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首页> 外文期刊>Nucleic acids research >Regulation of B family DNA polymerase fidelity by a conserved active site residue: characterization of M644W, M644L and M644F mutants of yeast DNA polymerase ε
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Regulation of B family DNA polymerase fidelity by a conserved active site residue: characterization of M644W, M644L and M644F mutants of yeast DNA polymerase ε

机译:保守的活性位点残基对B族DNA聚合酶保真度的调节:酵母DNA聚合酶ε的M644W,M644L和M644F突变体的表征

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To better understand the functions and fidelity of DNA polymerase ε (Pol ε), we report here on the fidelity of yeast Pol ε mutants with leucine, tryptophan or phenylalanine replacing Met644. The Met644 side chain interacts with an invariant tyrosine that contacts the sugar of the incoming dNTP. M644W and M644L Pol ε synthesize DNA with high fidelity, but M644F Pol ε has reduced fidelity resulting from strongly increased misinsertion rates. When Msh6-dependent repair of replication errors is defective, the mutation rate of a pol2-M644F strain is 16-fold higher than that of a strain with wild-type Pol ε. In conjunction with earlier studies of low-fidelity mutants with replacements for the homologous amino acid in yeast Pol α (L868M/F) and Pol δ (L612M), these data indicate that the active site location occupied by Met644 in Pol ε is a key determinant of replication fidelity by all three B family replicative polymerases. Interestingly, error specificity of M644F Pol ε is distinct from that of L868M/F Pol α or L612M Pol δ, implying that each polymerase has different active site geometry, and suggesting that these polymerase alleles may generate distinctive mutational signatures for probing functions in vivo.
机译:为了更好地了解DNA聚合酶ε(Polε)的功能和保真度,我们在此报告了用亮氨酸,色氨酸或苯丙氨酸替代Met644的酵母Polε突变体的保真度。 Met644侧链与不变的酪氨酸相互作用,后者与进入的dNTP的糖接触。 M644W和M644L Polε可以高保真地合成DNA,但是M644F Polε的保真度降低是由于误插入率大大提高所致。当Msh6依赖的复制错误修复存在缺陷时,pol2-M644F菌株的突变率比野生型Polε的突变率高16倍。结合低保真突变体的早期研究,该突变体可替代酵母Polα(L868M / F)和Polδ(L612M)中的同源氨基酸,这些数据表明Met644在Polε中占据的活性位点是关键决定所有三个B族复制聚合酶的复制保真度。有趣的是,M644F Polε的错误特异性不同于L868M / F Polα或L612M Polδ的错误特异性,这意味着每种聚合酶均具有不同的活性位点几何形状,并暗示这些聚合酶等位基因可能会产生独特的突变特征,以在体内探测功能。

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