Venclovas C, Thelen M P
Molecular and Structural Biology Division, Biology and Biotechnology Research Program, Lawrence Livermore National Laboratory, Livermore, CA 94550, USA.
Nucleic Acids Res. 2000 Jul 1;28(13):2481-93. doi: 10.1093/nar/28.13.2481.
The repair of damaged DNA is coupled to the completion of DNA replication by several cell cycle checkpoint proteins, including, for example, in fission yeast Rad1(Sp), Hus1(Sp), Rad9(Sp) and Rad17(Sp). We have found that these four proteins are conserved with protein sequences throughout eukaryotic evolution. Using computational techniques, including fold recognition, comparative modeling and generalized sequence profiles, we have made high confidence structure predictions for the each of the Rad1, Hus1 and Rad9 protein families (Rad17(Sc), Mec3(Sc) and Ddc1(Sc) in budding yeast, respectively). Each of these families was found to share a common protein fold with that of PCNA, the sliding clamp protein that tethers DNA polymerase to its template. We used previously reported genetic and biochemical data for these proteins from yeast and human cells to predict a heterotrimeric PCNA-like ring structure for the functional Rad1/Rad9/Hus1 complex and to determine their exact order within it. In addition, for each individual protein family, contact regions with neighbors within the PCNA-like ring were identified. Based on a molecular model for Rad17(Sp), we concluded that members of this family, similar to the subunits of the RFC clamp-loading complex, are capable of coupling ATP binding with conformational changes required to load a sliding clamp onto DNA. This model substantiates previous findings regarding the behavior of Rad17 family proteins upon DNA damage and within the RFC complex of clamp-loading proteins.
受损DNA的修复与几种细胞周期检查点蛋白介导的DNA复制的完成相关联,这些蛋白包括例如裂殖酵母中的Rad1(Sp)、Hus1(Sp)、Rad9(Sp)和Rad17(Sp)。我们发现这四种蛋白质在整个真核生物进化过程中其蛋白质序列是保守的。利用包括折叠识别、比较建模和广义序列谱在内的计算技术,我们对Rad1、Hus1和Rad9蛋白家族(分别对应于芽殖酵母中的Rad17(Sc)、Mec3(Sc)和Ddc1(Sc))中的每一个都进行了高可信度的结构预测。发现这些家族中的每一个都与PCNA共享一种共同的蛋白质折叠,PCNA是一种滑动夹蛋白,它将DNA聚合酶与其模板相连。我们利用先前报道的来自酵母和人类细胞的这些蛋白质的遗传和生化数据,预测功能性Rad1/Rad9/Hus1复合物具有类似PCNA的异源三聚体环结构,并确定它们在其中的确切顺序。此外,对于每个单独的蛋白质家族,还确定了其在类似PCNA的环内与相邻蛋白的接触区域。基于Rad17(Sp)的分子模型,我们得出结论,该家族成员与RFC夹加载复合物的亚基类似,能够将ATP结合与将滑动夹加载到DNA上所需的构象变化偶联起来。该模型证实了先前关于Rad17家族蛋白在DNA损伤时以及在夹加载蛋白的RFC复合物中的行为的研究结果。