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Drosha识别初级微小RNA(pri-miRNA)的结构基础

Structural Basis for pri-miRNA Recognition by Drosha.

作者信息

Jin Wenxing, Wang Jia, Liu Chao-Pei, Wang Hong-Wei, Xu Rui-Ming

机构信息

National Laboratory of Biomacromolecules, CAS Center for Excellence in Biomacromolecules, Institute of Biophysics, Chinese Academy of Sciences, Beijing 100101, China.

Ministry of Education Key Laboratory of Protein Sciences, Tsinghua-Peking Joint Center for Life Sciences, Beijing Advanced Innovation Center for Structural Biology, Beijing Frontier Research Center of Biological Structures, School of Life Sciences, Tsinghua University, Beijing 100084, China.

出版信息

Mol Cell. 2020 May 7;78(3):423-433.e5. doi: 10.1016/j.molcel.2020.02.024. Epub 2020 Mar 27.

Abstract

A commencing and critical step in miRNA biogenesis involves processing of pri-miRNAs in the nucleus by Microprocessor. An important, but not completely understood, question is how Drosha, the catalytic subunit of Microprocessor, binds pri-miRNAs and correctly specifies cleavage sites. Here we report the cryoelectron microscopy structures of the Drosha-DGCR8 complex with and without a pri-miRNA. The RNA-bound structure provides direct visualization of the tertiary structure of pri-miRNA and shows that a helix hairpin in the extended PAZ domain and the mobile basic (MB) helix in the RNase IIIa domain of Drosha coordinate to recognize the single-stranded to double-stranded junction of RNA, whereas the dsRNA binding domain makes extensive contacts with the RNA stem. Furthermore, the RNA-free structure reveals an autoinhibitory conformation of the PAZ helix hairpin. These findings provide mechanistic insights into pri-miRNA cleavage site selection and conformational dynamics governing pri-miRNA recognition by the catalytic component of Microprocessor.

摘要

微小RNA(miRNA)生物合成起始且关键的一步涉及微处理器在细胞核中对初级miRNA(pri-miRNA)进行加工。一个重要但尚未完全理解的问题是,微处理器的催化亚基 Drosha 如何结合 pri-miRNA 并正确指定切割位点。在此,我们报告了有和没有 pri-miRNA 时 Drosha-DGCR8 复合物的冷冻电子显微镜结构。RNA 结合结构提供了 pri-miRNA 三级结构的直接可视化,并表明 Drosha 的扩展 PAZ 结构域中的螺旋发夹和 RNase IIIa 结构域中的可移动碱性(MB)螺旋协同作用以识别 RNA 的单链到双链连接,而双链RNA结合结构域与RNA茎进行广泛接触。此外,无RNA结构揭示了PAZ螺旋发夹的自抑制构象。这些发现为pri-miRNA切割位点选择以及微处理器催化成分识别pri-miRNA的构象动力学提供了机制性见解。

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