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通过平滑势分子动力学模拟研究蛋白质-配体解离动力学

Kinetics of protein-ligand unbinding via smoothed potential molecular dynamics simulations.

作者信息

Mollica Luca, Decherchi Sergio, Zia Syeda Rehana, Gaspari Roberto, Cavalli Andrea, Rocchia Walter

机构信息

CompuNet, Istituto Italiano di Tecnologia, via Morego, 30, I-16163 Genova, Italy.

1] CONCEPT Lab, Istituto Italiano di Tecnologia, via Morego, 30, I-16163 Genova, Italy [2] BiKi Technologies s.r.l., Via XX Settembre, 33/10, I-16121 Genova, Italy.

出版信息

Sci Rep. 2015 Jun 23;5:11539. doi: 10.1038/srep11539.

Abstract

Drug discovery is expensive and high-risk. Its main reasons of failure are lack of efficacy and toxicity of a drug candidate. Binding affinity for the biological target has been usually considered one of the most relevant figures of merit to judge a drug candidate along with bioavailability, selectivity and metabolic properties, which could depend on off-target interactions. Nevertheless, affinity does not always satisfactorily correlate with in vivo drug efficacy. It is indeed becoming increasingly evident that the time a drug spends in contact with its target (aka residence time) can be a more reliable figure of merit. Experimental kinetic measurements are operatively limited by the cost and the time needed to synthesize compounds to be tested, to express and purify the target, and to setup the assays. We present here a simple and efficient molecular-dynamics-based computational approach to prioritize compounds according to their residence time. We devised a multiple-replica scaled molecular dynamics protocol with suitably defined harmonic restraints to accelerate the unbinding events while preserving the native fold. Ligands are ranked according to the mean observed scaled unbinding time. The approach, trivially parallel and easily implementable, was validated against experimental information available on biological systems of pharmacological relevance.

摘要

药物研发成本高昂且风险巨大。其失败的主要原因在于候选药物缺乏疗效和存在毒性。与生物利用度、选择性及代谢特性(这些可能取决于脱靶相互作用)一样,对生物靶点的结合亲和力通常被视为评判候选药物最重要的品质因数之一。然而,亲和力并不总是能令人满意地与体内药物疗效相关联。事实上,越来越明显的是,药物与靶点接触的时间(即驻留时间)可能是一个更可靠的品质因数。实验动力学测量在操作上受到合成待测试化合物、表达和纯化靶点以及设置检测所需成本和时间的限制。我们在此提出一种基于分子动力学的简单高效计算方法,根据化合物的驻留时间对其进行优先级排序。我们设计了一种具有适当定义的简谐约束的多副本缩放分子动力学协议,以加速解离事件,同时保持天然构象。配体根据观察到的平均缩放解离时间进行排序。该方法易于并行且易于实现,已根据药理学相关生物系统的现有实验信息进行了验证。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c24f/4477625/1f3d1a5dad40/srep11539-f1.jpg

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