MOE Key Laboratory of Protein Science, School of Medicine, Tsinghua University, Beijing, China.
School of Life Sciences, Tsinghua University, Beijing, China.
Cell. 2021 Jan 7;184(1):184-193.e10. doi: 10.1016/j.cell.2020.11.016. Epub 2020 Nov 14.
Transcription of SARS-CoV-2 mRNA requires sequential reactions facilitated by the replication and transcription complex (RTC). Here, we present a structural snapshot of SARS-CoV-2 RTC as it transitions toward cap structure synthesis. We determine the atomic cryo-EM structure of an extended RTC assembled by nsp7-nsp8-nsp12-nsp13-RNA and a single RNA-binding protein, nsp9. Nsp9 binds tightly to nsp12 (RdRp) NiRAN, allowing nsp9 N terminus inserting into the catalytic center of nsp12 NiRAN, which then inhibits activity. We also show that nsp12 NiRAN possesses guanylyltransferase activity, catalyzing the formation of cap core structure (GpppA). The orientation of nsp13 that anchors the 5' extension of template RNA shows a remarkable conformational shift, resulting in zinc finger 3 of its ZBD inserting into a minor groove of paired template-primer RNA. These results reason an intermediate state of RTC toward mRNA synthesis, pave a way to understand the RTC architecture, and provide a target for antiviral development.
SARS-CoV-2 mRNA 的转录需要复制和转录复合物(RTC)的连续反应来完成。在这里,我们展示了 SARS-CoV-2 RTC 向帽结构合成转变时的结构快照。我们通过 nsp7-nsp8-nsp12-nsp13-RNA 和单个 RNA 结合蛋白 nsp9 组装的扩展 RTC 确定了原子冷冻电镜结构。nsp9 与 nsp12(RdRp)NiRAN 紧密结合,允许 nsp9 N 端插入 nsp12 NiRAN 的催化中心,从而抑制其活性。我们还表明,nsp12 NiRAN 具有鸟苷转移酶活性,催化帽核心结构(GpppA)的形成。模板 RNA 5' 延伸的锚定 nsp13 的取向显示出显著的构象变化,导致其 ZBD 的锌指 3 插入配对模板-引物 RNA 的小沟中。这些结果解释了 RTC 向 mRNA 合成的中间状态,为理解 RTC 结构铺平了道路,并为抗病毒药物的开发提供了一个靶点。