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“弥合 DNA 鸿沟”:理解复制间隙与同源重组蛋白 RAD51 和 BRCA1/2 之间的相互作用。

"Bridging the DNA divide": Understanding the interplay between replication- gaps and homologous recombination proteins RAD51 and BRCA1/2.

机构信息

IFOM ETS - The AIRC Institute of Molecular Oncology, Italy.

IFOM ETS - The AIRC Institute of Molecular Oncology, Italy; Department of Oncology and Hematology-Oncology, University of Milan, Milan, Italy.

出版信息

DNA Repair (Amst). 2024 Sep;141:103738. doi: 10.1016/j.dnarep.2024.103738. Epub 2024 Jul 29.

Abstract

A key but often neglected component of genomic instability is the emergence of single-stranded DNA (ssDNA) gaps during DNA replication in the absence of functional homologous recombination (HR) proteins, such as RAD51 and BRCA1/2. Research in prokaryotes has shed light on the dual role of RAD51's bacterial ortholog, RecA, in HR and the protection of replication forks, emphasizing its essential role in preventing the formation of ssDNA gaps, which is vital for cellular viability. This phenomenon was corroborated in eukaryotic cells deficient in HR, where the formation of ssDNA gaps within newly synthesized DNA and their subsequent processing by the MRE11 nuclease were observed. Without functional HR proteins, cells employ alternative ssDNA gap-filling mechanisms to ensure survival, though this compensatory response can compromise genomic stability. A notable example is the involvement of the translesion synthesis (TLS) polymerase POLζ, along with the repair protein POLθ, in the suppression of replicative ssDNA gaps. Persistent ssDNA gaps may result in replication fork collapse, chromosomal anomalies, and cell death, which contribute to cancer progression and resistance to therapy. Elucidating the processes that avert ssDNA gaps and safeguard replication forks is critical for enhancing cancer treatment approaches by exploiting the vulnerabilities of cancer cells in these pathways.

摘要

基因组不稳定性的一个关键但常被忽视的组成部分是,在缺乏功能性同源重组 (HR) 蛋白(如 RAD51 和 BRCA1/2)的情况下,在 DNA 复制过程中会出现单链 DNA (ssDNA) 缺口。原核生物的研究揭示了 RAD51 的细菌直系同源物 RecA 在 HR 和复制叉保护中的双重作用,强调了其在防止 ssDNA 缺口形成中的重要作用,这对细胞活力至关重要。这种现象在 HR 缺陷的真核细胞中得到了证实,在这些细胞中,新合成的 DNA 内会形成 ssDNA 缺口,并随后被 MRE11 核酸酶处理。在没有功能性 HR 蛋白的情况下,细胞会采用替代的 ssDNA 缺口填充机制来确保存活,但这种补偿反应可能会损害基因组稳定性。一个值得注意的例子是,跨损伤合成 (TLS) 聚合酶 POLζ 与修复蛋白 POLθ 的参与,抑制了复制性 ssDNA 缺口。持续的 ssDNA 缺口可能导致复制叉崩溃、染色体异常和细胞死亡,从而促进癌症进展和对治疗的耐药性。阐明避免 ssDNA 缺口和保护复制叉的过程对于通过利用这些途径中癌细胞的脆弱性来增强癌症治疗方法至关重要。

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