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A Suppressor Screen for AGO1 Degradation by the Viral F-Box P0 Protein Uncovers a Role for AGO DUF1785 in sRNA Duplex Unwinding

机译:以往的抑制屏幕1通过病毒F盒P0蛋白质的降解揭示了以前的角色DUF1785在SRNA双工展开中

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摘要

In Arabidopsis thaliana, ARGONAUTE1 (AGO1) plays a central role in microRNA (miRNA) and small interfering RNA (siRNA)mediated silencing and is a key component in antiviral responses. The polerovirus F-box P0 protein triggers AGO1 degradation as a viral counterdefense. Here, we identified a motif in AGO1 that is required for its interaction with the S phase kinase-associated protein1-cullin 1-F-box protein (SCF) P0 (SCFP0) complex and subsequent degradation. The AGO1 P0 degron is conserved and confers P0-mediated degradation to other AGO proteins. Interestingly, the degron motif is localized in the DUF1785 domain of AGO1, in which a single point mutation (ago1-57, obtained by forward genetic screening) compromises recognition by SCFP0. Recapitulating formation of the RNA-induced silencing complex in a cell-free system revealed that this mutation impairs RNA unwinding, leading to stalled forms of AGO1 still bound to double-stranded RNAs. In vivo, the DUF1785 is required for unwinding perfectly matched siRNA duplexes, but is mostly dispensable for unwinding imperfectly matched miRNA duplexes. Consequently, its mutation nearly abolishes phased siRNA production and sense transgene post-transcriptional gene silencing. Overall, our work sheds new light on the mode of AGO1 recognition by P0 and the in vivo function of DUF1785 in RNA silencing.
机译:在拟南芥中,ARGONAUTE1(AGO1)在microRNA(miRNA)和小干扰RNA(siRNA)介导的沉默中起着核心作用,是抗病毒反应的关键成分。polerovirus F-box P0蛋白触发AGO1降解,作为病毒防御。在这里,我们鉴定了AGO1中的一个基序,该基序是AGO1与S期激酶相关蛋白1-F盒蛋白(SCF)P0(SCFP0)复合物相互作用和随后降解所必需的。AGO1 P0脱克隆是保守的,并赋予P0介导的对其他AGO蛋白的降解。有趣的是,degron基序定位于AGO1的DUF1785结构域,其中一个单点突变(AGO1-57,通过正向遗传筛选获得)损害了SCFP0的识别。对无细胞系统中RNA诱导沉默复合物形成的概述表明,这种突变损害了RNA的展开,导致AGO1的停滞形式仍然与双链RNA结合。在体内,DUF1785是完全匹配的siRNA双链体展开所必需的,但对于不完全匹配的miRNA双链体展开,DUF1785基本上是可有可无的。因此,它的突变几乎消除了阶段性siRNA产生和正义转基因转录后基因沉默。总的来说,我们的工作为P0识别AGO1的模式以及DUF1785在RNA沉默中的体内功能提供了新的思路。

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  • 来源
    《The Plant Cell》 |2018年第6期|共22页
  • 作者单位

    Univ Strasbourg Inst Biol Mol Plantes CNRS Unite Propre Rech 2357 Conventionne Avec F-67084 Strasbourg France;

    Univ Strasbourg Inst Biol Mol Plantes CNRS Unite Propre Rech 2357 Conventionne Avec F-67084 Strasbourg France;

    Univ Strasbourg Inst Biol Mol Plantes CNRS Unite Propre Rech 2357 Conventionne Avec F-67084 Strasbourg France;

    Swiss Fed Inst Technol Zurich ETH Z Chair RNA Biol Dept Biol CH-8092 Zurich Switzerland;

    Swiss Fed Inst Technol Zurich ETH Z Chair RNA Biol Dept Biol CH-8092 Zurich Switzerland;

    Univ Strasbourg Inst Biol Mol Plantes CNRS Unite Propre Rech 2357 Conventionne Avec F-67084 Strasbourg France;

    Univ Miguel Hernandez Inst Bioingn Campus Elche Elche 03202 Spain;

    Univ Strasbourg Inst Biol Mol Plantes CNRS Unite Propre Rech 2357 Conventionne Avec F-67084 Strasbourg France;

    Univ Paris Saclay Inst Jean Pierre Bourgin CNRS INRA AgroParisTech F-78026 Versailles France;

    Univ Miguel Hernandez Inst Bioingn Campus Elche Elche 03202 Spain;

    Swiss Fed Inst Technol Zurich ETH Z Chair RNA Biol Dept Biol CH-8092 Zurich Switzerland;

    Univ Strasbourg Inst Biol Mol Plantes CNRS Unite Propre Rech 2357 Conventionne Avec F-67084 Strasbourg France;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 植物细胞学;
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