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利用错配修复蛋白在快速增殖的大肠杆菌中对自发DNA复制错误热点进行全基因组定位。

Genome-wide mapping of spontaneous DNA replication error-hotspots using mismatch repair proteins in rapidly proliferating Escherichia coli.

作者信息

Hasenauer Flavia C, Barreto Hugo C, Lotton Chantal, Matic Ivan

机构信息

Université Paris Cité, CNRS, Inserm, Institut Cochin, F-75014 Paris, France.

出版信息

Nucleic Acids Res. 2025 Jan 11;53(2). doi: 10.1093/nar/gkae1196.

Abstract

Fidelity of DNA replication is crucial for the accurate transmission of genetic information across generations, yet errors still occur despite multiple control mechanisms. This study investigated the factors influencing spontaneous replication errors across the Escherichia coli genome. We detected errors using the MutS and MutL mismatch repair proteins in rapidly proliferating mutH-deficient cells, where errors can be detected but not corrected. Our findings reveal that replication error hotspots are non-randomly distributed along the chromosome and are enriched in sequences with distinct features: lower thermal stability facilitating DNA strand separation, mononucleotide repeats prone to DNA polymerase slippage and sequences prone to forming secondary structures like cruciforms and G4 structures, which increase likelihood of DNA polymerase stalling. These hotspots showed enrichment for binding sites of nucleoid-associated proteins, RpoB and GyrA, as well as highly expressed genes, and depletion of GATC sequence. Finally, the enrichment of single-stranded DNA stretches in the hotspot regions establishes a nexus between the formation of secondary structures, transcriptional activity and replication stress. In conclusion, this study provides a comprehensive genome-wide map of replication error hotspots, offering a holistic perspective on the intricate interplay between various mechanisms that can compromise the faithful transmission of genetic information.

摘要

DNA复制的保真度对于遗传信息在世代间的准确传递至关重要,然而尽管存在多种控制机制,错误仍会发生。本研究调查了影响大肠杆菌全基因组自发复制错误的因素。我们在快速增殖的mutH缺陷型细胞中使用MutS和MutL错配修复蛋白检测错误,在这些细胞中错误可以被检测到但无法被纠正。我们的研究结果表明,复制错误热点在染色体上非随机分布,并且在具有不同特征的序列中富集:较低的热稳定性有利于DNA链分离、易发生DNA聚合酶滑动的单核苷酸重复序列以及易形成十字形和G4结构等二级结构的序列,这些二级结构会增加DNA聚合酶停滞的可能性。这些热点显示出核仁相关蛋白、RpoB和GyrA的结合位点以及高表达基因的富集,而GATC序列则减少。最后,热点区域中单链DNA片段的富集在二级结构的形成、转录活性和复制应激之间建立了联系。总之,本研究提供了一张全面的全基因组复制错误热点图谱,为可能损害遗传信息忠实传递的各种机制之间的复杂相互作用提供了一个整体视角。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cbc4/11754648/3540bfd5a8c9/gkae1196figgra1.jpg

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