Chen Siying, Levin Mikhail K, Sakato Miho, Zhou Yayan, Hingorani Manju M
Department of Molecular Biology and Biochemistry, Wesleyan University, Middletown, CT 06459, USA.
J Mol Biol. 2009 May 8;388(3):431-42. doi: 10.1016/j.jmb.2009.03.014. Epub 2009 Mar 13.
Circular clamps tether polymerases to DNA, serving as essential processivity factors in genome replication, and function in other critical cellular processes as well. Clamp loaders catalyze clamp assembly onto DNA, and the question of how these proteins construct a topological link between a clamp and DNA, especially the mechanism by which ATP is utilized for the task, remains open. Here we describe pre-steady-state analysis of ATP hydrolysis, proliferating cell nuclear antigen (PCNA) clamp opening, and DNA binding by Saccharomyces cerevisiae replication factor C (RFC), and present the first kinetic model of a eukaryotic clamp-loading reaction validated by global data analysis. ATP binding to multiple RFC subunits initiates a slow conformational change in the clamp loader, enabling it to bind and open PCNA and to bind DNA as well. PCNA opening locks RFC into an active state, and the resulting RFC.ATP.PCNA((open)) intermediate is ready for the entry of DNA into the clamp. DNA binding commits RFC to ATP hydrolysis, which is followed by PCNA closure and PCNA.DNA release. This model enables quantitative understanding of the multistep mechanism of a eukaryotic clamp loader and furthermore facilitates comparative analysis of loaders from diverse organisms.
环形夹子将聚合酶束缚于DNA,在基因组复制中作为重要的持续性因子发挥作用,并且也在其他关键的细胞过程中发挥功能。夹子加载器催化夹子装配到DNA上,而这些蛋白质如何在夹子与DNA之间构建拓扑连接,尤其是ATP用于此项任务的机制问题,仍然悬而未决。在此,我们描述了酿酒酵母复制因子C(RFC)的ATP水解、增殖细胞核抗原(PCNA)夹子打开以及DNA结合的预稳态分析,并呈现了首个通过全局数据分析验证的真核生物夹子加载反应的动力学模型。ATP与多个RFC亚基结合引发夹子加载器中缓慢的构象变化,使其能够结合并打开PCNA以及结合DNA。PCNA打开将RFC锁定为活性状态,由此产生的RFC·ATP·PCNA(开放)中间体准备好让DNA进入夹子。DNA结合促使RFC进行ATP水解,随后是PCNA闭合和PCNA-DNA释放。该模型使得对真核生物夹子加载器的多步机制有定量的理解,并且进一步便于对来自不同生物体的加载器进行比较分析。