Róg Tomasz, Girych Mykhailo, Bunker Alex
Department of Physics, University of Helsinki, 00014 Helsinki, Finland.
Drug Research Program, Division of Pharmaceutical Biosciences, Faculty of Pharmacy, University of Helsinki, 00014 Helsinki, Finland.
Pharmaceuticals (Basel). 2021 Oct 19;14(10):1062. doi: 10.3390/ph14101062.
We review the use of molecular dynamics (MD) simulation as a drug design tool in the context of the role that the lipid membrane can play in drug action, i.e., the interaction between candidate drug molecules and lipid membranes. In the standard "lock and key" paradigm, only the interaction between the drug and a specific active site of a specific protein is considered; the environment in which the drug acts is, from a biophysical perspective, far more complex than this. The possible mechanisms though which a drug can be designed to tinker with physiological processes are significantly broader than merely fitting to a single active site of a single protein. In this paper, we focus on the role of the lipid membrane, arguably the most important element outside the proteins themselves, as a case study. We discuss work that has been carried out, using MD simulation, concerning the transfection of drugs through membranes that act as biological barriers in the path of the drugs, the behavior of drug molecules within membranes, how their collective behavior can affect the structure and properties of the membrane and, finally, the role lipid membranes, to which the vast majority of drug target proteins are associated, can play in mediating the interaction between drug and target protein. This review paper is the second in a two-part series covering MD simulation as a tool in pharmaceutical research; both are designed as pedagogical review papers aimed at both pharmaceutical scientists interested in exploring how the tool of MD simulation can be applied to their research and computational scientists interested in exploring the possibility of a pharmaceutical context for their research.
我们回顾了分子动力学(MD)模拟作为一种药物设计工具的应用情况,重点关注脂质膜在药物作用中所起的作用,即候选药物分子与脂质膜之间的相互作用。在标准的“锁钥”范式中,仅考虑药物与特定蛋白质的特定活性位点之间的相互作用;从生物物理学角度来看,药物发挥作用的环境远比这复杂得多。药物设计用于干预生理过程的可能机制远比仅仅适配单个蛋白质的单个活性位点要广泛得多。在本文中,我们将重点探讨脂质膜的作用,脂质膜可以说是蛋白质本身之外最重要的元素,并以此作为案例进行研究。我们将讨论利用MD模拟开展的相关工作,内容涉及药物透过作为生物屏障的膜进行转染的情况、药物分子在膜内的行为、它们的集体行为如何影响膜的结构和性质,以及最终,绝大多数药物靶蛋白所关联的脂质膜在介导药物与靶蛋白相互作用中所起的作用。这篇综述文章是关于MD模拟作为药物研究工具的系列文章的第二篇;两篇文章均旨在作为教学性综述文章,面向既对探索MD模拟工具如何应用于其研究感兴趣的药物科学家,也面向对探索其研究在药物领域的可能性感兴趣的计算科学家。