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Differential Interaction Kinetics of a Bipolar Structure-Specific Endonuclease with DNA Flaps Revealed by Single-Molecule Imaging

As DNA repair enzymes are essential for preserving genome integrity, understanding their substrate interaction dynamics and the regulation of their catalytic mechanisms is crucial. Using single-molecule imaging, we investigated the association and dissociation kinetics of the bipolar endonuclease Nu...

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Autores principales: Rezgui, Rachid, Lestini, Roxane, Kühn, Joëlle, Fave, Xenia, McLeod, Lauren, Myllykallio, Hannu, Alexandrou, Antigoni, Bouzigues, Cedric
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4239081/
https://www.ncbi.nlm.nih.gov/pubmed/25412080
http://dx.doi.org/10.1371/journal.pone.0113493
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author Rezgui, Rachid
Lestini, Roxane
Kühn, Joëlle
Fave, Xenia
McLeod, Lauren
Myllykallio, Hannu
Alexandrou, Antigoni
Bouzigues, Cedric
author_facet Rezgui, Rachid
Lestini, Roxane
Kühn, Joëlle
Fave, Xenia
McLeod, Lauren
Myllykallio, Hannu
Alexandrou, Antigoni
Bouzigues, Cedric
author_sort Rezgui, Rachid
collection PubMed
description As DNA repair enzymes are essential for preserving genome integrity, understanding their substrate interaction dynamics and the regulation of their catalytic mechanisms is crucial. Using single-molecule imaging, we investigated the association and dissociation kinetics of the bipolar endonuclease NucS from Pyrococcus abyssi (Pab) on 5′ and 3′-flap structures under various experimental conditions. We show that association of the PabNucS with ssDNA flaps is largely controlled by diffusion in the NucS-DNA energy landscape and does not require a free 5′ or 3′ extremity. On the other hand, NucS dissociation is independent of the flap length and thus independent of sliding on the single-stranded portion of the flapped DNA substrates. Our kinetic measurements have revealed previously unnoticed asymmetry in dissociation kinetics from these substrates that is markedly modulated by the replication clamp PCNA. We propose that the replication clamp PCNA enhances the cleavage specificity of NucS proteins by accelerating NucS loading at the ssDNA/dsDNA junctions and by minimizing the nuclease interaction time with its DNA substrate. Our data are also consistent with marked reorganization of ssDNA and nuclease domains occurring during NucS catalysis, and indicate that NucS binds its substrate directly at the ssDNA-dsDNA junction and then threads the ssDNA extremity into the catalytic site. The powerful techniques used here for probing the dynamics of DNA-enzyme binding at the single-molecule have provided new insight regarding substrate specificity of NucS nucleases.
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spelling pubmed-42390812014-11-26 Differential Interaction Kinetics of a Bipolar Structure-Specific Endonuclease with DNA Flaps Revealed by Single-Molecule Imaging Rezgui, Rachid Lestini, Roxane Kühn, Joëlle Fave, Xenia McLeod, Lauren Myllykallio, Hannu Alexandrou, Antigoni Bouzigues, Cedric PLoS One Research Article As DNA repair enzymes are essential for preserving genome integrity, understanding their substrate interaction dynamics and the regulation of their catalytic mechanisms is crucial. Using single-molecule imaging, we investigated the association and dissociation kinetics of the bipolar endonuclease NucS from Pyrococcus abyssi (Pab) on 5′ and 3′-flap structures under various experimental conditions. We show that association of the PabNucS with ssDNA flaps is largely controlled by diffusion in the NucS-DNA energy landscape and does not require a free 5′ or 3′ extremity. On the other hand, NucS dissociation is independent of the flap length and thus independent of sliding on the single-stranded portion of the flapped DNA substrates. Our kinetic measurements have revealed previously unnoticed asymmetry in dissociation kinetics from these substrates that is markedly modulated by the replication clamp PCNA. We propose that the replication clamp PCNA enhances the cleavage specificity of NucS proteins by accelerating NucS loading at the ssDNA/dsDNA junctions and by minimizing the nuclease interaction time with its DNA substrate. Our data are also consistent with marked reorganization of ssDNA and nuclease domains occurring during NucS catalysis, and indicate that NucS binds its substrate directly at the ssDNA-dsDNA junction and then threads the ssDNA extremity into the catalytic site. The powerful techniques used here for probing the dynamics of DNA-enzyme binding at the single-molecule have provided new insight regarding substrate specificity of NucS nucleases. Public Library of Science 2014-11-20 /pmc/articles/PMC4239081/ /pubmed/25412080 http://dx.doi.org/10.1371/journal.pone.0113493 Text en © 2014 Rezgui 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
Rezgui, Rachid
Lestini, Roxane
Kühn, Joëlle
Fave, Xenia
McLeod, Lauren
Myllykallio, Hannu
Alexandrou, Antigoni
Bouzigues, Cedric
Differential Interaction Kinetics of a Bipolar Structure-Specific Endonuclease with DNA Flaps Revealed by Single-Molecule Imaging
title Differential Interaction Kinetics of a Bipolar Structure-Specific Endonuclease with DNA Flaps Revealed by Single-Molecule Imaging
title_full Differential Interaction Kinetics of a Bipolar Structure-Specific Endonuclease with DNA Flaps Revealed by Single-Molecule Imaging
title_fullStr Differential Interaction Kinetics of a Bipolar Structure-Specific Endonuclease with DNA Flaps Revealed by Single-Molecule Imaging
title_full_unstemmed Differential Interaction Kinetics of a Bipolar Structure-Specific Endonuclease with DNA Flaps Revealed by Single-Molecule Imaging
title_short Differential Interaction Kinetics of a Bipolar Structure-Specific Endonuclease with DNA Flaps Revealed by Single-Molecule Imaging
title_sort differential interaction kinetics of a bipolar structure-specific endonuclease with dna flaps revealed by single-molecule imaging
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4239081/
https://www.ncbi.nlm.nih.gov/pubmed/25412080
http://dx.doi.org/10.1371/journal.pone.0113493
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