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首页> 外文期刊>Nucleic acids research >Roles of DNA polymerase I in leading and lagging-strand replication defined by a high-resolution mutation footprint of ColE1 plasmid replication
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Roles of DNA polymerase I in leading and lagging-strand replication defined by a high-resolution mutation footprint of ColE1 plasmid replication

机译:DNA聚合酶I在领先和滞后链复制中的作用,该复制由ColE1质粒复制的高分辨率突变足迹确定

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DNA polymerase I (pol I) processes RNA primers during lagging-strand synthesis and fills small gaps during DNA repair reactions. However, it is unclear how pol I and pol III work together during replication and repair or how extensive pol I processing of Okazaki fragments is in vivo. Here, we address these questions by analyzing pol I mutations generated through error-prone replication of ColE1 plasmids. The data were obtained by direct sequencing, allowing an accurate determination of the mutation spectrum and distribution. Pol I's mutational footprint suggests: (i) during leading-strand replication pol I is gradually replaced by pol III over at least 1.3?kb; (ii) pol I processing of Okazaki fragments is limited to ~20?nt and (iii) the size of Okazaki fragments is short (~250?nt). While based on ColE1 plasmid replication, our findings are likely relevant to other pol I replicative processes such as chromosomal replication and DNA repair, which differ from ColE1 replication mostly at the recruitment steps. This mutation footprinting approach should help establish the role of other prokaryotic or eukaryotic polymerases in vivo, and provides a tool to investigate how sequence topology, DNA damage, or interactions with protein partners may affect the function of individual DNA polymerases.
机译:DNA聚合酶I(pol I)在落后链合成过程中处理RNA引物,并在DNA修复反应过程中填补小缺口。但是,目前尚不清楚pol I和pol III在复制和修复过程中如何协同工作,或者在体内冈崎片段的pol I处理过程如何广泛。在这里,我们通过分析由ColE1质粒易错复制产生的pol I突变来解决这些问题。通过直接测序获得数据,从而可以准确确定突变谱和分布。 Pol I的突变足迹表明:(i)在前导链复制过程中,pol I至少在1.3?kb上逐渐被pol III取代; (ii)冈崎碎片的pol I处理仅限于〜20?nt,并且(iii)冈崎碎片的尺寸很短(〜250?nt)。虽然基于ColE1质粒复制,但我们的发现可能与其他pol I复制过程有关,例如染色体复制和DNA修复,这些过程主要在募集步骤上不同于ColE1复制。这种突变足迹方法应有助于确立其他原核或真核聚合酶在体内的作用,并提供一种工具来研究序列拓扑,DNA损伤或与蛋白质伴侣的相互作用如何影响单个DNA聚合酶的功能。

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