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Processive searching ability varies among members of the gap-filling DNA polymerase X family

机译:缺口搜索DNA聚合酶X家族成员之间的过程搜索能力各不相同

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摘要

DNA repair proteins must locate rare damaged sites within the genome. DNA polymerase β (Pol β), a member of the DNA polymerase X family that is involved in base excision repair, uses a processive hopping search mechanism to locate substrates. This effectively enhances its search footprint on DNA, increasing the probability of locating damaged sites. Processive searching has been reported or proposed for many DNA-binding proteins, raising the question of how widespread or specific to certain enzymes the ability to perform this function is. To provide insight into this question, we compared the ability of three homologous DNA Pol X family members to perform a processive search for 1-nucleotide gaps in DNA using a previously developed biochemical assay. We found that at near-predicted physiological ionic strengths, the intramolecular searching ability of Pol β is at least 4-fold higher than that of Pol μ and ∼2-fold higher than that of Pol λ. Pol β also was able to perform intersegmental transfer with the intersegmental searching ability of Pol β being at least 6- and ∼2-fold higher than that of Pols μ and λ, respectively. Mutational analysis suggested that differences in the N-terminal domains of these polymerases are responsible for the varying degrees of searching competence. Of note, the differences in processive searching ability observed among the DNA Pol X family members correlated with their proposed biological functions in base excision repair and nonhomologous end joining.
机译:DNA修复蛋白必须在基因组中定位罕见的受损位点。 DNA聚合酶X(Polβ)是参与碱基切除修复的DNA聚合酶X家族的成员,它使用连续跳跃搜索机制来定位底物。这有效地增加了其在DNA上的搜索范围,增加了定位受损位点的可能性。已经报道或提议对许多DNA结合蛋白进行过程搜索,这提出了执行这种功能的能力对某些酶的广泛性或特异性的问题。为了提供对这个问题的见解,我们比较了三个同源DNA Pol X家族成员使用先前开发的生化分析对DNA中的1个核苷酸缺口进行进行性搜索的能力。我们发现,在接近预期的生理离子强度下,Polβ的分子内搜索能力比Polμ至少高4倍,比Polλ至少高2倍。 Polβ还能够执行跨段转移,Polβ的段间搜索能力分别比Polsμ和λ高至少6倍和2倍左右。突变分析表明,这些聚合酶N末端结构域的差异是造成搜索能力不同程度的原因。值得注意的是,DNA Pol X家族成员之间观察到的进行性搜索能力的差异与其在碱基切除修复和非同源末端连接中的拟议生物学功能有关。

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