Learning to Model G-Quadruplexes: Current Methods and Perspectives.

IF 10.4 1区 生物学 Q1 BIOPHYSICS
Annual Review of Biophysics Pub Date : 2021-05-06 Epub Date: 2021-02-09 DOI:10.1146/annurev-biophys-060320-091827
Iker Ortiz de Luzuriaga, Xabier Lopez, Adrià Gil
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引用次数: 17

Abstract

G-quadruplexes have raised considerable interest during the past years for the development of therapies against cancer. These noncanonical structures of DNA may be found in telomeres and/or oncogene promoters, and it has been observed that the stabilization of such G-quadruplexes may disturb tumor cell growth. Nevertheless, the mechanisms leading to folding and stabilization of these G-quadruplexes are still not well established, and they are the focus of much current work in this field. In seminal works, stabilization was observed to be produced by cations. However, subsequent studies showed that different kinds of small molecules, from planar and nonplanar organic molecules to square-planar and octahedral metal complexes, may also lead to the stabilization of G-quadruplexes. Thus, the comprehension and rationalization of the interaction of these small molecules with G-quadruplexes are also important topics of current interest in medical applications. To shed light on the questions arising from the literature on the formation of G-quadruplexes, their stabilization, and their interaction with small molecules, synergies between experimental studies and computational works are needed. In this review, we mainly focus on in silico approaches and provide a broad compilation of different leading studies carried out to date by different computational methods. We divide these methods into twomain categories: (a) classical methods, which allow for long-timescale molecular dynamics simulations and the corresponding analysis of dynamical information, and (b) quantum methods (semiempirical, quantum mechanics/molecular mechanics, and density functional theory methods), which allow for the explicit simulation of the electronic structure of the system but, in general, are not capable of being used in long-timescale molecular dynamics simulations and, therefore, give a more static picture of the relevant processes.

学习建模g -四层:当前的方法和观点。
在过去的几年里,g -四联体引起了人们对癌症治疗方法发展的极大兴趣。这些非规范的DNA结构可以在端粒和/或癌基因启动子中发现,并且已经观察到这种g -四联体的稳定可能会干扰肿瘤细胞的生长。然而,导致这些g -四联体折叠和稳定的机制仍然没有很好地确定,它们是当前该领域许多工作的焦点。在开创性的工作中,观察到阳离子产生稳定化。然而,随后的研究表明,不同种类的小分子,从平面和非平面有机分子到方平面和八面体金属配合物,也可能导致g -四络合物的稳定。因此,理解和合理化这些小分子与g -四联体的相互作用也是当前医学应用中感兴趣的重要课题。为了阐明g -四络合物的形成、稳定性和与小分子的相互作用等文献中出现的问题,实验研究和计算工作之间需要协同作用。在这篇综述中,我们主要关注计算机方法,并提供了迄今为止通过不同计算方法进行的不同领先研究的广泛汇编。我们将这些方法分为两类:(a)经典方法,允许长时间尺度的分子动力学模拟和相应的动态信息分析;(b)量子方法(半经验、量子力学/分子力学和密度泛函理论方法),允许系统的电子结构的显式模拟,但通常不能用于长时间尺度的分子动力学模拟,因此,给出相关过程的静态图片。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Annual Review of Biophysics
Annual Review of Biophysics 生物-生物物理
CiteScore
21.00
自引率
0.00%
发文量
25
期刊介绍: The Annual Review of Biophysics, in publication since 1972, covers significant developments in the field of biophysics, including macromolecular structure, function and dynamics, theoretical and computational biophysics, molecular biophysics of the cell, physical systems biology, membrane biophysics, biotechnology, nanotechnology, and emerging techniques.
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