College of Chemistry, Fuzhou University, Fuzhou, 350108, China.
MOE Key Laboratory of Geriatric Diseases and Immunology, Institute of Molecular Enzymology, School of Biology and Basic Medical Sciences, Suzhou Medical College, Soochow University, Suzhou, 215123, China.
Nat Commun. 2024 Jun 17;15(1):5140. doi: 10.1038/s41467-024-49490-9.
Holliday junction resolution is a crucial process in homologous recombination and DNA double-strand break repair. Complete Holliday junction resolution requires two stepwise incisions across the center of the junction, but the precise mechanism of metal ion-catalyzed Holliday junction cleavage remains elusive. Here, we perform a metal ion-triggered catalysis in crystals to investigate the mechanism of Holliday junction cleavage by MOC1. We capture the structures of MOC1 in complex with a nicked Holliday junction at various catalytic states, including the ground state, the one-metal ion binding state, and the two-metal ion binding state. Moreover, we also identify a third metal ion that may aid in the nucleophilic attack on the scissile phosphate. Further structural and biochemical analyses reveal a metal ion-mediated allosteric regulation between the two active sites, contributing to the enhancement of the second strand cleavage following the first strand cleavage, as well as the precise symmetric cleavage across the Holliday junction. Our work provides insights into the mechanism of metal ion-catalyzed Holliday junction resolution by MOC1, with implications for understanding how cells preserve genome integrity during the Holliday junction resolution phase.
霍利迪连接点的解决是同源重组和 DNA 双链断裂修复的关键过程。完整的霍利迪连接点解决需要在连接点的中心进行两次逐步切割,但金属离子催化的霍利迪连接点切割的精确机制仍然难以捉摸。在这里,我们在晶体中进行了金属离子触发的催化实验,以研究 MOC1 切割霍利迪连接点的机制。我们捕获了在各种催化状态下(包括基础状态、一价金属离子结合状态和二价金属离子结合状态)MOC1 与切口霍利迪连接点复合物的结构。此外,我们还鉴定了第三个金属离子,它可能有助于亲核攻击可切割的磷酸酯。进一步的结构和生化分析揭示了两个活性位点之间的金属离子介导的变构调节,有助于增强第一链切割后第二链的切割,以及霍利迪连接点的精确对称切割。我们的工作提供了对 MOC1 催化的霍利迪连接点解决机制的深入了解,这对于理解细胞在霍利迪连接点解决阶段如何保持基因组完整性具有重要意义。