Faull Sarah V, Barbon Marta, Mossler Audrey, Yuan Zuanning, Bai Lin, Reuter L Maximilian, Riera Alberto, Winkler Christian, Magdalou Indiana, Peach Matthew, Li Huilin, Speck Christian
DNA Replication Group, Institute of Clinical Science, Imperial College London, London, UK.
MRC London Institute of Medical Sciences, London, UK.
Nat Commun. 2025 Jan 2;16(1):14. doi: 10.1038/s41467-024-55479-1.
The eukaryotic helicase MCM2-7, is loaded by ORC, Cdc6 and Cdt1 as a double-hexamer onto replication origins. The insertion of DNA into the helicase leads to partial MCM2-7 ring closure, while ATP hydrolysis is essential for consecutive steps in pre-replicative complex (pre-RC) assembly. Currently it is unknown how MCM2-7 ring closure and ATP-hydrolysis are controlled. A cryo-EM structure of an ORC-Cdc6-Cdt1-MCM2-7 intermediate shows a remodelled, fully-closed Mcm2/Mcm5 interface. The Mcm5 C-terminus (C5) contacts Orc3 and specifically recognises this closed ring. Interestingly, we found that normal helicase loading triggers Mcm4 ATP-hydrolysis, which in turn leads to reorganisation of the MCM2-7 complex and Cdt1 release. However, defective MCM2-7 ring closure, due to mutations at the Mcm2/Mcm5 interface, leads to MCM2-7 ring splitting and complex disassembly. As such we identify Mcm4 as the key ATPase in regulating pre-RC formation. Crucially, a stable Mcm2/Mcm5 interface is essential for productive ATP-hydrolysis-dependent remodelling of the helicase.
真核解旋酶MCM2-7由ORC、Cdc6和Cdt1作为双六聚体加载到复制起点上。DNA插入解旋酶会导致MCM2-7环部分闭合,而ATP水解对于复制前复合体(pre-RC)组装的连续步骤至关重要。目前尚不清楚MCM2-7环闭合和ATP水解是如何被调控的。ORC-Cdc6-Cdt1-MCM2-7中间体的冷冻电镜结构显示了一个重塑的、完全闭合的Mcm2/Mcm5界面。Mcm5的C末端(C5)与Orc3接触并特异性识别这个闭环。有趣的是,我们发现正常的解旋酶加载会触发Mcm4的ATP水解,这反过来又会导致MCM2-7复合体的重新组织和Cdt1的释放。然而,由于Mcm2/Mcm5界面的突变导致的MCM2-7环闭合缺陷会导致MCM2-7环分裂和复合体解体。因此,我们确定Mcm4是调节pre-RC形成的关键ATP酶。至关重要的是,稳定的Mcm2/Mcm5界面对于解旋酶依赖ATP水解的有效重塑至关重要。