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Single‐molecule mechanochemical characterization of E. coli pol III core catalytic activity

Pol III core is the three‐subunit subassembly of the E. coli replicative DNA polymerase III holoenzyme. It contains the catalytic polymerase subunit α, the 3′ → 5′ proofreading exonuclease ε, and a subunit of unknown function, θ. We employ optical tweezers to characterize pol III core activity on a...

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Autores principales: Naufer, M. Nabuan, Murison, David A., Rouzina, Ioulia, Beuning, Penny J., Williams, Mark C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5477539/
https://www.ncbi.nlm.nih.gov/pubmed/28263430
http://dx.doi.org/10.1002/pro.3152
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author Naufer, M. Nabuan
Murison, David A.
Rouzina, Ioulia
Beuning, Penny J.
Williams, Mark C.
author_facet Naufer, M. Nabuan
Murison, David A.
Rouzina, Ioulia
Beuning, Penny J.
Williams, Mark C.
author_sort Naufer, M. Nabuan
collection PubMed
description Pol III core is the three‐subunit subassembly of the E. coli replicative DNA polymerase III holoenzyme. It contains the catalytic polymerase subunit α, the 3′ → 5′ proofreading exonuclease ε, and a subunit of unknown function, θ. We employ optical tweezers to characterize pol III core activity on a single DNA substrate. We observe polymerization at applied template forces F < 25 pN and exonucleolysis at F > 30 pN. Both polymerization and exonucleolysis occur as a series of short bursts separated by pauses. For polymerization, the initiation rate after pausing is independent of force. In contrast, the exonucleolysis initiation rate depends strongly on force. The measured force and concentration dependence of exonucleolysis initiation fits well to a two‐step reaction scheme in which pol III core binds bimolecularly to the primer‐template junction, then converts at rate k (2) into an exo‐competent conformation. Fits to the force dependence of k (init) show that exo initiation requires fluctuational opening of two base pairs, in agreement with temperature‐ and mismatch‐dependent bulk biochemical assays. Taken together, our results support a model in which the pol and exo activities of pol III core are effectively independent, and in which recognition of the 3′ end of the primer by either α or ε is governed by the primer stability. Thus, binding to an unstable primer is the primary mechanism for mismatch recognition during proofreading, rather than an alternative model of duplex defect recognition.
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spelling pubmed-54775392017-06-23 Single‐molecule mechanochemical characterization of E. coli pol III core catalytic activity Naufer, M. Nabuan Murison, David A. Rouzina, Ioulia Beuning, Penny J. Williams, Mark C. Protein Sci Articles Pol III core is the three‐subunit subassembly of the E. coli replicative DNA polymerase III holoenzyme. It contains the catalytic polymerase subunit α, the 3′ → 5′ proofreading exonuclease ε, and a subunit of unknown function, θ. We employ optical tweezers to characterize pol III core activity on a single DNA substrate. We observe polymerization at applied template forces F < 25 pN and exonucleolysis at F > 30 pN. Both polymerization and exonucleolysis occur as a series of short bursts separated by pauses. For polymerization, the initiation rate after pausing is independent of force. In contrast, the exonucleolysis initiation rate depends strongly on force. The measured force and concentration dependence of exonucleolysis initiation fits well to a two‐step reaction scheme in which pol III core binds bimolecularly to the primer‐template junction, then converts at rate k (2) into an exo‐competent conformation. Fits to the force dependence of k (init) show that exo initiation requires fluctuational opening of two base pairs, in agreement with temperature‐ and mismatch‐dependent bulk biochemical assays. Taken together, our results support a model in which the pol and exo activities of pol III core are effectively independent, and in which recognition of the 3′ end of the primer by either α or ε is governed by the primer stability. Thus, binding to an unstable primer is the primary mechanism for mismatch recognition during proofreading, rather than an alternative model of duplex defect recognition. John Wiley and Sons Inc. 2017-03-16 2017-07 /pmc/articles/PMC5477539/ /pubmed/28263430 http://dx.doi.org/10.1002/pro.3152 Text en © 2017 The Authors Protein Science published by Wiley Periodicals, Inc. on behalf of The Protein Society This is an open access article under the terms of the Creative Commons Attribution (http://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Articles
Naufer, M. Nabuan
Murison, David A.
Rouzina, Ioulia
Beuning, Penny J.
Williams, Mark C.
Single‐molecule mechanochemical characterization of E. coli pol III core catalytic activity
title Single‐molecule mechanochemical characterization of E. coli pol III core catalytic activity
title_full Single‐molecule mechanochemical characterization of E. coli pol III core catalytic activity
title_fullStr Single‐molecule mechanochemical characterization of E. coli pol III core catalytic activity
title_full_unstemmed Single‐molecule mechanochemical characterization of E. coli pol III core catalytic activity
title_short Single‐molecule mechanochemical characterization of E. coli pol III core catalytic activity
title_sort single‐molecule mechanochemical characterization of e. coli pol iii core catalytic activity
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5477539/
https://www.ncbi.nlm.nih.gov/pubmed/28263430
http://dx.doi.org/10.1002/pro.3152
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