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单分子研究对比了有序的 DNA 复制和随机的跨损伤合成。

Single-molecule studies contrast ordered DNA replication with stochastic translesion synthesis.

机构信息

MRC laboratory of Molecular Biology, Cambridge, United Kingdom.

出版信息

Elife. 2017 Dec 6;6:e32177. doi: 10.7554/eLife.32177.

Abstract

High fidelity replicative DNA polymerases are unable to synthesize past DNA adducts that result from diverse chemicals, reactive oxygen species or UV light. To bypass these replication blocks, cells utilize specialized translesion DNA polymerases that are intrinsically error prone and associated with mutagenesis, drug resistance, and cancer. How untimely access of translesion polymerases to DNA is prevented is poorly understood. Here we use co-localization single-molecule spectroscopy (CoSMoS) to follow the exchange of the replicative DNA polymerase Pol IIIcore with the translesion polymerases Pol II and Pol IV. We find that in contrast to the toolbelt model, the replicative and translesion polymerases do not form a stable complex on one clamp but alternate their binding. Furthermore, while the loading of clamp and Pol IIIcore is highly organized, the exchange with the translesion polymerases is stochastic and is not determined by lesion-recognition but instead a concentration-dependent competition between the polymerases.

摘要

高保真复制 DNA 聚合酶无法合成由各种化学物质、活性氧物种或紫外线引起的 DNA 加合物。为了绕过这些复制障碍,细胞利用专门的跨损伤 DNA 聚合酶,这些聚合酶本质上容易出错,并与突变、耐药性和癌症有关。细胞如何防止跨损伤聚合酶不合时宜地进入 DNA 仍然知之甚少。在这里,我们使用共定位单分子光谱(CoSMoS)来跟踪复制 DNA 聚合酶 Pol IIIcore 与跨损伤聚合酶 Pol II 和 Pol IV 的交换。我们发现,与工具带模型相反,复制和跨损伤聚合酶不会在一个夹子上形成稳定的复合物,而是交替结合。此外,虽然夹子和 Pol IIIcore 的加载高度组织化,但与跨损伤聚合酶的交换是随机的,不是由损伤识别决定,而是聚合酶之间浓度依赖性竞争的结果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/41b2/5731819/faed446c1386/elife-32177-fig1.jpg

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