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遗传证据表明,dNTP 稳定机制和链滑动机制都可能决定单核苷酸微卫星内的 DNA 聚合酶错误。

Genetic evidence that both dNTP-stabilized and strand slippage mechanisms may dictate DNA polymerase errors within mononucleotide microsatellites.

作者信息

Baptiste Beverly A, Jacob Kimberly D, Eckert Kristin A

机构信息

The Jake Gittlen Laboratories for Cancer Research and the Department of Pathology, Pennsylvania State University College of Medicine, 500 University Drive, Hershey, PA 17033, USA.

The Jake Gittlen Laboratories for Cancer Research and the Department of Pathology, Pennsylvania State University College of Medicine, 500 University Drive, Hershey, PA 17033, USA.

出版信息

DNA Repair (Amst). 2015 May;29:91-100. doi: 10.1016/j.dnarep.2015.02.016. Epub 2015 Feb 27.

Abstract

Mononucleotide microsatellites are tandem repeats of a single base pair, abundant within coding exons and frequent sites of mutation in the human genome. Because the repeated unit is one base pair, multiple mechanisms of insertion/deletion (indel) mutagenesis are possible, including strand-slippage, dNTP-stabilized, and misincorportion-misalignment. Here, we examine the effects of polymerase identity (mammalian Pols α, β, κ, and η), template sequence, dNTP pool size, and reaction temperature on indel errors during in vitro synthesis of mononucleotide microsatellites. We utilized the ratio of insertion to deletion errors as a genetic indicator of mechanism. Strikingly, we observed a statistically significant bias toward deletion errors within mononucleotide repeats for the majority of the 28 DNA template and polymerase combinations examined, with notable exceptions based on sequence and polymerase identity. Using mutator forms of Pol β did not substantially alter the error specificity, suggesting that mispairing-misalignment mechanism is not a primary mechanism. Based on our results for mammalian DNA polymerases representing three structurally distinct families, we suggest that dNTP-stabilized mutagenesis may be an alternative mechanism for mononucleotide microsatellite indel mutation. The change from a predominantly dNTP-stabilized mechanism to a strand-slippage mechanism with increasing microsatellite length may account for the differential rates of tandem repeat mutation that are observed genome-wide.

摘要

单核苷酸微卫星是单个碱基对的串联重复序列,在编码外显子中大量存在,是人类基因组中常见的突变位点。由于重复单元是一个碱基对,因此存在多种插入/缺失(indel)诱变机制,包括链滑动、dNTP稳定化和错配-错排。在这里,我们研究了聚合酶种类(哺乳动物的Pol α、β、κ和η)、模板序列、dNTP库大小和反应温度对单核苷酸微卫星体外合成过程中indel错误的影响。我们将插入错误与缺失错误的比率用作机制的遗传指标。令人惊讶的是,在所检测的28种DNA模板和聚合酶组合中的大多数情况下,我们观察到单核苷酸重复序列中存在统计学上显著的缺失错误偏向,基于序列和聚合酶种类存在明显例外。使用Pol β的突变形式并没有实质性改变错误特异性,这表明错配-错排机制不是主要机制。基于我们对代表三个结构不同家族的哺乳动物DNA聚合酶的研究结果,我们认为dNTP稳定化诱变可能是单核苷酸微卫星indel突变的另一种机制。随着微卫星长度增加,从主要的dNTP稳定化机制转变为链滑动机制,这可能解释了在全基因组范围内观察到的串联重复突变的差异速率。

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