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In situ analysis of repair processes for oxidative DNA damage in mammalian cells

机译:哺乳动物细胞氧化性DNA损伤修复过程的原位分析

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Oxidative DNA damage causes blocks and errors in transcription and replication, leading to cell death and genomic instability. Although repair mechanisms of the damage have been extensively analyzed in vitro, the actual in vivo repair processes remain largely unknown. Here, by irradiation with an UVA laser through a microscope lens, we have conditionally produced single-strand breaks and oxidative base damage at restricted nuclear regions of mammalian cells. We showed, in real time after irradiation by using antibodies and GFP-tagged proteins, rapid and ordered DNA repair processes of oxidative DNA damage in human cells. Furthermore, we characterized repair pathways by using repair-defective mammalian cells and found that DNA polymerase 13 accumulated at single-strand breaks and oxidative base damage by means of its 31- and 8-kDa domains, respectively, and that XRCC1 is essential for both polymerarse beta-dependent and proliferating cell nuclear antigen-dependent repair pathways of single-strand breaks. Thus, the repair of oxidative DNA damage is based on temporal and functional interactions among various proteins operating at the site of DNA damage in living cells.
机译:氧化性DNA损伤导致转录和复制受阻和错误,导致细胞死亡和基因组不稳定。尽管已经在体外广泛分析了损伤的修复机制,但是实际的体内修复过程仍然很大程度上未知。在这里,通过显微镜镜头用UVA激光照射,我们有条件地在哺乳动物细胞的受限核区域产生了单链断裂和氧化性碱基破坏。我们通过使用抗体和带有GFP标签的蛋白进行辐射后,实时显示了人类细胞中氧化性DNA损伤的快速而有序的DNA修复过程。此外,我们利用修复缺陷的哺乳动物细胞表征了修复途径,并发现DNA聚合酶13分别通过其31-kDa和8-kDa结构域积累在单链断裂和氧化性碱基损伤上,并且XRCC1对于这两种酶都是必不可少的多链β依赖性和增殖细胞核抗原依赖性修复途径的单链断裂。因此,氧化性DNA损伤的修复是基于在活细胞中DNA损伤部位起作用的各种蛋白质之间的时间和功能相互作用。

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