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Sodium Selenide Toxicity Is Mediated by O(2)-Dependent DNA Breaks

Hydrogen selenide is a recurrent metabolite of selenium compounds. However, few experiments studied the direct link between this toxic agent and cell death. To address this question, we first screened a systematic collection of Saccharomyces cerevisiae haploid knockout strains for sensitivity to sod...

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Autores principales: Peyroche, Gérald, Saveanu, Cosmin, Dauplais, Marc, Lazard, Myriam, Beuneu, François, Decourty, Laurence, Malabat, Christophe, Jacquier, Alain, Blanquet, Sylvain, Plateau, Pierre
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3346755/
https://www.ncbi.nlm.nih.gov/pubmed/22586468
http://dx.doi.org/10.1371/journal.pone.0036343
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author Peyroche, Gérald
Saveanu, Cosmin
Dauplais, Marc
Lazard, Myriam
Beuneu, François
Decourty, Laurence
Malabat, Christophe
Jacquier, Alain
Blanquet, Sylvain
Plateau, Pierre
author_facet Peyroche, Gérald
Saveanu, Cosmin
Dauplais, Marc
Lazard, Myriam
Beuneu, François
Decourty, Laurence
Malabat, Christophe
Jacquier, Alain
Blanquet, Sylvain
Plateau, Pierre
author_sort Peyroche, Gérald
collection PubMed
description Hydrogen selenide is a recurrent metabolite of selenium compounds. However, few experiments studied the direct link between this toxic agent and cell death. To address this question, we first screened a systematic collection of Saccharomyces cerevisiae haploid knockout strains for sensitivity to sodium selenide, a donor for hydrogen selenide (H(2)Se/HSe(−/)Se(2−)). Among the genes whose deletion caused hypresensitivity, homologous recombination and DNA damage checkpoint genes were over-represented, suggesting that DNA double-strand breaks are a dominant cause of hydrogen selenide toxicity. Consistent with this hypothesis, treatment of S. cerevisiae cells with sodium selenide triggered G2/M checkpoint activation and induced in vivo chromosome fragmentation. In vitro, sodium selenide directly induced DNA phosphodiester-bond breaks via an O(2)-dependent reaction. The reaction was inhibited by mannitol, a hydroxyl radical quencher, but not by superoxide dismutase or catalase, strongly suggesting the involvement of hydroxyl radicals and ruling out participations of superoxide anions or hydrogen peroxide. The (•)OH signature could indeed be detected by electron spin resonance upon exposure of a solution of sodium selenide to O(2). Finally we showed that, in vivo, toxicity strictly depended on the presence of O(2). Therefore, by combining genome-wide and biochemical approaches, we demonstrated that, in yeast cells, hydrogen selenide induces toxic DNA breaks through an O(2)-dependent radical-based mechanism.
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spelling pubmed-33467552012-05-14 Sodium Selenide Toxicity Is Mediated by O(2)-Dependent DNA Breaks Peyroche, Gérald Saveanu, Cosmin Dauplais, Marc Lazard, Myriam Beuneu, François Decourty, Laurence Malabat, Christophe Jacquier, Alain Blanquet, Sylvain Plateau, Pierre PLoS One Research Article Hydrogen selenide is a recurrent metabolite of selenium compounds. However, few experiments studied the direct link between this toxic agent and cell death. To address this question, we first screened a systematic collection of Saccharomyces cerevisiae haploid knockout strains for sensitivity to sodium selenide, a donor for hydrogen selenide (H(2)Se/HSe(−/)Se(2−)). Among the genes whose deletion caused hypresensitivity, homologous recombination and DNA damage checkpoint genes were over-represented, suggesting that DNA double-strand breaks are a dominant cause of hydrogen selenide toxicity. Consistent with this hypothesis, treatment of S. cerevisiae cells with sodium selenide triggered G2/M checkpoint activation and induced in vivo chromosome fragmentation. In vitro, sodium selenide directly induced DNA phosphodiester-bond breaks via an O(2)-dependent reaction. The reaction was inhibited by mannitol, a hydroxyl radical quencher, but not by superoxide dismutase or catalase, strongly suggesting the involvement of hydroxyl radicals and ruling out participations of superoxide anions or hydrogen peroxide. The (•)OH signature could indeed be detected by electron spin resonance upon exposure of a solution of sodium selenide to O(2). Finally we showed that, in vivo, toxicity strictly depended on the presence of O(2). Therefore, by combining genome-wide and biochemical approaches, we demonstrated that, in yeast cells, hydrogen selenide induces toxic DNA breaks through an O(2)-dependent radical-based mechanism. Public Library of Science 2012-05-07 /pmc/articles/PMC3346755/ /pubmed/22586468 http://dx.doi.org/10.1371/journal.pone.0036343 Text en Peyroche 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
Peyroche, Gérald
Saveanu, Cosmin
Dauplais, Marc
Lazard, Myriam
Beuneu, François
Decourty, Laurence
Malabat, Christophe
Jacquier, Alain
Blanquet, Sylvain
Plateau, Pierre
Sodium Selenide Toxicity Is Mediated by O(2)-Dependent DNA Breaks
title Sodium Selenide Toxicity Is Mediated by O(2)-Dependent DNA Breaks
title_full Sodium Selenide Toxicity Is Mediated by O(2)-Dependent DNA Breaks
title_fullStr Sodium Selenide Toxicity Is Mediated by O(2)-Dependent DNA Breaks
title_full_unstemmed Sodium Selenide Toxicity Is Mediated by O(2)-Dependent DNA Breaks
title_short Sodium Selenide Toxicity Is Mediated by O(2)-Dependent DNA Breaks
title_sort sodium selenide toxicity is mediated by o(2)-dependent dna breaks
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3346755/
https://www.ncbi.nlm.nih.gov/pubmed/22586468
http://dx.doi.org/10.1371/journal.pone.0036343
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