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Mg2+ 离子在 I 类 RNA 聚合酶核酶中的结构作用:分子模拟研究。

The structural role of Mg2+ ions in a class I RNA polymerase ribozyme: a molecular simulation study.

机构信息

CNR-IOM-Democritos National Simulation Center C/o International Studies for Advanced Studies (SISSA/ISAS), Via Bonomea 265, 34165, Trieste, Italy.

出版信息

J Phys Chem B. 2012 Feb 23;116(7):2259-68. doi: 10.1021/jp206475d. Epub 2012 Feb 10.

DOI:10.1021/jp206475d
PMID:22268599
Abstract

According to the RNA world hypothesis, self-replicating ribozymes, storing the genetic information and being able to perform catalysis, were the constituents of the first living organisms. In particular, RNA polymerase ribozymes, similar to current proteinaceous enzymatic polymerases, may have been able to promote the synthesis of RNA strands in a primitive world. Polymerase catalysis is usually assisted by Mg(2+) ions, but it is not always trivial to find out experimentally the number of Mg(2+) ions placed in the active site as well as the identity and the number of their coordination ligands. Here, we addressed this issue in an artificial class I ligase ribozyme. On the basis of a recently solved crystal structure, we constructed computational models of reactant and product states of this ribozyme, considering monometallic and bimetallic species. Our models were relaxed by force field based molecular dynamics (MD) simulations and mixed quantum-classical (QM/MM) MD. The structural and dynamical properties of these models were consistent with experimental data and were validated by a comparison with the catalytic sites of proteinaceous DNA and RNA polymerases. Consistently with enzymatic polymerases, our results suggest that class I RNA ligases most probably contain two magnesium ions in the active site and they may, therefore, catalyze the junction of two RNA strands via "a two Mg(2+) ions" mechanism.

摘要

根据 RNA 世界假说,自我复制的核酶,储存遗传信息并能进行催化,是最早的生命有机体的组成部分。特别是,类似于当前蛋白质酶聚合酶的 RNA 聚合酶核酶,可能能够在原始世界中促进 RNA 链的合成。聚合酶催化通常需要 Mg(2+)离子的辅助,但要实验确定放置在活性部位的 Mg(2+)离子的数量以及其配位配体的身份和数量并不总是那么简单。在这里,我们在一种人工的 I 类连接酶核酶中解决了这个问题。基于最近解决的晶体结构,我们构建了该核酶反应物和产物状态的计算模型,考虑了单金属和双金属物种。我们的模型通过基于力场的分子动力学(MD)模拟和混合量子经典(QM/MM)MD 进行了松弛。这些模型的结构和动力学性质与实验数据一致,并通过与蛋白质 DNA 和 RNA 聚合酶的催化位点进行比较得到了验证。与酶聚合酶一致,我们的结果表明,I 类 RNA 连接酶最有可能在活性部位包含两个镁离子,因此它们可能通过“双镁离子”机制催化两条 RNA 链的连接。

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