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Biochemical Characterization of DNA Damage Checkpoint Complexes: Clamp Loader and Clamp Complexes with Specificity for 5′ Recessed DNA

机译:DNA损伤检查点复合物的生化特性:钳装载器和对5'隐性DNA具有特异性的钳复合物

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摘要

The cellular pathways involved in maintaining genome stability halt cell cycle progression in the presence of DNA damage or incomplete replication. Proteins required for this pathway include Rad17, Rad9, Hus1, Rad1, and Rfc-2, Rfc-3, Rfc-4, and Rfc-5. The heteropentamer replication factor C (RFC) loads during DNA replication the homotrimer proliferating cell nuclear antigen (PCNA) polymerase clamp onto DNA. Sequence similarities suggest the biochemical functions of an RSR (Rad17–Rfc2–Rfc3–Rfc4–Rfc5) complex and an RHR heterotrimer (Rad1–Hus1–Rad9) may be similar to that of RFC and PCNA, respectively. RSR purified from human cells loads RHR onto DNA in an ATP-, replication protein A-, and DNA structure-dependent manner. Interestingly, RSR and RFC differed in their ATPase activities and displayed distinct DNA substrate specificities. RSR preferred DNA substrates possessing 5′ recessed ends whereas RFC preferred 3′ recessed end DNA substrates. Characterization of the biochemical loading reaction executed by the checkpoint clamp loader RSR suggests new insights into the mechanisms underlying recognition of damage-induced DNA structures and signaling to cell cycle controls. The observation that RSR loads its clamp onto a 5′ recessed end supports a potential role for RHR and RSR in diverse DNA metabolism, such as stalled DNA replication forks, recombination-linked DNA repair, and telomere maintenance, among other processes.
机译:在DNA损伤或复制不完全的情况下,参与维持基因组稳定性的细胞途径可阻止细胞周期进程。该途径所需的蛋白质包括Rad17,Rad9,Hus1,Rad1和Rfc-2,Rfc-3,Rfc-4和Rfc-5。异戊二烯复制因子C(RFC)在DNA复制过程中加载同源三聚体增殖细胞核抗原(PCNA)聚合酶夹在DNA上。序列相似性表明RSR(Rad17–Rfc2–Rfc3–Rfc4–Rfc5)复合物的生化功能和RHR异三聚体(Rad1–Hus1–Rad9)可能分别类似于RFC和PCNA。从人细胞中纯化的RSR将RHR以ATP,复制蛋白A和DNA结构依赖性的方式加载到DNA上。有趣的是,RSR和RFC的ATPase活性不同,并且显示出不同的DNA底物特异性。 RSR优选具有5'凹入末端的DNA底物,而RFC优选3'凹入末端的DNA底物。由检查点钳式装载机RSR执行的生化装载反应的特征表明,对破坏诱导的DNA结构的识别和对细胞周期控制的信号传递的潜在机制的新见解。 RSR将其夹具加载到5'凹入末端的观察结果支持RHR和RSR在各种DNA代谢中的潜在作用,例如停滞的DNA复制叉,重组连接的DNA修复和端粒维护等。

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  • 作者

    Ellison Viola; Stillman Bruce;

  • 作者单位
  • 年度 2003
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  • 原文格式 PDF
  • 正文语种 {"code":"en","name":"English","id":9}
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