suppresses the Genomic Instability of Peroxiredoxin tsa1 Mutants Ragu, Sandrine Dardalhon, Michèle Sharma, Sushma Iraqui, Ismail Buhagiar-Labarchède, Géraldine Grondin, Virginie Kienda, Guy Vernis, Laurence Chanet, Roland Kolodner, Richard D. Huang, Meng-Er Faye, Gérard PLoS One Research Article The absence of Tsa1, a key peroxiredoxin that scavenges H(2)O(2) in Saccharomyces cerevisiae, causes the accumulation of a broad spectrum of mutations. Deletion of TSA1 also causes synthetic lethality in combination with mutations in RAD51 or several key genes involved in DNA double-strand break repair. In the present study, we propose that the accumulation of reactive oxygen species (ROS) is the primary cause of genome instability of tsa1Δ cells. In searching for spontaneous suppressors of synthetic lethality of tsa1Δ rad51Δ double mutants, we identified that the loss of thioredoxin reductase Trr1 rescues their viability. The trr1Δ mutant displayed a Can(R) mutation rate 5-fold lower than wild-type cells. Additional deletion of TRR1 in tsa1Δ mutant reduced substantially the Can(R) mutation rate of tsa1Δ strain (33-fold), and to a lesser extent, of rad51Δ strain (4-fold). Loss of Trr1 induced Yap1 nuclear accumulation and over-expression of a set of Yap1-regulated oxido-reductases with antioxidant properties that ultimately re-equilibrate intracellular redox environment, reducing substantially ROS-associated DNA damages. This trr1Δ -induced effect was largely thioredoxin-dependent, probably mediated by oxidized forms of thioredoxins, the primary substrates of Trr1. Thioredoxin Trx1 and Trx2 were constitutively and strongly oxidized in the absence of Trr1. In trx1Δ trx2Δ cells, Yap1 was only moderately activated; consistently, the trx1Δ trx2Δ double deletion failed to efficiently rescue the viability of tsa1Δ rad51Δ. Finally, we showed that modulation of the dNTP pool size also influences the formation of spontaneous mutation in trr1Δ and trx1Δ trx2Δ strains. We present a tentative model that helps to estimate the respective impact of ROS level and dNTP concentration in the generation of spontaneous mutations. Public Library of Science 2014-09-23 /pmc/articles/PMC4172583/ /pubmed/25247923 http://dx.doi.org/10.1371/journal.pone.0108123 Text en © 2014 Ragu et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Ragu, Sandrine
Dardalhon, Michèle
Sharma, Sushma
Iraqui, Ismail
Buhagiar-Labarchède, Géraldine
Grondin, Virginie
Kienda, Guy
Vernis, Laurence
Chanet, Roland
Kolodner, Richard D.
Huang, Meng-Er
Faye, Gérard
Loss of the Thioredoxin Reductase Trr1 Suppresses the Genomic Instability of Peroxiredoxin tsa1 Mutants
title Loss of the Thioredoxin Reductase Trr1 Suppresses the Genomic Instability of Peroxiredoxin tsa1 Mutants
title_full Loss of the Thioredoxin Reductase Trr1 Suppresses the Genomic Instability of Peroxiredoxin tsa1 Mutants
title_fullStr Loss of the Thioredoxin Reductase Trr1 Suppresses the Genomic Instability of Peroxiredoxin tsa1 Mutants
title_full_unstemmed Loss of the Thioredoxin Reductase Trr1 Suppresses the Genomic Instability of Peroxiredoxin tsa1 Mutants
title_short Loss of the Thioredoxin Reductase Trr1 Suppresses the Genomic Instability of Peroxiredoxin tsa1 Mutants
title_sort loss of the thioredoxin reductase trr1 suppresses the genomic instability of peroxiredoxin tsa1 mutants
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4172583/
https://www.ncbi.nlm.nih.gov/pubmed/25247923
http://dx.doi.org/10.1371/journal.pone.0108123
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