首页> 美国卫生研究院文献>The Journal of Biological Chemistry >Local Conformations and Competitive Binding Affinities of Single- and Double-stranded Primer-Template DNA at the Polymerization and Editing Active Sites of DNA Polymerases
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Local Conformations and Competitive Binding Affinities of Single- and Double-stranded Primer-Template DNA at the Polymerization and Editing Active Sites of DNA Polymerases

机译:单链和双链引物模板DNA在聚合和编辑DNA聚合酶活性位点的局部构象和竞争结合亲和力。

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摘要

In addition to their capacity for template-directed 5′ → 3′ DNA synthesis at the polymerase (pol) site, DNA polymerases have a separate 3′ → 5′ exonuclease (exo) editing activity that is involved in assuring the fidelity of DNA replication. Upon misincorporation of an incorrect nucleotide residue, the 3′ terminus of the primer strand at the primer-template (P/T) junction is preferentially transferred to the exo site, where the faulty residue is excised, allowing the shortened primer to rebind to the template strand at the pol site and incorporate the correct dNTP. Here we describe the conformational changes that occur in the primer strand as it shuttles between the pol and exo sites of replication-competent Klenow and Klentaq DNA polymerase complexes in solution and use these conformational changes to measure the equilibrium distribution of the primer between these sites for P/T DNA constructs carrying both matched and mismatched primer termini. To this end, we have measured the fluorescence and circular dichroism spectra at wavelengths of >300 nm for conformational probes comprising pairs of 2-aminopurine bases site-specifically replacing adenine bases at various positions in the primer strand of P/T DNA constructs bound to DNA polymerases. Control experiments that compare primer conformations with available x-ray structures confirm the validity of this approach. These distributions and the conformational changes in the P/T DNA that occur during template-directed DNA synthesis in solution illuminate some of the mechanisms used by DNA polymerases to assure the fidelity of DNA synthesis.
机译:除了可在聚合酶(pol)位点进行模板定向5'→3'DNA合成的能力外,DNA聚合酶还具有独立的3'→5'核酸外切酶(exo)编辑活性,可确保DNA复制的准确性。 。一旦错误地掺入了不正确的核苷酸残基,引物链在引物-模板(P / T)交界处的3'末端优先转移至外切位点,在该位点切除有缺陷的残基,从而使缩短的引物重新结合至pol位点的模板链,并结合正确的dNTP。在这里,我们描述了引物链在溶液中具有复制功能的Klenow和Klentaq DNA聚合酶复合物的pol和exo位点之间穿梭时发生的构象变化,并使用这些构象变化来测量引物链在这些位点之间的平衡分布携带匹配和不匹配的引物末端的P / T DNA构建体。为此,我们已经测量了构象探针在大于300 nm的波长处的荧光和圆二色性光谱,该构象探针包含成对的2-氨基嘌呤碱基,这些碱基在结合到P / T DNA构建体的引物链中各个位置的位点上专门置换腺嘌呤碱基DNA聚合酶。将引物构象与可用的X射线结构进行比较的对照实验证实了该方法的有效性。在溶液中由模板指导的DNA合成过程中发生的这些分布和P / T DNA的构象变化,阐明了DNA聚合酶用于确保DNA合成保真度的某些机制。

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