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本文引用的文献

1
Structure of the eukaryotic MCM complex at 3.8 Å.真核生物 MCM 复合物的 3.8 Å 结构。
Nature. 2015 Aug 13;524(7564):186-91. doi: 10.1038/nature14685. Epub 2015 Jul 29.
2
Regulated eukaryotic DNA replication origin firing with purified proteins.利用纯化蛋白调控真核生物DNA复制起点的激发
Nature. 2015 Mar 26;519(7544):431-5. doi: 10.1038/nature14285. Epub 2015 Mar 4.
3
DNA induces conformational changes in a recombinant human minichromosome maintenance complex.DNA可诱导重组人微小染色体维持复合物发生构象变化。
J Biol Chem. 2015 Mar 20;290(12):7973-9. doi: 10.1074/jbc.M114.622738. Epub 2015 Feb 3.
4
DNA binding polarity, dimerization, and ATPase ring remodeling in the CMG helicase of the eukaryotic replisome.真核生物复制体的CMG解旋酶中的DNA结合极性、二聚化及ATP酶环重塑
Elife. 2014 Aug 12;3:e03273. doi: 10.7554/eLife.03273.
5
Origin licensing requires ATP binding and hydrolysis by the MCM replicative helicase.起始许可需要MCM复制解旋酶结合并水解ATP。
Mol Cell. 2014 Sep 4;55(5):666-77. doi: 10.1016/j.molcel.2014.06.034. Epub 2014 Jul 31.
6
A unique DNA entry gate serves for regulated loading of the eukaryotic replicative helicase MCM2-7 onto DNA.一种独特的 DNA 入口门用于调节真核复制解旋酶 MCM2-7 加载到 DNA 上。
Genes Dev. 2014 Aug 1;28(15):1653-66. doi: 10.1101/gad.242404.114.
7
DNA replication and oncogene-induced replicative stress.DNA 复制和致癌基因诱导的复制应激。
Curr Biol. 2014 May 19;24(10):R435-44. doi: 10.1016/j.cub.2014.04.012.
8
A conserved MCM single-stranded DNA binding element is essential for replication initiation.一个保守的微小染色体维持蛋白单链DNA结合元件对复制起始至关重要。
Elife. 2014 Apr 1;3:e01993. doi: 10.7554/eLife.01993.
9
Helicase activation and establishment of replication forks at chromosomal origins of replication.解旋酶的激活和复制叉在染色体复制起始点的建立。
Cold Spring Harb Perspect Biol. 2013 Dec 1;5(12):a010371. doi: 10.1101/cshperspect.a010371.
10
ATPase-dependent quality control of DNA replication origin licensing.ATP 依赖的 DNA 复制起始许可的质量控制。
Nature. 2013 Mar 21;495(7441):339-43. doi: 10.1038/nature11920. Epub 2013 Mar 10.

与核苷酸和DNA结合的重组人MCM2-7解旋酶的分子结构

Molecular architecture of the recombinant human MCM2-7 helicase in complex with nucleotides and DNA.

作者信息

Boskovic Jasminka, Bragado-Nilsson Elisabeth, Saligram Prabhakar Bhargrav, Yefimenko Igor, Martínez-Gago Jaime, Muñoz Sergio, Méndez Juan, Montoya Guillermo

机构信息

a Structural Biology and Biocomputing Programme, Spanish National Cancer Research Centre (CNIO), Macromolecular Crystallography Group , c/Melchor Fdez. Almagro 3, Madrid , Spain.

b Protein Structure & Function Programme, Novo Nordisk Foundation Centre for Protein Research, Faculty of Heath and Medical Sciences, University of Copenhagen , Denmark.

出版信息

Cell Cycle. 2016 Sep 16;15(18):2431-40. doi: 10.1080/15384101.2016.1191712. Epub 2016 Jun 1.

DOI:10.1080/15384101.2016.1191712
PMID:27249176
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5026811/
Abstract

DNA replication is a key biological process that involves different protein complexes whose assembly is rigorously regulated in a successive order. One of these complexes is a replicative hexameric helicase, the MCM complex, which is essential for the initiation and elongation phases of replication. After the assembly of a double heterohexameric MCM2-7 complex at replication origins in G1, the 2 heterohexamers separate from each other and associate with Cdc45 and GINS proteins in a CMG complex that is capable of unwinding dsDNA during S phase. Here, we have reconstituted and characterized the purified human MCM2-7 (hMCM2-7) hexameric complex by co-expression of its 6 different subunits in insect cells. The conformational variability of the complex has been analyzed by single particle electron microscopy in the presence of different nucleotide analogs and DNA. The interaction with nucleotide stabilizes the complex while DNA introduces conformational changes in the hexamer inducing a cylindrical shape. Our studies suggest that the assembly of GINS and Cdc45 to the hMCM2-7 hexamer would favor conformational changes on the hexamer bound to ssDNA shifting the cylindrical shape of the complex into a right-handed spiral conformation as observed in the CMG complex bound to DNA.

摘要

DNA复制是一个关键的生物学过程,涉及不同的蛋白质复合物,其组装过程受到严格的顺序调控。其中一种复合物是复制性六聚体解旋酶,即MCM复合物,它对复制的起始和延伸阶段至关重要。在G1期,双异源六聚体MCM2-7复合物在复制起点组装后,这两个异源六聚体彼此分离,并与Cdc45和GINS蛋白结合形成CMG复合物,该复合物能够在S期解开双链DNA。在此,我们通过在昆虫细胞中共表达其6个不同亚基,重组并表征了纯化的人MCM2-7(hMCM2-7)六聚体复合物。在存在不同核苷酸类似物和DNA的情况下,通过单颗粒电子显微镜分析了该复合物的构象变异性。与核苷酸的相互作用使复合物稳定,而DNA则在六聚体中诱导构象变化,使其呈现圆柱形。我们的研究表明,GINS和Cdc45与hMCM2-7六聚体的组装将有利于与单链DNA结合的六聚体发生构象变化,使复合物的圆柱形转变为右手螺旋构象,正如在与DNA结合的CMG复合物中所观察到的那样。