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Nej1 recruits the Srs2 helicase to DNA double-strand breaks and supports repair by a single-strand annealing-like mechanism

机译:Nej1将Srs2解旋酶募集到DNA双链断裂并通过单链退火样机制支持修复

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摘要

Double-strand breaks (DSBs) represent the most severe DNA lesion a cell can suffer, as they pose the risk of inducing loss of genomic integrity and promote oncogenesis in mammals. Two pathways repair DSBs, nonhomologous end joining (NHEJ) and homologous recombination (HR). With respect to mechanism and genetic requirements, characterization of these pathways has revealed a large degree of functional separation between the two. Nej1 is a cell-type specific regulator essential to NHEJ in Saccharomyces cerevisiae. Srs2 is a DNA helicase with multiple roles in HR. In this study, we show that Nej1 physically interacts with Srs2. Furthermore, mutational analysis of Nej1 suggests that the interaction was strengthened by Dun1-dependent phosphorylation of Nej1 serines 297/298. Srs2 was previously shown to be recruited to replication forks, where it promotes translesion DNA synthesis. We demonstrate that Srs2 was also efficiently recruited to DSBs generated by the HO endonuclease. Additionally, efficient Srs2 recruitment to this DSB was dependent on Nej1, but independent of mechanisms facilitating Srs2 recruitment to replication forks. Functionally, both Nej1 and Srs2 were required for efficient repair of DSBs with 15-bp overhangs, a repair event reminiscent of a specific type of HR called single-strand annealing (SSA). Moreover, absence of Rad51 suppressed the SSA-defect in srs2 and nej1 strains. We suggest a model in which Nej1 recruits Srs2 to DSBs to promote NHEJ/SSA-like repair by dismantling inappropriately formed Rad51 nucleoprotein filaments. This unexpected link between NHEJ and HR components may represent cross-talk between DSB repair pathways to ensure efficient repair.
机译:双链断裂(DSB)代表细胞可能遭受的最严重的DNA损伤,因为它们具有诱发基因组完整性丧失和促进哺乳动物致癌作用的风险。修复DSB的两条途径是非同源末端连接(NHEJ)和同源重组(HR)。关于机制和遗传要求,这些途径的表征揭示了两者之间的很大程度的功能分离。 Nej1是酿酒酵母中NHEJ必需的细胞类型特异性调节剂。 Srs2是在HR中具有多种作用的DNA解旋酶。在这项研究中,我们表明Nej1在物理上与Srs2相互作用。此外,Nej1的突变分析表明,Nej1丝氨酸297/298的Dun1依赖性磷酸化增强了相互作用。以前显示Srs2被募集到复制叉中,在那里它促进跨病变的DNA合成。我们证明,Srs2还被有效地招募到HO内切核酸酶产生的DSB。此外,向此DSB的有效Srs2募集取决于Nej1,但与促进Srs2募集到复制叉的机制无关。在功能上,Nej1和Srs2都是有效修复15 bp突出端的DSB所必需的,这种修复事件使人联想到称为单链退火(SSA)的特定类型的HR。此外,Rad51的缺失抑制了srs2和nej1菌株中的SSA缺陷。我们建议一个模型,其中Nej1通过拆除不适当形成的Rad51核蛋白丝来招募Srs2到DSB,以促进NHEJ / SSA样修复。 NHEJ和HR组件之间的这种意外链接可能表示DSB修复路径之间的串扰,以确保有效修复。

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  • 作者单位

    Developmental Biology/Wenner-Gren Institute, Stockholm University, Svante Arrhenius v.16-18, 5E-106 91 Stockholm, Sweden;

    Laboratory of Molecular Genetics, Cancer Research Institute, Slovak Academy of Sciences, Vlarska 7, 833 91 Bratislava, Slovak Republic;

    Developmental Biology/Wenner-Gren Institute, Stockholm University, Svante Arrhenius v.16-18, 5E-106 91 Stockholm, Sweden;

    Laboratory of Molecular Genetics, Cancer Research Institute, Slovak Academy of Sciences, Vlarska 7, 833 91 Bratislava, Slovak Republic;

    Developmental Biology/Wenner-Gren Institute, Stockholm University, Svante Arrhenius v.16-18, 5E-106 91 Stockholm, Sweden;

  • 收录信息 美国《科学引文索引》(SCI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    nonhomologous end joining; single strand annealing;

    机译:非同源末端连接;单链退火;

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