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A binding free energy decomposition approach for accurate calculations of the fidelity of DNA polymerases.

机译:一种结合自由能分解方法,可精确计算DNA聚合酶的保真度。

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摘要

DNA polymerase beta (pol beta) is a small eukaryotic enzyme with the ability to repair short single-stranded DNA gaps that has found use as a model system for larger replicative DNA polymerases. For all DNA polymerases, the factors determining their catalytic power and fidelity are the interactions between the bases of the base pair, amino acids near the active site, and the two magnesium ions. In this report, we study effects of all three aspects on human pol beta transition state (TS) binding free energies by reproducing a consistent set of experimentally determined data for different structures. Our calculations comprise the combination of four different base pairs (incoming pyrimidine nucleotides incorporated opposite both matched and mismatched purines) with four different pol beta structures (wild type and three mutants). We generate three fragments of the incoming deoxynucleoside 5'-triphosphate-TS and run separate calculations for the neutral base part and the highly charged triphosphate part, using different dielectric constants in order to account for the specific dielectric response. This new approach improves our ability to predict the effect of matched and mismatched base pairing and of mutations in DNA polymerases on fidelity and may be a useful tool in studying the potential of DNA polymerase mutations in the development of cancer. It also supports our point of view with regards to the origin of the structural control of fidelity, allowing for a quantified description of the fidelity of DNA polymerases.
机译:DNA聚合酶beta(pol beta)是一种小型的真核酶,具有修复短单链DNA缺口的能力,已被发现可用于大型复制DNA聚合酶的模型系统。对于所有DNA聚合酶,决定其催化能力和保真度的因素是碱基对的碱基,活性位点附近的氨基酸和两个镁离子之间的相互作用。在本报告中,我们通过针对不同结构再现一组一致的实验确定数据,研究了这三个方面对人polβ过渡态(TS)结合自由能的影响。我们的计算包括四个不同的碱基对(与匹配的和错配的嘌呤相反掺入的嘧啶核苷酸)和四个不同的pol beta结构(野生型和三个突变体)的组合。我们生成传入的脱氧核苷5'-三磷酸-TS的三个片段,并使用不同的介电常数对中性碱部分和高度带电荷的三磷酸部分进行单独的计算,以考虑特定的介电响应。这种新方法提高了我们预测匹配和错配的碱基配对以及DNA聚合酶突变对保真度的影响的能力,并且可能是研究DNA聚合酶突变在癌症发展中的潜力的有用工具。它也支持我们关于保真度结构控制的起源的观点,从而可以定量描述DNA聚合酶的保真度。

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