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ssb Gene Duplication Restores the Viability of ΔholC and ΔholD Escherichia coli Mutants

The HolC-HolD (χψ) complex is part of the DNA polymerase III holoenzyme (Pol III HE) clamp-loader. Several lines of evidence indicate that both leading- and lagging-strand synthesis are affected in the absence of this complex. The Escherichia coli ΔholD mutant grows poorly and suppressor mutations t...

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Autores principales: Duigou, Stéphane, Silvain, Maud, Viguera, Enrique, Michel, Bénédicte
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4199511/
https://www.ncbi.nlm.nih.gov/pubmed/25329071
http://dx.doi.org/10.1371/journal.pgen.1004719
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author Duigou, Stéphane
Silvain, Maud
Viguera, Enrique
Michel, Bénédicte
author_facet Duigou, Stéphane
Silvain, Maud
Viguera, Enrique
Michel, Bénédicte
author_sort Duigou, Stéphane
collection PubMed
description The HolC-HolD (χψ) complex is part of the DNA polymerase III holoenzyme (Pol III HE) clamp-loader. Several lines of evidence indicate that both leading- and lagging-strand synthesis are affected in the absence of this complex. The Escherichia coli ΔholD mutant grows poorly and suppressor mutations that restore growth appear spontaneously. Here we show that duplication of the ssb gene, encoding the single-stranded DNA binding protein (SSB), restores ΔholD mutant growth at all temperatures on both minimal and rich medium. RecFOR-dependent SOS induction, previously shown to occur in the ΔholD mutant, is unaffected by ssb gene duplication, suggesting that lagging-strand synthesis remains perturbed. The C-terminal SSB disordered tail, which interacts with several E. coli repair, recombination and replication proteins, must be intact in both copies of the gene in order to restore normal growth. This suggests that SSB-mediated ΔholD suppression involves interaction with one or more partner proteins. ssb gene duplication also suppresses ΔholC single mutant and ΔholC ΔholD double mutant growth defects, indicating that it bypasses the need for the entire χψ complex. We propose that doubling the amount of SSB stabilizes HolCD-less Pol III HE DNA binding through interactions between SSB and a replisome component, possibly DnaE. Given that SSB binds DNA in vitro via different binding modes depending on experimental conditions, including SSB protein concentration and SSB interactions with partner proteins, our results support the idea that controlling the balance between SSB binding modes is critical for DNA Pol III HE stability in vivo, with important implications for DNA replication and genome stability.
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spelling pubmed-41995112014-10-21 ssb Gene Duplication Restores the Viability of ΔholC and ΔholD Escherichia coli Mutants Duigou, Stéphane Silvain, Maud Viguera, Enrique Michel, Bénédicte PLoS Genet Research Article The HolC-HolD (χψ) complex is part of the DNA polymerase III holoenzyme (Pol III HE) clamp-loader. Several lines of evidence indicate that both leading- and lagging-strand synthesis are affected in the absence of this complex. The Escherichia coli ΔholD mutant grows poorly and suppressor mutations that restore growth appear spontaneously. Here we show that duplication of the ssb gene, encoding the single-stranded DNA binding protein (SSB), restores ΔholD mutant growth at all temperatures on both minimal and rich medium. RecFOR-dependent SOS induction, previously shown to occur in the ΔholD mutant, is unaffected by ssb gene duplication, suggesting that lagging-strand synthesis remains perturbed. The C-terminal SSB disordered tail, which interacts with several E. coli repair, recombination and replication proteins, must be intact in both copies of the gene in order to restore normal growth. This suggests that SSB-mediated ΔholD suppression involves interaction with one or more partner proteins. ssb gene duplication also suppresses ΔholC single mutant and ΔholC ΔholD double mutant growth defects, indicating that it bypasses the need for the entire χψ complex. We propose that doubling the amount of SSB stabilizes HolCD-less Pol III HE DNA binding through interactions between SSB and a replisome component, possibly DnaE. Given that SSB binds DNA in vitro via different binding modes depending on experimental conditions, including SSB protein concentration and SSB interactions with partner proteins, our results support the idea that controlling the balance between SSB binding modes is critical for DNA Pol III HE stability in vivo, with important implications for DNA replication and genome stability. Public Library of Science 2014-10-16 /pmc/articles/PMC4199511/ /pubmed/25329071 http://dx.doi.org/10.1371/journal.pgen.1004719 Text en © 2014 Duigou 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
Duigou, Stéphane
Silvain, Maud
Viguera, Enrique
Michel, Bénédicte
ssb Gene Duplication Restores the Viability of ΔholC and ΔholD Escherichia coli Mutants
title ssb Gene Duplication Restores the Viability of ΔholC and ΔholD Escherichia coli Mutants
title_full ssb Gene Duplication Restores the Viability of ΔholC and ΔholD Escherichia coli Mutants
title_fullStr ssb Gene Duplication Restores the Viability of ΔholC and ΔholD Escherichia coli Mutants
title_full_unstemmed ssb Gene Duplication Restores the Viability of ΔholC and ΔholD Escherichia coli Mutants
title_short ssb Gene Duplication Restores the Viability of ΔholC and ΔholD Escherichia coli Mutants
title_sort ssb gene duplication restores the viability of δholc and δhold escherichia coli mutants
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4199511/
https://www.ncbi.nlm.nih.gov/pubmed/25329071
http://dx.doi.org/10.1371/journal.pgen.1004719
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