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镁离子在DNA聚合酶β的构象闭合及活性位点组装中的关键作用

Critical role of magnesium ions in DNA polymerase beta's closing and active site assembly.

作者信息

Yang Linjing, Arora Karunesh, Beard William A, Wilson Samuel H, Schlick Tamar

机构信息

Department of Chemistry and Courant Institute of Mathematical Sciences, New York University, 251 Mercer Street, New York, New York 10012, USA.

出版信息

J Am Chem Soc. 2004 Jul 14;126(27):8441-53. doi: 10.1021/ja049412o.

Abstract

To dissect the effects of the nucleotide-binding and catalytic metal ions on DNA polymerase mechanisms for DNA repair and synthesis, aside from the chemical reaction, we investigate their roles in the conformational transitions between closed and open states and assembly/disassembly of the active site of polymerase beta/DNA complexes before and after the chemical reaction of nucleotide incorporation. Using dynamics simulations, we find that closing before chemical reaction requires both divalent metal ions in the active site while opening after the chemical reaction is triggered by release of the catalytic metal ion. The critical closing is stabilized by the interaction of the incoming nucleotide with conserved catalytic residues (Asp190, Asp192, Asp256) and the two functional magnesium ions; without the catalytic ion, other protein residues (Arg180, Arg183, Gly189) coordinate the incomer's triphosphate group through the nucleotide-binding ion. Because we also note microionic heterogeneity near the active site, Mg(2+) and Na(+) ions can diffuse into the active site relatively rapidly, we suggest that the binding of the catalytic ion itself is not a rate-limiting conformational or overall step. However, geometric adjustments associated with functional ions and proper positioning in the active site, including subtle but systematic motions of protein side chains (e.g., Arg258), define slow or rate-limiting conformational steps that may guide fidelity mechanisms. These sequential rearrangements are likely sensitively affected when an incorrect nucleotide approaches the active site. Our suggestion that subtle and slow adjustments of the nucleotide-binding and catalytic magnesium ions help guide polymerase selection for the correct nucleotide extends descriptions of polymerase pathways and underscores the importance of the delicate conformational events both before and after the chemical reaction to polymerase efficiency and fidelity mechanisms.

摘要

为剖析核苷酸结合和催化金属离子对DNA聚合酶进行DNA修复和合成机制的影响,除化学反应外,我们研究了它们在核苷酸掺入化学反应前后,聚合酶β/DNA复合物活性位点的闭合与开放状态之间的构象转变以及组装/拆卸过程中的作用。通过动力学模拟,我们发现化学反应前的闭合需要活性位点中的两个二价金属离子,而化学反应后的开放是由催化金属离子的释放触发的。关键的闭合通过进入的核苷酸与保守催化残基(Asp190、Asp192、Asp256)以及两个功能性镁离子的相互作用得以稳定;没有催化离子时,其他蛋白质残基(Arg180、Arg183、Gly189)通过核苷酸结合离子与进入者的三磷酸基团配位。由于我们还注意到活性位点附近存在微离子异质性,Mg(2+)和Na(+)离子可相对快速地扩散到活性位点,我们认为催化离子本身的结合不是限速的构象或整体步骤。然而,与功能性离子相关的几何调整以及在活性位点的正确定位,包括蛋白质侧链(如Arg258)的细微但系统运动,定义了可能指导保真机制的缓慢或限速构象步骤。当错误的核苷酸接近活性位点时,这些顺序重排可能会受到敏感影响。我们提出核苷酸结合和催化镁离子的细微和缓慢调整有助于指导聚合酶选择正确的核苷酸,这扩展了对聚合酶途径的描述,并强调了化学反应前后微妙的构象事件对聚合酶效率和保真机制的重要性。

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