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Multiple controls affect arsenite oxidase gene expression in Herminiimonas arsenicoxydans

BACKGROUND: Both the speciation and toxicity of arsenic are affected by bacterial transformations, i.e. oxidation, reduction or methylation. These transformations have a major impact on environmental contamination and more particularly on arsenic contamination of drinking water. Herminiimonas arseni...

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Autores principales: Koechler, Sandrine, Cleiss-Arnold, Jessica, Proux, Caroline, Sismeiro, Odile, Dillies, Marie-Agnès, Goulhen-Chollet, Florence, Hommais, Florence, Lièvremont, Didier, Arsène-Ploetze, Florence, Coppée, Jean-Yves, Bertin, Philippe N
Formato: Texto
Lenguaje:English
Publicado: BioMed Central 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2848651/
https://www.ncbi.nlm.nih.gov/pubmed/20167112
http://dx.doi.org/10.1186/1471-2180-10-53
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author Koechler, Sandrine
Cleiss-Arnold, Jessica
Proux, Caroline
Sismeiro, Odile
Dillies, Marie-Agnès
Goulhen-Chollet, Florence
Hommais, Florence
Lièvremont, Didier
Arsène-Ploetze, Florence
Coppée, Jean-Yves
Bertin, Philippe N
author_facet Koechler, Sandrine
Cleiss-Arnold, Jessica
Proux, Caroline
Sismeiro, Odile
Dillies, Marie-Agnès
Goulhen-Chollet, Florence
Hommais, Florence
Lièvremont, Didier
Arsène-Ploetze, Florence
Coppée, Jean-Yves
Bertin, Philippe N
author_sort Koechler, Sandrine
collection PubMed
description BACKGROUND: Both the speciation and toxicity of arsenic are affected by bacterial transformations, i.e. oxidation, reduction or methylation. These transformations have a major impact on environmental contamination and more particularly on arsenic contamination of drinking water. Herminiimonas arsenicoxydans has been isolated from an arsenic- contaminated environment and has developed various mechanisms for coping with arsenic, including the oxidation of As(III) to As(V) as a detoxification mechanism. RESULTS: In the present study, a differential transcriptome analysis was used to identify genes, including arsenite oxidase encoding genes, involved in the response of H. arsenicoxydans to As(III). To get insight into the molecular mechanisms of this enzyme activity, a Tn5 transposon mutagenesis was performed. Transposon insertions resulting in a lack of arsenite oxidase activity disrupted aoxR and aoxS genes, showing that the aox operon transcription is regulated by the AoxRS two-component system. Remarkably, transposon insertions were also identified in rpoN coding for the alternative N sigma factor (σ(54)) of RNA polymerase and in dnaJ coding for the Hsp70 co-chaperone. Western blotting with anti-AoxB antibodies and quantitative RT-PCR experiments allowed us to demonstrate that the rpoN and dnaJ gene products are involved in the control of arsenite oxidase gene expression. Finally, the transcriptional start site of the aoxAB operon was determined using rapid amplification of cDNA ends (RACE) and a putative -12/-24 σ(54)-dependent promoter motif was identified upstream of aoxAB coding sequences. CONCLUSION: These results reveal the existence of novel molecular regulatory processes governing arsenite oxidase expression in H. arsenicoxydans. These data are summarized in a model that functionally integrates arsenite oxidation in the adaptive response to As(III) in this microorganism.
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spelling pubmed-28486512010-04-02 Multiple controls affect arsenite oxidase gene expression in Herminiimonas arsenicoxydans Koechler, Sandrine Cleiss-Arnold, Jessica Proux, Caroline Sismeiro, Odile Dillies, Marie-Agnès Goulhen-Chollet, Florence Hommais, Florence Lièvremont, Didier Arsène-Ploetze, Florence Coppée, Jean-Yves Bertin, Philippe N BMC Microbiol Research article BACKGROUND: Both the speciation and toxicity of arsenic are affected by bacterial transformations, i.e. oxidation, reduction or methylation. These transformations have a major impact on environmental contamination and more particularly on arsenic contamination of drinking water. Herminiimonas arsenicoxydans has been isolated from an arsenic- contaminated environment and has developed various mechanisms for coping with arsenic, including the oxidation of As(III) to As(V) as a detoxification mechanism. RESULTS: In the present study, a differential transcriptome analysis was used to identify genes, including arsenite oxidase encoding genes, involved in the response of H. arsenicoxydans to As(III). To get insight into the molecular mechanisms of this enzyme activity, a Tn5 transposon mutagenesis was performed. Transposon insertions resulting in a lack of arsenite oxidase activity disrupted aoxR and aoxS genes, showing that the aox operon transcription is regulated by the AoxRS two-component system. Remarkably, transposon insertions were also identified in rpoN coding for the alternative N sigma factor (σ(54)) of RNA polymerase and in dnaJ coding for the Hsp70 co-chaperone. Western blotting with anti-AoxB antibodies and quantitative RT-PCR experiments allowed us to demonstrate that the rpoN and dnaJ gene products are involved in the control of arsenite oxidase gene expression. Finally, the transcriptional start site of the aoxAB operon was determined using rapid amplification of cDNA ends (RACE) and a putative -12/-24 σ(54)-dependent promoter motif was identified upstream of aoxAB coding sequences. CONCLUSION: These results reveal the existence of novel molecular regulatory processes governing arsenite oxidase expression in H. arsenicoxydans. These data are summarized in a model that functionally integrates arsenite oxidation in the adaptive response to As(III) in this microorganism. BioMed Central 2010-02-18 /pmc/articles/PMC2848651/ /pubmed/20167112 http://dx.doi.org/10.1186/1471-2180-10-53 Text en Copyright ©2010 Koechler et al; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research article
Koechler, Sandrine
Cleiss-Arnold, Jessica
Proux, Caroline
Sismeiro, Odile
Dillies, Marie-Agnès
Goulhen-Chollet, Florence
Hommais, Florence
Lièvremont, Didier
Arsène-Ploetze, Florence
Coppée, Jean-Yves
Bertin, Philippe N
Multiple controls affect arsenite oxidase gene expression in Herminiimonas arsenicoxydans
title Multiple controls affect arsenite oxidase gene expression in Herminiimonas arsenicoxydans
title_full Multiple controls affect arsenite oxidase gene expression in Herminiimonas arsenicoxydans
title_fullStr Multiple controls affect arsenite oxidase gene expression in Herminiimonas arsenicoxydans
title_full_unstemmed Multiple controls affect arsenite oxidase gene expression in Herminiimonas arsenicoxydans
title_short Multiple controls affect arsenite oxidase gene expression in Herminiimonas arsenicoxydans
title_sort multiple controls affect arsenite oxidase gene expression in herminiimonas arsenicoxydans
topic Research article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2848651/
https://www.ncbi.nlm.nih.gov/pubmed/20167112
http://dx.doi.org/10.1186/1471-2180-10-53
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