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解旋酶
ATP水解
ATP酶
DNA
细胞生物学
转位酶
生物
DNA复制
dnaB解旋酶
生物物理学
化学
染色体易位
生物化学
真核细胞DNA复制
酶
基因
核糖核酸
作者
Patrik Eickhoff,Hazal B. Kose,Fabrizio Martino,Tatjana Petojevic,Ferdos Abid Ali,Julia Locke,Nele Tamberg,Andrea Nans,James M. Berger,Michael R. Botchan,Hasan Yardimci,Alessandro Costa
出处
期刊:Cell Reports
[Cell Press]
日期:2019-09-01
卷期号:28 (10): 2673-2688.e8
被引量:74
标识
DOI:10.1016/j.celrep.2019.07.104
摘要
In the eukaryotic replisome, DNA unwinding by the Cdc45-MCM-Go-Ichi-Ni-San (GINS) (CMG) helicase requires a hexameric ring-shaped ATPase named minichromosome maintenance (MCM), which spools single-stranded DNA through its central channel. Not all six ATPase sites are required for unwinding; however, the helicase mechanism is unknown. We imaged ATP-hydrolysis-driven translocation of the CMG using cryo-electron microscopy (cryo-EM) and found that the six MCM subunits engage DNA using four neighboring protomers at a time, with ATP binding promoting DNA engagement. Morphing between different helicase states leads us to suggest a non-symmetric hand-over-hand rotary mechanism, explaining the asymmetric requirements of ATPase function around the MCM ring of the CMG. By imaging of a higher-order replisome assembly, we find that the Mrc1-Csm3-Tof1 fork-stabilization complex strengthens the interaction between parental duplex DNA and the CMG at the fork, which might support the coupling between DNA translocation and fork unwinding.
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