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Periplasmic oxidized-protein repair during copper stress in E. coli: A focus on the metallochaperone CusF

Methionine residues are particularly sensitive to oxidation by reactive oxygen or chlorine species (ROS/RCS), leading to the appearance of methionine sulfoxide in proteins. This post-translational oxidation can be reversed by omnipresent protein repair pathways involving methionine sulfoxide reducta...

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Autores principales: Vergnes, Alexandra, Henry, Camille, Grassini, Gaia, Loiseau, Laurent, El Hajj, Sara, Denis, Yann, Galinier, Anne, Vertommen, Didier, Aussel, Laurent, Ezraty, Benjamin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9302797/
https://www.ncbi.nlm.nih.gov/pubmed/35816552
http://dx.doi.org/10.1371/journal.pgen.1010180
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author Vergnes, Alexandra
Henry, Camille
Grassini, Gaia
Loiseau, Laurent
El Hajj, Sara
Denis, Yann
Galinier, Anne
Vertommen, Didier
Aussel, Laurent
Ezraty, Benjamin
author_facet Vergnes, Alexandra
Henry, Camille
Grassini, Gaia
Loiseau, Laurent
El Hajj, Sara
Denis, Yann
Galinier, Anne
Vertommen, Didier
Aussel, Laurent
Ezraty, Benjamin
author_sort Vergnes, Alexandra
collection PubMed
description Methionine residues are particularly sensitive to oxidation by reactive oxygen or chlorine species (ROS/RCS), leading to the appearance of methionine sulfoxide in proteins. This post-translational oxidation can be reversed by omnipresent protein repair pathways involving methionine sulfoxide reductases (Msr). In the periplasm of Escherichia coli, the enzymatic system MsrPQ, whose expression is triggered by the RCS, controls the redox status of methionine residues. Here we report that MsrPQ synthesis is also induced by copper stress via the CusSR two-component system, and that MsrPQ plays a role in copper homeostasis by maintaining the activity of the copper efflux pump, CusCFBA. Genetic and biochemical evidence suggest the metallochaperone CusF is the substrate of MsrPQ and our study reveals that CusF methionines are redox sensitive and can be restored by MsrPQ. Thus, the evolution of a CusSR-dependent synthesis of MsrPQ allows conservation of copper homeostasis under aerobic conditions by maintenance of the reduced state of Met residues in copper-trafficking proteins.
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spelling pubmed-93027972022-07-22 Periplasmic oxidized-protein repair during copper stress in E. coli: A focus on the metallochaperone CusF Vergnes, Alexandra Henry, Camille Grassini, Gaia Loiseau, Laurent El Hajj, Sara Denis, Yann Galinier, Anne Vertommen, Didier Aussel, Laurent Ezraty, Benjamin PLoS Genet Research Article Methionine residues are particularly sensitive to oxidation by reactive oxygen or chlorine species (ROS/RCS), leading to the appearance of methionine sulfoxide in proteins. This post-translational oxidation can be reversed by omnipresent protein repair pathways involving methionine sulfoxide reductases (Msr). In the periplasm of Escherichia coli, the enzymatic system MsrPQ, whose expression is triggered by the RCS, controls the redox status of methionine residues. Here we report that MsrPQ synthesis is also induced by copper stress via the CusSR two-component system, and that MsrPQ plays a role in copper homeostasis by maintaining the activity of the copper efflux pump, CusCFBA. Genetic and biochemical evidence suggest the metallochaperone CusF is the substrate of MsrPQ and our study reveals that CusF methionines are redox sensitive and can be restored by MsrPQ. Thus, the evolution of a CusSR-dependent synthesis of MsrPQ allows conservation of copper homeostasis under aerobic conditions by maintenance of the reduced state of Met residues in copper-trafficking proteins. Public Library of Science 2022-07-11 /pmc/articles/PMC9302797/ /pubmed/35816552 http://dx.doi.org/10.1371/journal.pgen.1010180 Text en © 2022 Vergnes et al https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Vergnes, Alexandra
Henry, Camille
Grassini, Gaia
Loiseau, Laurent
El Hajj, Sara
Denis, Yann
Galinier, Anne
Vertommen, Didier
Aussel, Laurent
Ezraty, Benjamin
Periplasmic oxidized-protein repair during copper stress in E. coli: A focus on the metallochaperone CusF
title Periplasmic oxidized-protein repair during copper stress in E. coli: A focus on the metallochaperone CusF
title_full Periplasmic oxidized-protein repair during copper stress in E. coli: A focus on the metallochaperone CusF
title_fullStr Periplasmic oxidized-protein repair during copper stress in E. coli: A focus on the metallochaperone CusF
title_full_unstemmed Periplasmic oxidized-protein repair during copper stress in E. coli: A focus on the metallochaperone CusF
title_short Periplasmic oxidized-protein repair during copper stress in E. coli: A focus on the metallochaperone CusF
title_sort periplasmic oxidized-protein repair during copper stress in e. coli: a focus on the metallochaperone cusf
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9302797/
https://www.ncbi.nlm.nih.gov/pubmed/35816552
http://dx.doi.org/10.1371/journal.pgen.1010180
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