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首页> 外文期刊>Nucleic Acids Research >PP4 phosphatase cooperates in recombinational DNA repair by enhancing double-strand break end resection
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PP4 phosphatase cooperates in recombinational DNA repair by enhancing double-strand break end resection

机译:PP4磷酸酶通过增强双链断裂结束切除重组DNA修复中的重组DNA修复

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摘要

The role of Rad53 in response to a DNA lesion is central for the accurate orchestration of the DNA damage response. Rad53 activation relies on its phosphorylation by Mec1 and its own autophosphorylation in a manner dependent on the adaptor Rad9. While the mechanism behind Rad53 activation has been well documented, less is known about the processes that counteract its activity along the repair of a DNA adduct. Here, we describe that PP4 phosphatase is required to avoid Rad53 hyper-phosphorylation during the repair of a double-strand break, a process that impacts on the phosphorylation status of multiple factors involved in the DNA damage response. PP4-dependent Rad53 dephosphorylation stimulates DNA end resection by relieving the negative effect that Rad9 exerts over the Sgs1/Dna2 exonuclease complex. Consequently, elimination of PP4 activity affects resection and repair by single-strand annealing, defects that are bypassed by reducing Rad53 hyperphosphorylation. These results confirm that Rad53 phosphorylation is controlled by PP4 during the repair of a DNA lesion and demonstrate that the attenuation of its kinase activity during the initial steps of the repair process is essential to efficiently enhance recombinational DNA repair pathways that depend on long-range resection for their success.
机译:RAD53响应DNA病变的作用是DNA损伤反应精确编排的中央。 RAD53激活依赖于MEC1的磷酸化及其自动磷酸化以取决于适配器RAD9。虽然RAD53激活后面的机制已经充分地记录,但是关于沿着DNA加合物的修复抵消其活性的过程较少。这里,我们描述了PP4磷酸酶需要在修复双链断裂期间避免Rad53超磷酸化,这是对DNA损伤反应中涉及的多种因素的磷酸化状态影响的过程。 PP4依赖性Rad53去磷酸化刺激DNA结束切除通过减轻RAD9施加在SGS1 / DNA2外切核酸酶复合物复合物中的负面影响。因此,消除PP4活性通过单链退火的切除和修复,通过减少RAD53高磷酸化绕过的缺陷。这些结果证实RAD53磷酸化由PP4控制在DNA病变期间通过PP4控制,并证明在修复过程的初始步骤期间其激酶活性的衰减对于有效增强依赖于远程切除的重组DNA修复途径至关重要。为了他们的成功。

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  • 来源
    《Nucleic Acids Research》 |2019年第20期|共22页
  • 作者单位

    Univ Salamanca USAL Spanish Natl Res Council CSIC Inst Funct Biol &

    Genom IBFG Cell Cycle &

    Genome Stabil Grp C Zacarias Gonzalez 2 Salamanca 37007 Spain;

    London Inst Med Sci MRC Cell Cycle Grp Du Cane Rd London W12 0NN England;

    Univ Salamanca USAL Spanish Natl Res Council CSIC Inst Funct Biol &

    Genom IBFG Cell Cycle &

    Genome Stabil Grp C Zacarias Gonzalez 2 Salamanca 37007 Spain;

    Univ Salamanca USAL Spanish Natl Res Council CSIC Inst Funct Biol &

    Genom IBFG Cell Cycle &

    Genome Stabil Grp C Zacarias Gonzalez 2 Salamanca 37007 Spain;

    Univ Salamanca USAL Spanish Natl Res Council CSIC Inst Funct Biol &

    Genom IBFG Cell Cycle &

    Genome Stabil Grp C Zacarias Gonzalez 2 Salamanca 37007 Spain;

    Univ Salamanca USAL Spanish Natl Res Council CSIC Inst Funct Biol &

    Genom IBFG Cell Cycle &

    Genome Stabil Grp C Zacarias Gonzalez 2 Salamanca 37007 Spain;

    London Inst Med Sci MRC Biol Mass Spectrometry &

    Prote Lab Du Cane Rd London W12 0NN England;

    London Inst Med Sci MRC Biol Mass Spectrometry &

    Prote Lab Du Cane Rd London W12 0NN England;

    London Inst Med Sci MRC Cell Cycle Grp Du Cane Rd London W12 0NN England;

    Univ Salamanca USAL Spanish Natl Res Council CSIC Inst Funct Biol &

    Genom IBFG Cell Cycle &

    Genome Stabil Grp C Zacarias Gonzalez 2 Salamanca 37007 Spain;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物化学;
  • 关键词

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