SSB promotes DnaB helicase passage through DnaA complexes at the replication origin oriC for bidirectional replication.

IF 2.1 4区 生物学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY Journal of biochemistry Pub Date : 2025-01-08 DOI:10.1093/jb/mvaf003
Yusuke Akama, Ryusei Yoshida, Shogo Ozaki, Hironori Kawakami, Tsutomu Katayama
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Abstract

For bidirectional replication in E. coli, higher-order complexes are formed at the replication origin oriC by the initiator protein DnaA, which locally unwinds the left edge of oriC to promote the loading of two molecules of DnaB onto the unwound region via dynamic interactions with the helicase-loader DnaC and the oriC-bound DnaA complex. One of the two helicases must translocate rightwards through oriC-bound DnaA complex. Here, we used a synthetic forked oriC DNA, which mimics the unwound state of oriC, to examine DnaB translocation through the oriC-bound DnaA complex. We found that DnaB helicase alone cannot pass through the oriC-bound DnaA complex without the help of single strand-binding protein (SSB). In the presence of SSB, DnaB passed through this complex along with its helicase function, releasing DnaA molecules. In addition, DnaB helicase activity is known to be inhibited by oversupply of DnaC, but this inhibition was relieved by SSB. These results suggest a mechanism that when two DnaB helicases are loaded at oriC, one translocates leftwards to expand the DnaA-unwound region and allows SSB binding to the single-stranded DNA, and such SSB molecules then stimulate translocation of the other helicase rightwards through the oriC-bound DnaA complex.

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SSB促进dna解旋酶通过复制起点处的dna复合体进行双向复制。
对于大肠杆菌的双向复制,启动蛋白DnaA在复制起点oriC上形成高阶复合物,通过与解旋酶装载物DnaC和oriC结合的DnaA复合物的动态相互作用,局部解绕oriC的左边缘,促进两个DnaB分子加载到解绕区域。两个解旋酶中的一个必须通过oric结合的dna复合体向右转位。在这里,我们使用合成的分叉oriC DNA,模拟oriC的解绕状态,通过oriC结合的DNA复合体来检测DNA的易位。我们发现,如果没有单链结合蛋白(SSB)的帮助,单独的dna解旋酶不能通过oric结合的dna复合体。在SSB存在的情况下,DnaB与其解旋酶功能一起通过该复合体,释放dna分子。此外,已知DnaC供过于求会抑制DnaB解旋酶活性,但SSB可以缓解这种抑制。这些结果表明,当两个DNA解旋酶在oriC上加载时,其中一个向左移位以扩大DNA解绕区域,并允许SSB与单链DNA结合,然后这样的SSB分子刺激另一个解旋酶通过oriC结合的DNA复合体向右移位。
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来源期刊
Journal of biochemistry
Journal of biochemistry 生物-生化与分子生物学
CiteScore
4.80
自引率
3.70%
发文量
101
审稿时长
4-8 weeks
期刊介绍: The Journal of Biochemistry founded in 1922 publishes the results of original research in the fields of Biochemistry, Molecular Biology, Cell, and Biotechnology written in English in the form of Regular Papers or Rapid Communications. A Rapid Communication is not a preliminary note, but it is, though brief, a complete and final publication. The materials described in Rapid Communications should not be included in a later paper. The Journal also publishes short reviews (JB Review) and papers solicited by the Editorial Board.
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