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依赖于 ATP 的构象动力学是最小真核生物复制解旋酶功能不对称性的基础。

ATP-dependent conformational dynamics underlie the functional asymmetry of the replicative helicase from a minimalist eukaryote.

机构信息

Department of Molecular and Cell Biology, California Institute for Quantitative Biosciences, University of California, Berkeley, CA 94720, USA.

出版信息

Proc Natl Acad Sci U S A. 2012 Jul 24;109(30):11999-2004. doi: 10.1073/pnas.1209406109. Epub 2012 Jul 9.

Abstract

The heterohexameric minichromosome maintenance (MCM2-7) complex is an ATPase that serves as the central replicative helicase in eukaryotes. During initiation, the ring-shaped MCM2-7 particle is thought to open to facilitate loading onto DNA. The conformational state accessed during ring opening, the interplay between ATP binding and MCM2-7 architecture, and the use of these events in the regulation of DNA unwinding are poorly understood. To address these issues in isolation from the regulatory complexity of existing eukaryotic model systems, we investigated the structure/function relationships of a naturally minimized MCM2-7 complex from the microsporidian parasite Encephalitozoon cuniculi. Electron microscopy and small-angle X-ray scattering studies show that, in the absence of ATP, MCM2-7 spontaneously adopts a left-handed, open-ring structure. Nucleotide binding does not promote ring closure but does cause the particle to constrict in a two-step process that correlates with the filling of high- and low-affinity ATPase sites. Our findings support the idea that an open ring forms the default conformational state of the isolated MCM2-7 complex, and they provide a structural framework for understanding the multiphasic ATPase kinetics observed in different MCM2-7 systems.

摘要

异源六聚体微小染色体维持(MCM2-7)复合物是一种 ATP 酶,作为真核生物中核心的复制解旋酶。在起始过程中,环形 MCM2-7 颗粒被认为会打开以促进 DNA 的加载。环形开口过程中的构象状态、ATP 结合与 MCM2-7 结构之间的相互作用,以及这些事件在 DNA 解旋调控中的应用,人们对此知之甚少。为了在不考虑现有真核模型系统的调控复杂性的情况下单独解决这些问题,我们研究了来自微孢子虫寄生虫兔脑炎虫的天然最小化 MCM2-7 复合物的结构/功能关系。电子显微镜和小角度 X 射线散射研究表明,在没有 ATP 的情况下,MCM2-7 会自发采用左手开环结构。核苷酸结合不会促进环闭合,但会导致颗粒在两步过程中收缩,这与高亲和性和低亲和性 ATP 酶结合位点的填充相关。我们的发现支持了这样一种观点,即开环形成了分离的 MCM2-7 复合物的默认构象状态,并且为理解不同 MCM2-7 系统中观察到的多相 ATP 酶动力学提供了一个结构框架。

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