MOE Key Laboratory of Protein Science, School of Medicine, Tsinghua University, Beijing, China.
School of Life Sciences, Tsinghua University, Beijing, China.
Nat Commun. 2020 Nov 18;11(1):5874. doi: 10.1038/s41467-020-19770-1.
Non-structural proteins (nsp) constitute the SARS-CoV-2 replication and transcription complex (RTC) to play a pivotal role in the virus life cycle. Here we determine the atomic structure of a SARS-CoV-2 mini RTC, assembled by viral RNA-dependent RNA polymerase (RdRp, nsp12) with a template-primer RNA, nsp7 and nsp8, and two helicase molecules (nsp13-1 and nsp13-2), by cryo-electron microscopy. Two groups of mini RTCs with different conformations of nsp13-1 are identified. In both of them, nsp13-1 stabilizes overall architecture of the mini RTC by contacting with nsp13-2, which anchors the 5'-extension of RNA template, as well as interacting with nsp7-nsp8-nsp12-RNA. Orientation shifts of nsp13-1 results in its variable interactions with other components in two forms of mini RTC. The mutations on nsp13-1:nsp12 and nsp13-1:nsp13-2 interfaces prohibit the enhancement of helicase activity achieved by mini RTCs. These results provide an insight into how helicase couples with polymerase to facilitate its function in virus replication and transcription.
非结构蛋白(nsp)构成 SARS-CoV-2 复制和转录复合物(RTC),在病毒生命周期中发挥关键作用。在这里,我们通过冷冻电镜确定了由病毒 RNA 依赖性 RNA 聚合酶(RdRp,nsp12)与模板-引物 RNA、nsp7 和 nsp8 以及两个解旋酶分子(nsp13-1 和 nsp13-2)组装的 SARS-CoV-2 迷你 RTC 的原子结构。鉴定了两种具有不同 nsp13-1 构象的迷你 RTC 群体。在这两种情况下,nsp13-1 通过与 nsp13-2 相互作用来稳定迷你 RTC 的整体结构,nsp13-2 锚定 RNA 模板的 5'-延伸,并与 nsp7-nsp8-nsp12-RNA 相互作用。nsp13-1 的取向变化导致其在两种迷你 RTC 形式中与其他成分的可变相互作用。nsp13-1:nsp12 和 nsp13-1:nsp13-2 界面上的突变阻止了迷你 RTC 实现的解旋酶活性增强。这些结果提供了一个深入了解解旋酶如何与聚合酶结合以促进其在病毒复制和转录中的功能的视角。