Department of Therapeutic Radiology, Yale University School of Medicine, New Haven, Connecticut 06520, USA.
Biochemistry. 2010 Mar 23;49(11):2326-34. doi: 10.1021/bi901735a.
DNA polymerase beta (pol beta) is the key gap-filling polymerase in base excision repair, the DNA repair pathway responsible for repairing up to 20000 endogenous lesions per cell per day. Pol beta is also widely used as a model polymerase for structure and function studies, and several structural regions have been identified as being critical for the fidelity of the enzyme. One of these regions is the hydrophobic hinge, a network of hydrophobic residues located between the palm and fingers subdomains. Previous work by our lab has shown that hinge residues Y265, I260, and F272 are critical for polymerase fidelity by functioning in discrimination of the correct from incorrect dNTP during ground state binding. Our work aimed to elucidate the role of hinge residue I174 in polymerase fidelity. To study this residue, we conducted a genetic screen to identify mutants with a substitution at residue I174 that resulted in a mutator polymerase. We then chose the mutator mutant I174S for further study and found that it follows the same general kinetic pathway as and has an overall protein folding similar to that of wild-type (WT) pol beta. Using single-turnover kinetic analysis, we found that I174S exhibits decreased fidelity when inserting a nucleotide opposite a template base G, and this loss of fidelity is due primarily to a loss of discrimination during ground state dNTP binding. Molecular dynamics simulations show that mutation of residue I174 to serine results in an overall tightening of the hinge region, resulting in aberrant protein dynamics and fidelity. These results point to the hinge region as being critical in the maintenance of the proper geometry of the dNTP binding pocket.
DNA 聚合酶β(polβ)是碱基切除修复中关键的填补缺口聚合酶,该修复途径负责修复每个细胞每天多达 20000 个内源性损伤。polβ也被广泛用作结构和功能研究的模型聚合酶,已经确定了几个结构区域对酶的保真度至关重要。其中一个区域是疏水铰链,这是一个位于手掌和手指亚结构域之间的疏水残基网络。我们实验室的先前工作表明,铰链残基 Y265、I260 和 F272 在结合状态下通过区分正确和不正确的 dNTP 来发挥作用,对于聚合酶的保真度至关重要。我们的工作旨在阐明铰链残基 I174 在聚合酶保真度中的作用。为了研究这个残基,我们进行了遗传筛选,以鉴定出在残基 I174 处发生取代导致聚合酶突变的突变体。然后,我们选择突变体 I174S 进行进一步研究,发现它遵循与野生型(WT)polβ相同的一般动力学途径,并且整体蛋白折叠与 WT polβ相似。使用单轮动力学分析,我们发现 I174S 在插入模板碱基 G 对面的核苷酸时表现出降低的保真度,这种保真度的丧失主要是由于在结合状态下 dNTP 结合时的区分丧失。分子动力学模拟表明,将残基 I174 突变为丝氨酸会导致铰链区域整体收紧,导致异常的蛋白质动力学和保真度。这些结果表明铰链区域对于维持 dNTP 结合口袋的适当几何形状至关重要。