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Kinetic Mechanism of RNA Helix-Terminal Basepairing—A Kinetic Minima Network Analysis

机译:RNA Helix-inersal Basepairing的动力学机制 - 动力学最小值网络分析

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摘要

RNA functions are often kinetically controlled. The folding kinetics of RNAs involves global structural changes and local nucleotide movement, such as base flipping. The most elementary step in RNA folding is the closing and opening of a basepair. By integrating molecular dynamics simulation, master equation, and kinetic Monte Carlo simulation, we investigate the kinetics mechanism of RNA helix-terminal basepairing. The study reveals a six-state folding scheme with three dominant folding pathways of tens, hundreds, and thousands of nanoseconds of folding timescales, respectively. The overall kinetics is rate limited by the detrapping of a misfolded state with the overall folding time of 10−5 s. Moreover, the analysis examines the different roles of the various driving forces, such as the basepairing and stacking interactions and the ion binding/dissociation effects on structural changes. The results may provide useful insights for developing a basepair opening/closing rate model and further kinetics models of large RNAs.
机译:RNA功能通常是动力学控制的。 RNA的折叠动力学涉及全局结构变化和局部核苷酸运动,例如碱度翻转。 RNA折叠中最基本的步骤是基座的闭合和打开。通过整合分子动力学模拟,母版方程和动力学蒙特卡罗模拟,研究RNA Helix-incastAiring的动力学机制。该研究揭示与数十,数百,数千分别折叠的时间尺度,纳秒的三大主导折叠路径六个状态折叠方案。整个动力学是通过折叠错误的状态的速度限制,其总折叠时间为10-5秒。此外,分析检查了各种驱动力的不同作用,例如基础大学和堆叠相互作用以及对结构变化的离子结合/解离效果。结果可以为开发基座开发/关闭率模型和大型rnas的进一步动力学模型提供有用的见解。

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