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An xrcc4 defect or Wortmannin stimulates homologous recombination specifically induced by double-strand breaks in mammalian cells

机译:xrcc4缺陷或Wortmannin刺激由哺乳动物细胞中双链断裂特异性诱导的同源重组

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摘要

Non-homologous end joining (NHEJ) and homologous recombination (HR) are two alternative/competitor pathways for the repair of DNA double-strand breaks (DSBs). To gain further insights into the regulation of DSB repair, we detail here the different HR pathways affected by (i) the inactivation of DNA-PK activity, by treatment with Wortmannin, and (ii) a mutation in the xrcc4 gene, involved in a late NHEJ step, using the XR-1 cell line. Here we have analyzed not only the impact of NHEJ inactivation on recombination induced by a single DSB targeted to the recombination substrate (using I-SceI endonuclease) but also on γ-ray- and UV-C-induced and spontaneous recombination and finally on Rad51 foci formation, i.e. on the assembly of the homologous recombination complex, at the molecular level. The results presented here show that in contrast to embryonic stem cells, the xrcc4 mutation strongly stimulates I-SceI-induced HR in adult hamster cells. More precisely, we show here that both single strand annealing and gene conversion are stimulated. In contrast, Wortmannin does not affect I-SceI-induced HR. In addition, γ-ray-induced recombination is stimulated by both xrcc4 mutation and Wortmannin treatment in an epistatic-like manner. In contrast, neither spontaneous nor UV-C-induced recombination was affected by xrcc4 mutation, showing that the channeling from NHEJ to HR is specific to DSBs. Finally, we show here that xrcc4 mutation or Wortmannin treatment results in a stimulation of Rad51 foci assembly, thus that a late NHEJ step is able to affect Rad51 recombination complex assembly. The present data suggest a model according to which NHEJ and HR do not simply compete for DSB repair but can act sequentially: a defect in a late NHEJ step is not a dead end and can make DSB available for subsequent Rad51 recombination complex assembly.
机译:非同源末端连接(NHEJ)和同源重组(HR)是DNA双链断裂(DSB)修复的两种替代/竞争途径。为了进一步了解DSB修复的调控,我们在这里详细介绍了不同的HR途径,这些途径受(i)用Wortmannin处理DNA-PK活性失活,和(ii)xrcc4基因突变引起, NHEJ后期,使用XR-1细胞系。在这里,我们不仅分析了NHEJ失活对由靶向重组底物的单个DSB诱导的重组的影响(使用I-SceI核酸内切酶),而且还分析了γ-射线和UV-C诱导的自发重组,最后对Rad51的影响。焦点形成,即在分子水平上同源重组复合物的组装上。此处显示的结果表明,与胚胎干细胞相反,xrcc4突变强烈刺激了成年仓鼠细胞中I-SceI诱导的HR。更准确地说,我们在这里表明单链退火和基因转化均受到刺激。相反,渥曼青霉素不影响I-SceI诱导的HR。此外,xrcc4突变和Wortmannin处理均以上位性方式刺激γ射线诱导的重组。相反,xrcc4突变既不影响自发重组也不影响UV-C诱导的重组,这表明从NHEJ到HR的通道是DSB特有的。最后,我们在这里显示xrcc4突变或Wortmannin处理可刺激Rad51焦点组装,因此NHEJ的后期步骤能够影响Rad51重组复合体的组装。目前的数据提出了一个模型,根据该模型,NHEJ和HR不仅可以竞争DSB修复,而且可以顺序发挥作用:NHEJ后期步骤中的缺陷不是死胡同,并且可以使DSB可用于后续的Rad51重组复合体组装。

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