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Bacillus subtilis RecN binds and protects 3′-single-stranded DNA extensions in the presence of ATP

Bacillus subtilis RecN appears to be an early detector of breaks in double-stranded DNA. In vivo, RecN forms discrete nucleoid-associated structures and in vitro exhibits Mg(2+)-dependent single-stranded (ss) DNA binding and ssDNA-dependent ATPase activities. In the presence of ATP or ADP, RecN asse...

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Detalles Bibliográficos
Autores principales: Sanchez, Humberto, Alonso, Juan C.
Formato: Texto
Lenguaje:English
Publicado: Oxford University Press 2005
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1084328/
https://www.ncbi.nlm.nih.gov/pubmed/15849320
http://dx.doi.org/10.1093/nar/gki533
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author Sanchez, Humberto
Alonso, Juan C.
author_facet Sanchez, Humberto
Alonso, Juan C.
author_sort Sanchez, Humberto
collection PubMed
description Bacillus subtilis RecN appears to be an early detector of breaks in double-stranded DNA. In vivo, RecN forms discrete nucleoid-associated structures and in vitro exhibits Mg(2+)-dependent single-stranded (ss) DNA binding and ssDNA-dependent ATPase activities. In the presence of ATP or ADP, RecN assembles to form large networks with ssDNA molecules (designated complexes CII and CIII) that involve ATP binding and requires a 3′-OH at the end of ssDNA molecule. Addition of dATP–RecA complexes dissociates RecN from these networks, but this is not observed following addition of an ssDNA binding protein. Apparently, ATP modulates the RecN–ssDNA complex for binding to ssDNA extensions and, in vivo, RecN–ATP bound to 3′-ssDNA might sequester ssDNA ends within complexes that protect the ssDNA while the RecA accessory proteins recruit RecA. With the association of RecA to ssDNA, RecN would dissociate from the DNA end facilitating the subsequent steps in DNA repair.
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spelling pubmed-10843282005-04-22 Bacillus subtilis RecN binds and protects 3′-single-stranded DNA extensions in the presence of ATP Sanchez, Humberto Alonso, Juan C. Nucleic Acids Res Article Bacillus subtilis RecN appears to be an early detector of breaks in double-stranded DNA. In vivo, RecN forms discrete nucleoid-associated structures and in vitro exhibits Mg(2+)-dependent single-stranded (ss) DNA binding and ssDNA-dependent ATPase activities. In the presence of ATP or ADP, RecN assembles to form large networks with ssDNA molecules (designated complexes CII and CIII) that involve ATP binding and requires a 3′-OH at the end of ssDNA molecule. Addition of dATP–RecA complexes dissociates RecN from these networks, but this is not observed following addition of an ssDNA binding protein. Apparently, ATP modulates the RecN–ssDNA complex for binding to ssDNA extensions and, in vivo, RecN–ATP bound to 3′-ssDNA might sequester ssDNA ends within complexes that protect the ssDNA while the RecA accessory proteins recruit RecA. With the association of RecA to ssDNA, RecN would dissociate from the DNA end facilitating the subsequent steps in DNA repair. Oxford University Press 2005 2005-04-22 /pmc/articles/PMC1084328/ /pubmed/15849320 http://dx.doi.org/10.1093/nar/gki533 Text en © The Author 2005. Published by Oxford University Press. All rights reserved
spellingShingle Article
Sanchez, Humberto
Alonso, Juan C.
Bacillus subtilis RecN binds and protects 3′-single-stranded DNA extensions in the presence of ATP
title Bacillus subtilis RecN binds and protects 3′-single-stranded DNA extensions in the presence of ATP
title_full Bacillus subtilis RecN binds and protects 3′-single-stranded DNA extensions in the presence of ATP
title_fullStr Bacillus subtilis RecN binds and protects 3′-single-stranded DNA extensions in the presence of ATP
title_full_unstemmed Bacillus subtilis RecN binds and protects 3′-single-stranded DNA extensions in the presence of ATP
title_short Bacillus subtilis RecN binds and protects 3′-single-stranded DNA extensions in the presence of ATP
title_sort bacillus subtilis recn binds and protects 3′-single-stranded dna extensions in the presence of atp
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1084328/
https://www.ncbi.nlm.nih.gov/pubmed/15849320
http://dx.doi.org/10.1093/nar/gki533
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