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Genetic recombination in Bacillus subtilis: a division of labor between two single-strand DNA-binding proteins

We have investigated the structural, biochemical and cellular roles of the two single-stranded (ss) DNA-binding proteins from Bacillus subtilis, SsbA and SsbB. During transformation, SsbB localizes at the DNA entry pole where it binds and protects internalized ssDNA. The 2.8-Å resolution structure o...

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Autores principales: Yadav, Tribhuwan, Carrasco, Begoña, Myers, Angela R., George, Nicholas P., Keck, James L., Alonso, Juan C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3384303/
https://www.ncbi.nlm.nih.gov/pubmed/22373918
http://dx.doi.org/10.1093/nar/gks173
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author Yadav, Tribhuwan
Carrasco, Begoña
Myers, Angela R.
George, Nicholas P.
Keck, James L.
Alonso, Juan C.
author_facet Yadav, Tribhuwan
Carrasco, Begoña
Myers, Angela R.
George, Nicholas P.
Keck, James L.
Alonso, Juan C.
author_sort Yadav, Tribhuwan
collection PubMed
description We have investigated the structural, biochemical and cellular roles of the two single-stranded (ss) DNA-binding proteins from Bacillus subtilis, SsbA and SsbB. During transformation, SsbB localizes at the DNA entry pole where it binds and protects internalized ssDNA. The 2.8-Å resolution structure of SsbB bound to ssDNA reveals a similar overall protein architecture and ssDNA-binding surface to that of Escherichia coli SSB. SsbA, which binds ssDNA with higher affinity than SsbB, co-assembles onto SsbB-coated ssDNA and the two proteins inhibit ssDNA binding by the recombinase RecA. During chromosomal transformation, the RecA mediators RecO and DprA provide RecA access to ssDNA. Interestingly, RecO interaction with ssDNA-bound SsbA helps to dislodge both SsbA and SsbB from the DNA more efficiently than if the DNA is coated only with SsbA. Once RecA is nucleated onto the ssDNA, RecA filament elongation displaces SsbA and SsbB and enables RecA-mediated DNA strand exchange. During plasmid transformation, RecO localizes to the entry pole and catalyzes annealing of SsbA- or SsbA/SsbB-coated complementary ssDNAs to form duplex DNA with ssDNA tails. Our results provide a mechanistic framework for rationalizing the coordinated events modulated by SsbA, SsbB and RecO that are crucial for RecA-dependent chromosomal transformation and RecA-independent plasmid transformation.
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spelling pubmed-33843032012-06-28 Genetic recombination in Bacillus subtilis: a division of labor between two single-strand DNA-binding proteins Yadav, Tribhuwan Carrasco, Begoña Myers, Angela R. George, Nicholas P. Keck, James L. Alonso, Juan C. Nucleic Acids Res Molecular Biology We have investigated the structural, biochemical and cellular roles of the two single-stranded (ss) DNA-binding proteins from Bacillus subtilis, SsbA and SsbB. During transformation, SsbB localizes at the DNA entry pole where it binds and protects internalized ssDNA. The 2.8-Å resolution structure of SsbB bound to ssDNA reveals a similar overall protein architecture and ssDNA-binding surface to that of Escherichia coli SSB. SsbA, which binds ssDNA with higher affinity than SsbB, co-assembles onto SsbB-coated ssDNA and the two proteins inhibit ssDNA binding by the recombinase RecA. During chromosomal transformation, the RecA mediators RecO and DprA provide RecA access to ssDNA. Interestingly, RecO interaction with ssDNA-bound SsbA helps to dislodge both SsbA and SsbB from the DNA more efficiently than if the DNA is coated only with SsbA. Once RecA is nucleated onto the ssDNA, RecA filament elongation displaces SsbA and SsbB and enables RecA-mediated DNA strand exchange. During plasmid transformation, RecO localizes to the entry pole and catalyzes annealing of SsbA- or SsbA/SsbB-coated complementary ssDNAs to form duplex DNA with ssDNA tails. Our results provide a mechanistic framework for rationalizing the coordinated events modulated by SsbA, SsbB and RecO that are crucial for RecA-dependent chromosomal transformation and RecA-independent plasmid transformation. Oxford University Press 2012-07 2012-02-28 /pmc/articles/PMC3384303/ /pubmed/22373918 http://dx.doi.org/10.1093/nar/gks173 Text en © The Author(s) 2012. Published by Oxford University Press. http://creativecommons.org/licenses/by-nc/3.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0), which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Molecular Biology
Yadav, Tribhuwan
Carrasco, Begoña
Myers, Angela R.
George, Nicholas P.
Keck, James L.
Alonso, Juan C.
Genetic recombination in Bacillus subtilis: a division of labor between two single-strand DNA-binding proteins
title Genetic recombination in Bacillus subtilis: a division of labor between two single-strand DNA-binding proteins
title_full Genetic recombination in Bacillus subtilis: a division of labor between two single-strand DNA-binding proteins
title_fullStr Genetic recombination in Bacillus subtilis: a division of labor between two single-strand DNA-binding proteins
title_full_unstemmed Genetic recombination in Bacillus subtilis: a division of labor between two single-strand DNA-binding proteins
title_short Genetic recombination in Bacillus subtilis: a division of labor between two single-strand DNA-binding proteins
title_sort genetic recombination in bacillus subtilis: a division of labor between two single-strand dna-binding proteins
topic Molecular Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3384303/
https://www.ncbi.nlm.nih.gov/pubmed/22373918
http://dx.doi.org/10.1093/nar/gks173
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