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Role of Mg~(2+) in Hammerhead Ribozyme Catalysis from Molecular Simulation

机译:分子模拟中Mg〜(2+)在锤头状核酶催化中的作用

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Molecular dynamics simulations have been performed to investigate the role of Mg~(2+) in the full-length hammerhead ribozyme cleavage reaction. In particular, the aim of this work is to characterize the binding mode and conformational events that give rise to catalytically active conformations and stabilization of the transition state. Toward this end, a series of eight 12 ns molecular dynamics simulations have been performed with different divalent metal binding occupations for the reactant, early and late transition state using recently developed force field parameters for metal ions and reactive intermediates in RNA catalysis. In addition, hybrid QM/MM calculations of the early and late transition state were performed to study the proton-transfer step in general acid catalysis that is facilitated by the catalytic Mg~(2+) ion. The simulations suggest that Mg~(2+) is profoundly involved in the hammerhead ribozyme mechanism both at structural and catalytic levels. Binding of Mg~(2+) in the active site plays a key structural role in the stabilization of stem I and II and to facilitate formation of near attack conformations and interactions between the nucleophile and G12, the implicated general base catalyst. In the transition state, Mg~(2+) binds in a bridging position where it stabilizes the accumulated charge of the leaving group while interacting with the 2'OH of G8, the implicated general acid catalyst. The QM/MM simulations provide support that, in the late transition state, the 2'OH of G8 can transfer a proton to the leaving group while directly coordinating the bridging Mg2+ ion. The present study provides evidence for the role of Mg~(2+) in hammerhead ribozyme catalysis. The proposed simulation model reconciles the interpretation of available experimental structural and biochemical data, and provides a starting point for more detailed investigation of the chemical reaction path with combined QM/MM methods.
机译:已经进行了分子动力学模拟以研究Mg〜(2+)在全长锤头状核酶裂解反应中的作用。特别地,这项工作的目的是表征引起催化活性构象和过渡态稳定的结合模式和构象事件。为此,使用最近开发的金属离子力场参数和RNA催化中的反应性中间体,对反应物,早期和晚期过渡态使用了不同的二价金属结合占据率,进行了一系列八个八个12 ns的分子动力学模拟。此外,还对早期和晚期过渡态进行了混合QM / MM计算,以研究一般的酸催化中Mg〜(2+)离子促进的质子转移步骤。模拟表明,Mg〜(2+)在结构和催化水平上都深刻参与了锤头状核酶的机理。 Mg〜(2+)在活性位点的结合在茎I和茎II的稳定中起关键结构作用,并促进亲核试剂与G12(涉及的一般碱催化剂)之间的近攻构象和相互作用的形成。在过渡态下,Mg〜(2+)结合在桥连位置上,在此位置上它稳定离去基团的累积电荷,同时与涉及的普通酸催化剂G8的2'OH相互作用。 QM / MM模拟提供了支持,即在后期过渡状态下,G8的2'OH可以将质子转移到离去基团,同时直接配位桥接Mg2 +离子。本研究为Mg〜(2+)在锤头状核酶催化中的作用提供了证据。拟议的仿真模型协调了对可用的实验结构和生化数据的解释,并为结合QM / MM方法更详细地研究化学反应路径提供了起点。

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