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真核生物CMG解旋酶在复制叉处的结构及其对复制体结构和起始点引发的影响

Structure of eukaryotic CMG helicase at a replication fork and implications to replisome architecture and origin initiation.

作者信息

Georgescu Roxana, Yuan Zuanning, Bai Lin, de Luna Almeida Santos Ruda, Sun Jingchuan, Zhang Dan, Yurieva Olga, Li Huilin, O'Donnell Michael E

机构信息

Department of DNA Replication, The Rockefeller University, New York, NY 10065.

Howard Hughes Medical Institute, The Rockefeller University, New York, NY 10065.

出版信息

Proc Natl Acad Sci U S A. 2017 Jan 31;114(5):E697-E706. doi: 10.1073/pnas.1620500114. Epub 2017 Jan 17.

Abstract

The eukaryotic CMG (Cdc45, Mcm2-7, GINS) helicase consists of the Mcm2-7 hexameric ring along with five accessory factors. The Mcm2-7 heterohexamer, like other hexameric helicases, is shaped like a ring with two tiers, an N-tier ring composed of the N-terminal domains, and a C-tier of C-terminal domains; the C-tier contains the motor. In principle, either tier could translocate ahead of the other during movement on DNA. We have used cryo-EM single-particle 3D reconstruction to solve the structure of CMG in complex with a DNA fork. The duplex stem penetrates into the central channel of the N-tier and the unwound leading single-strand DNA traverses the channel through the N-tier into the C-tier motor, 5'-3' through CMG. Therefore, the N-tier ring is pushed ahead by the C-tier ring during CMG translocation, opposite the currently accepted polarity. The polarity of the N-tier ahead of the C-tier places the leading Pol ε below CMG and Pol α-primase at the top of CMG at the replication fork. Surprisingly, the new N-tier to C-tier polarity of translocation reveals an unforeseen quality-control mechanism at the origin. Thus, upon assembly of head-to-head CMGs that encircle double-stranded DNA at the origin, the two CMGs must pass one another to leave the origin and both must remodel onto opposite strands of single-stranded DNA to do so. We propose that head-to-head motors may generate energy that underlies initial melting at the origin.

摘要

真核生物的CMG(Cdc45、Mcm2 - 7、GINS)解旋酶由Mcm2 - 7六聚体环以及五个辅助因子组成。Mcm2 - 7异源六聚体与其他六聚体解旋酶一样,形状像一个有两层的环,一层是由N端结构域组成的N层环,另一层是由C端结构域组成的C层;C层包含动力结构域。原则上,在DNA上移动时,任何一层都可能在另一层之前移位。我们利用冷冻电镜单颗粒三维重建技术解析了与DNA叉结构复合的CMG的结构。双链茎穿透N层的中央通道,解开的前导单链DNA通过N层通道进入C层动力结构域,通过CMG从5'端到3'端移动。因此,在CMG移位过程中,N层环被C层环向前推,与目前公认的极性相反。N层在C层之前的极性使得前导的Pol ε位于CMG下方,而Pol α - 引发酶位于复制叉处CMG的顶部。令人惊讶的是,新的从N层到C层的移位极性揭示了起始点处一种意想不到的质量控制机制。因此,在起始点处组装成双链DNA环绕的头对头CMG时,两个CMG必须相互通过才能离开起始点,并且两者都必须重塑到单链DNA的相反链上才能这样做。我们提出,头对头的动力结构域可能产生能量,这是起始点处初始解链的基础。

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