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首页> 外文期刊>BMC Molecular Biology >Functional mapping of the fission yeast DNA polymerase δ B-subunit Cdc1 by site-directed and random pentapeptide insertion mutagenesis
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Functional mapping of the fission yeast DNA polymerase δ B-subunit Cdc1 by site-directed and random pentapeptide insertion mutagenesis

机译:通过定点和随机五肽插入诱变对裂变酵母DNA聚合酶δB亚基Cdc1的功能作图

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Background DNA polymerase δ plays an essential role in chromosomal DNA replication in eukaryotic cells, being responsible for synthesising the bulk of the lagging strand. In fission yeast, Pol δ is a heterotetrameric enzyme comprising four evolutionarily well-conserved proteins: the catalytic subunit Pol3 and three smaller subunits Cdc1, Cdc27 and Cdm1. Pol3 binds directly to the B-subunit, Cdc1, which in turn binds the C-subunit, Cdc27. Human Pol δ comprises the same four subunits, and the crystal structure was recently reported of a complex of human p50 and the N-terminal domain of p66, the human orthologues of Cdc1 and Cdc27, respectively.Results To gain insights into the structure and function of Cdc1, random and directed mutagenesis techniques were used to create a collection of thirty alleles encoding mutant Cdc1 proteins. Each allele was tested for function in fission yeast and for binding of the altered protein to Pol3 and Cdc27 using the two-hybrid system. Additionally, the locations of the amino acid changes in each protein were mapped onto the three-dimensional structure of human p50. The results obtained from these studies identify amino acid residues and regions within the Cdc1 protein that are essential for interaction with Pol3 and Cdc27 and for in vivo function. Mutations specifically defective in Pol3-Cdc1 interactions allow the identification of a possible Pol3 binding surface on Cdc1.Conclusion In the absence of a three-dimensional structure of the entire Pol δ complex, the results of this study highlight regions in Cdc1 that are vital for protein function in vivo and provide valuable clues to possible protein-protein interaction surfaces on the Cdc1 protein that will be important targets for further study.
机译:背景DNA聚合酶δ在真核细胞的染色体DNA复制中起着至关重要的作用,负责合成大部分滞后链。在裂变酵母中,Polδ是一种异四聚酶,包含四个进化上保守的蛋白质:催化亚基Pol3和三个较小的亚基Cdc1,Cdc27和Cdm1。 Pol3直接与B亚基Cdc1结合,而Bdc亚基又与C亚基Cdc27结合。人Polδ包含相同的四个亚基,最近报道了人p50和p66的N端结构域(分别为Cdc1和Cdc27的人类直向同源物)的复合物的晶体结构。结果为了深入了解结构和功能对于Cdc1,使用随机和定向诱变技术创建了30个编码突变Cdc1蛋白的等位基因。使用双杂交系统测试每个等位基因在裂殖酵母中的功能以及改变后的蛋白质与Pol3和Cdc27的结合。另外,将每种蛋白质中氨基酸变化的位置定位到人p50的三维结构上。从这些研究中获得的结果确定了Cdc1蛋白中的氨基酸残基和区域,这些残基和区域对于与Pol3和Cdc27相互作用以及体内功能至关重要。在Pol3-Cdc1相互作用中特别有缺陷的突变允许鉴定Cdc1上可能存在的Pol3结合表面。结论在缺乏整个Polδ复合物的三维结构的情况下,这项研究的结果突出了Cdc1中对于维持生命至关重要的区域。蛋白质在体内发挥功能,并为Cdc1蛋白质上可能的蛋白质-蛋白质相互作用表面提供有价值的线索,这将是进一步研究的重要目标。

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