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Varying DNA base-pair size in subangstrom increments: Evidence for a loose, not large, active site in low-fidelity Dpo4 polymerase

机译:DNA碱基对大小的变化以亚埃为增量:低保真Dpo4聚合酶中存在一个宽松而不是大的活性位点的证据

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We describe the first systematic test of steric effects in the active site of a Y-family DNA polymerase, Dpo4. It has been hypothesized that low-fidelity repair polymerases in this family more readily accept damaged or mismatched base pairs because of a sterically more open active site, which might place lower geometric constraints on the incipient pair. We have tested the origin of low fidelity by use of five nonpolar thymidine analogues that vary in size by a total of 1.0 angstrom over the series. The efficiency and fidelity of base-pair synthesis was measured by steady-state kinetics for single-nucleotide insertions. Analogues were examined both as incoming deoxynucleoside triphosphate (dNTP) derivatives and as template bases. The results showed that Dpo4 preferred to pair the thymidine shape mimics with adenine and, surprisingly, the preferred size was at the center of the range, the same optimum size as recently found for the high-fidelity Klenow fragment (Kf) of Escherichia coli DNA Pol I. However, the size preference with Dpo4 was quite small, varying by a factor of only 30-35 from most to least efficient thymidine analogue. This is in marked contrast to Kf, which showed a rigid size preference, varying by 1100-fold from best to worst. The fidelity for the non-hydrogen-bonding analogues in pairing with A over T, C, or G was much lower in Dpo4 than in the previous high-fidelity enzyme. The data establish that, unlike Kf, Dpo4 has very low steric selectivity and that steric effects alone cannot explain the fidelity (albeit low) that Dpo4 has for a correct base pair; the findings suggest that hydrogen bonds may be important in determining the fidelity of this enzyme. The results suggest that the low steric selectivity of this enzyme is the result of a conformationally flexible or loose active site that adapts with small energetic cost to different base-pair sizes (as measured by the glycosidic C1'-C1' distance), rather than a spatially large active site.
机译:我们描述了Y系列DNA聚合酶Dpo4的活性位中的空间效应的第一个系统测试。据推测,由于空间上更开放的活性位点,该家族中的低保真修复聚合酶更容易接受受损或错配的碱基对,这可能在起始对上施加较低的几何约束。我们已经使用五个非极性胸苷类似物测试了低保真度的起源,它们在整个系列中的大小相差1.0埃。通过对单核苷酸插入的稳态动力学测量碱基对合成的效率和保真度。将类似物作为传入的脱氧核苷三磷酸(dNTP)衍生物和作为模板碱基进行检查。结果显示,Dpo4优选将胸苷形状模拟物与腺嘌呤配对,并且令人惊讶的是,优选大小在该范围的中心,与最近发现的大肠杆菌DNA高保真Klenow片段(Kf)的最佳大小相同。 PolI。但是,Dpo4的大小偏爱非常小,从最有效的胸苷类似物到最不有效的胸苷类似物,仅相差30-35倍。这与Kf形成鲜明对比,Kf表现出严格的尺寸偏好,从最佳到最差变化1100倍。在Dpo4中,与A配对的非氢键类似物的保真度在Dpo4中要比以前的高保真度酶低得多。数据表明,与Kf不同,Dpo4具有极低的空间选择性,仅空间效应不能解释Dpo4对正确碱基对的保真度(尽管较低)。这些发现表明,氢键对于确定这种酶的保真度可能很重要。结果表明该酶的低空间选择性是构象柔性或松散的活性位点的结果,该活性位点以较小的能量成本适应不同的碱基对大小(通过糖苷C1'-C1'距离测量),而不是空间上较大的活动站点。

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