Molecular and Computational Biology, University of Southern California, Los Angeles, CA 90089, USA.
Crit Rev Biochem Mol Biol. 2010 Jun;45(3):243-56. doi: 10.3109/10409238.2010.484836.
The helicase function of the minichromosome maintenance protein (MCM) is essential for genomic DNA replication in archaea and eukaryotes. There has been rapid progress in studies of the structure and function of MCM proteins from different organisms, leading to better understanding of the MCM helicase mechanism. Because there are a number of excellent reviews on this topic, we will use this review to summarize some of the recent progress, with particular focus on the structural aspects of MCM and their implications for helicase function. Given the hexameric and double hexameric architecture observed by X-ray crystallography and electron microscopy of MCMs from archaeal and eukaryotic cells, we summarize and discuss possible unwinding modes by either a hexameric or a double hexameric helicase. Additionally, our recent crystal structure of a full length archaeal MCM has provided structural information on an intact, multi-domain MCM protein, which includes the salient features of four unusual beta-hairpins from each monomer, and the side channels of a hexamer/double hexamer. These new structural data enable a closer examination of the structural basis of the unwinding mechanisms by MCM.
在古菌和真核生物中,微小染色体维持蛋白(MCM)的解旋酶功能对于基因组 DNA 复制是必不可少的。目前,对来自不同生物体的 MCM 蛋白的结构和功能的研究已经取得了快速进展,从而使人们对 MCM 解旋酶机制有了更好的理解。由于关于该主题已经有许多出色的评论,因此我们将在本篇综述中总结一些最新进展,重点介绍 MCM 的结构方面及其对解旋酶功能的影响。鉴于从古菌和真核细胞中提取的 MCM 的 X 射线晶体学和电子显微镜观察到的六聚体和双六聚体结构,我们总结并讨论了六聚体或双六聚体解旋酶可能的解旋模式。此外,我们最近的完整的古菌 MCM 的晶体结构提供了有关完整的多结构域 MCM 蛋白的结构信息,其中包括每个单体的四个不寻常的β发夹的突出特征,以及六聚体/双六聚体的侧通道。这些新的结构数据使我们能够更仔细地检查 MCM 的解旋机制的结构基础。