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DNA Polymerase Conformational Dynamics and the Role of Fidelity-Conferring Residues: Insights from Computational Simulations.

Academic Article
Publication Date:
2016
abstract:
Herein we investigate the molecular bases of DNA polymerase I conformational dynamics that underlie the replication fidelity of the enzyme. Such fidelity is determined by conformational changes that promote the rejection of incorrect nucleotides before the chemical ligation step. We report a comprehensive atomic resolution study of wild type and mutant enzymes in different bound states and starting from different crystal structures, using extensive molecular dynamics (MD) simulations that cover a total timespan of ~5 ms. The resulting trajectories are examined via a combination of novel methods of internal dynamics and energetics analysis, aimed to reveal the principal molecular determinants for the (de)stabilization of a certain conformational state. Our results show that the presence of fidelity-decreasing mutations or the binding of incorrect nucleotides in ternary complexes tend to favor transitions from closed toward open structures, passing through an ensemble of semi-closed intermediates. The latter ensemble includes the experimentally observed ajar conformation which, consistent with previous experimental observations, emerges as a molecular checkpoint for the selection of the correct nucleotide to incorporate. We discuss the implications of our results for the understanding of the relationships between the structure, dynamics, and function of DNA polymerase I at the atomistic level.
Iris type:
01.01 Articolo in rivista
Keywords:
DNA polymerase I; allostery; molecular dynamics simulations; molecular recognition; replication fidelity
List of contributors:
Colombo, Giorgio; Meli, Massimiliano
Authors of the University:
MELI MASSIMILIANO VITO ALESSANDRO
Handle:
https://iris.cnr.it/handle/20.500.14243/317142
Published in:
FRONTIERS IN MOLECULAR BIOSCIENCES
Journal
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URL

https://www.ncbi.nlm.nih.gov/pubmed/27303671
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