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利用监督分子动力学(SuMD)模拟探索RNA识别机制:迈向核糖核酸靶向分子的合理设计?

Exploring the RNA-Recognition Mechanism Using Supervised Molecular Dynamics (SuMD) Simulations: Toward a Rational Design for Ribonucleic-Targeting Molecules?

作者信息

Bissaro Maicol, Sturlese Mattia, Moro Stefano

机构信息

Molecular Modeling Section, Department of Pharmaceutical and Pharmacological Sciences, University of Padova, Padua, Italy.

出版信息

Front Chem. 2020 Feb 27;8:107. doi: 10.3389/fchem.2020.00107. eCollection 2020.

Abstract

Although proteins have represented the molecular target of choice in the development of new drug candidates, the pharmaceutical importance of ribonucleic acids has gradually been growing. The increasing availability of structural information has brought to light the existence of peculiar three-dimensional RNA arrangements, which can, contrary to initial expectations, be recognized and selectively modulated through small chemical entities or peptides. The application of classical computational methodologies, such as molecular docking, for the rational development of RNA-binding candidates is, however, complicated by the peculiarities characterizing these macromolecules, such as the marked conformational flexibility, the singular charges distribution, and the relevant role of solvent molecules. In this work, we have thus validated and extended the applicability domain of SuMD, an all-atoms molecular dynamics protocol that allows to accelerate the sampling of molecular recognition events on a nanosecond timescale, to ribonucleotide targets of pharmaceutical interest. In particular, we have proven the methodological ability by reproducing the binding mode of viral or prokaryotic ribonucleic complexes, as well as that of artificially engineered aptamers, with an impressive degree of accuracy.

摘要

尽管蛋白质一直是新药候选物开发中首选的分子靶点,但核糖核酸在制药领域的重要性正逐渐增加。结构信息的日益丰富揭示了特殊三维RNA排列的存在,与最初的预期相反,这些排列可以通过小分子化学实体或肽被识别并选择性调节。然而,诸如分子对接等经典计算方法在合理开发RNA结合候选物时,因这些大分子的特性而变得复杂,比如显著的构象灵活性、独特的电荷分布以及溶剂分子的重要作用。在这项工作中,我们因此验证并扩展了SuMD(一种全原子分子动力学协议,能够在纳秒时间尺度上加速分子识别事件的采样)在具有药学意义的核糖核苷酸靶点上的适用范围。特别是,我们通过以令人印象深刻的准确度重现病毒或原核核糖核酸复合物以及人工设计适配体的结合模式,证明了该方法的能力。

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