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首页> 外文期刊>Proteins: Structure, Function, and Genetics >Effect of oxidatively damaged DNA on the active site preorganization during nucleotide incorporation in a high fidelity polymerase from Bacillus stearothermophilus.
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Effect of oxidatively damaged DNA on the active site preorganization during nucleotide incorporation in a high fidelity polymerase from Bacillus stearothermophilus.

机译:氧化损伤的DNA对来自嗜热脂肪芽孢杆菌的高保真聚合酶中核苷酸掺入过程中活性位点预组织的影响。

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摘要

We study the effect of the oxidative lesion 8-oxoguanine (8oxoG) on the preorganization of the active site for DNA replication in the closed (active) state of the Bacillus fragment (BF), a Klenow analog from Bacillus stearothermophilus. Our molecular dynamics and free energy simulations of explicitly solvated model ternary complexes of BF bound to correct dCTP/incorrect dATP opposite guanine (G) and 8oxoG bases in DNA suggest that the lesion introduces structural and energetic changes at the catalytic site to favor dATP insertion. Despite the formation of a stable Watson-Crick pairing in the 8oxoG:dCTP system, the catalytic geometry is severely distorted to possibly slow down catalysis. Indeed, our calculated free energy landscapes associated with active site preorganization suggest additional barriers to assemble an efficient catalytic site, which need to be overcome during dCTP incorporation opposite 8oxoG relative to that opposite undamaged G. In contrast, the catalytic geometry for the Hoogsteen pairing in the 8oxoG:dATP system is highly organized and poised for efficient nucleotide incorporation via the "two-metal-ion" catalyzed phosphoryl transfer mechanism. However, the free energy calculations suggest that the catalytic geometry during dATP incorporation opposite 8oxoG is considerably less plastic than that during dCTP incorporation opposite G despite a very similar, well organized catalytic site for both systems. A correlation analysis of the dynamics trajectories suggests the presence of significant coupling between motions of the polymerase fingers and the primary distance for nucleophilic attack (i.e., between the terminal primer O3' and the dNTP P(alpha.) atoms) during correct dCTP incorporation opposite undamaged G. This coupling is shown to be disrupted during nucleotide incorporation by the polymerase with oxidatively damaged DNA/dNTP substrates. We also suggest that the lesion affects DNA interactions with key polymerase residues, thereby affecting the enzymes ability to discriminate against non-complementary DNA/dNTP substrates. Taken together, our results provide a unified structural, energetic, and dynamic platform to rationalize experimentally observed relative nucleotide incorporation rates for correct dCTP/incorrect dATP insertion opposite an undamaged/oxidatively damaged template G by BF.
机译:我们研究了氧化损伤8-氧鸟嘌呤(8oxoG)对芽孢杆菌片段(BF),来自嗜热脂肪芽孢杆菌的Klenow类似物的封闭(活性)状态下DNA复制的活性位点的预组织的影响。我们的高能溶剂化高炉模型三元复合物的分子动力学和自由能模拟表明,BF与DNA中的鸟嘌呤(G)和8oxoG碱基对位的正确dCTP /错误的dATP结合在一起,表明该病灶在催化位点引入了结构和能量变化,有利于dATP的插入。尽管在8oxoG:dCTP系统中形成了稳定的Watson-Crick配对,但催化几何结构严重变形,可能会减慢催化作用。的确,我们计算出的与活性位点预组织相关的自由能态图表明,组装有效催化位点的其他障碍,相对于相对于未破坏的G而言,在与8oxoG相对的dCTP掺入过程中需要克服。 8oxoG:dATP系统具有高度的组织能力,可以通过“双金属离子”催化的磷酸基转移机制有效地整合核苷酸。然而,自由能计算表明,尽管两个系统的催化位点非常相似,但组织良好,但与8oxoG相对的dATP掺入过程中的催化几何形状却比8G氧代G的dCTP掺入过程中的催化几何结构要少得多。动力学轨迹的相关性分析表明,在正确的dCTP掺入过程中,聚合酶指的运动与亲核攻击的主要距离(即末端引物O3'和dNTPPα原子之间)之间存在明显的耦合已显示,在聚合酶与氧化损坏的DNA / dNTP底物的核苷酸掺入过程中,这种偶联被破坏。我们还建议,病变会影响DNA与关键聚合酶残基的相互作用,从而影响酶区分非互补DNA / dNTP底物的能力。两者合计,我们的结果提供了一个统一的结构,能量和动态平台,以合理化实验观察到的相对核苷酸掺入率,以正确dCTP /不正确dATP插入与BF对未损坏/氧化损坏的模板G相对。

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