Baretić Domagoj, Jenkyn-Bedford Michael, Aria Valentina, Cannone Giuseppe, Skehel Mark, Yeeles Joseph T P
Laboratory of Molecular Biology, Medical Research Council, Cambridge CB2 0QH, UK.
Laboratory of Molecular Biology, Medical Research Council, Cambridge CB2 0QH, UK.
Mol Cell. 2020 Jun 4;78(5):926-940.e13. doi: 10.1016/j.molcel.2020.04.012. Epub 2020 May 4.
The eukaryotic replisome, organized around the Cdc45-MCM-GINS (CMG) helicase, orchestrates chromosome replication. Multiple factors associate directly with CMG, including Ctf4 and the heterotrimeric fork protection complex (Csm3/Tof1 and Mrc1), which has important roles including aiding normal replication rates and stabilizing stalled forks. How these proteins interface with CMG to execute these functions is poorly understood. Here we present 3 to 3.5 Å resolution electron cryomicroscopy (cryo-EM) structures comprising CMG, Ctf4, and the fork protection complex at a replication fork. The structures provide high-resolution views of CMG-DNA interactions, revealing a mechanism for strand separation, and show Csm3/Tof1 "grip" duplex DNA ahead of CMG via a network of interactions important for efficient replication fork pausing. Although Mrc1 was not resolved in our structures, we determine its topology in the replisome by cross-linking mass spectrometry. Collectively, our work reveals how four highly conserved replisome components collaborate with CMG to facilitate replisome progression and maintain genome stability.
真核生物复制体围绕Cdc45-MCM-GINS(CMG)解旋酶组装,协调染色体复制。多种因子直接与CMG结合,包括Ctf4和异源三聚体叉保护复合物(Csm3/Tof1和Mrc1),它们具有重要作用,包括帮助维持正常复制速率和稳定停滞的复制叉。这些蛋白质如何与CMG相互作用以执行这些功能,目前尚不清楚。在这里,我们展示了分辨率为3至3.5埃的冷冻电镜(cryo-EM)结构,该结构包含处于复制叉处的CMG、Ctf4和叉保护复合物。这些结构提供了CMG与DNA相互作用的高分辨率视图,揭示了链分离的机制,并显示Csm3/Tof1通过对有效复制叉暂停至关重要的相互作用网络在CMG之前“抓住”双链DNA。尽管在我们的结构中未解析出Mrc1,但我们通过交联质谱法确定了其在复制体中的拓扑结构。总的来说,我们的工作揭示了四种高度保守的复制体成分如何与CMG协作,以促进复制体的进展并维持基因组稳定性。