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

机译:DNA聚合酶构象动力学和保真残基的作用:来自计算模拟的见解。

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摘要

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.
机译:本文中,我们研究了DNA聚合酶I构象动力学的分子基础,该分子是酶复制保真度的基础。这种保真度是由构象变化决定的,该构象变化在化学连接步骤之前促进了不正确核苷酸的排斥。我们报告了广泛的分子动力学(MD)模拟,涵盖了〜5 ms的总时间跨度,对野生型和突变酶在不同的结合状态和不同的晶体结构开始进行了全面的原子分辨率研究。通过结合内部动力学和能量学分析的新颖方法,对所产生的轨迹进行了研究,目的是揭示特定构象态(去稳定)的主要分子决定因素。我们的结果表明,降低保真度的突变或三元复合物中不正确核苷酸的结合倾向于通过半封闭中间体的结合从封闭结构向开放结构过渡。后一集合包括实验观察到的半开构象,其与先前的实验观察一致,作为选择结合的正确核苷酸的分子检查点出现。我们讨论了我们的结果对于理解原子级DNA聚合酶I的结构,动力学和功能之间的关系的意义。

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