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DNA损伤特征决定小鼠细胞染色体中损伤耐受途径的选择。

DNA lesion identity drives choice of damage tolerance pathway in murine cell chromosomes.

作者信息

Cohen Isadora S, Bar Carmit, Paz-Elizur Tamar, Ainbinder Elena, Leopold Karoline, de Wind Niels, Geacintov Nicholas, Livneh Zvi

出版信息

Nucleic Acids Res. 2015 Feb 18;43(3):1637-45. doi: 10.1093/nar/gku1398.

Abstract

DNA-damage tolerance (DDT) via translesion DNA synthesis (TLS) or homology-dependent repair (HDR) functions to bypass DNA lesions encountered during replication, and is critical for maintaining genome stability. Here, we present piggyBlock, a new chromosomal assay that, using piggyBac transposition of DNA containing a known lesion, measures the division of labor between the two DDT pathways. We show that in the absence of DNA damage response, tolerance of the most common sunlight-induced DNA lesion, TT-CPD, is achieved by TLS in mouse embryo fibroblasts. Meanwhile, BP-G, a major smoke-induced DNA lesion, is bypassed primarily by HDR, providing the first evidence for this mechanism being the main tolerance pathway for a biologically important lesion in a mammalian genome. We also show that, far from being a last-resort strategy as it is sometimes portrayed, TLS operates alongside nucleotide excision repair, handling 40% of TT-CPDs in repair-proficient cells. Finally, DDT acts in mouse embryonic stem cells, exhibiting the same pattern—mutagenic TLS included—despite the risk of propagating mutations along all cell lineages. The new method highlights the importance of HDR, and provides an effective tool for studying DDT in mammalian cells.

摘要

通过跨损伤DNA合成(TLS)或同源依赖性修复(HDR)实现的DNA损伤耐受(DDT)功能是绕过复制过程中遇到的DNA损伤,对于维持基因组稳定性至关重要。在此,我们展示了piggyBlock,这是一种新的染色体分析方法,利用携带已知损伤的DNA的piggyBac转座,测量两种DDT途径之间的分工。我们表明,在没有DNA损伤反应的情况下,小鼠胚胎成纤维细胞中最常见的阳光诱导的DNA损伤TT-CPD的耐受是通过TLS实现的。同时,主要由烟雾诱导的DNA损伤BP-G主要通过HDR绕过,这为该机制作为哺乳动物基因组中一种生物学重要损伤的主要耐受途径提供了首个证据。我们还表明,TLS远非有时所描述的一种万不得已的策略,它与核苷酸切除修复协同作用,在修复功能正常的细胞中处理40%的TT-CPD。最后,DDT在小鼠胚胎干细胞中起作用,尽管存在沿所有细胞谱系传播突变的风险,但仍表现出相同的模式,包括诱变TLS。这种新方法突出了HDR的重要性,并为研究哺乳动物细胞中的DDT提供了一种有效工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e70b/4330363/57fff7eabea4/gku1398fig1.jpg

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