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小分子与生物膜相互作用的分子动力学模拟。

Molecular Dynamics Simulation of Small Molecules Interacting with Biological Membranes.

机构信息

School of Pharmacy and Biomedical Sciences, Curtin Health Innovation Research Institute and, Curtin Institute for Computation, Curtin University, Perth, WA 6845, Australia.

School of Life Sciences, University of Technology Sydney, Sydney, NSW 2007, Australia.

出版信息

Chemphyschem. 2020 Jul 17;21(14):1486-1514. doi: 10.1002/cphc.202000219. Epub 2020 Jun 22.

Abstract

Cell membranes protect and compartmentalise cells and their organelles. The semi-permeable nature of these membranes controls the exchange of solutes across their structure. Characterising the interaction of small molecules with biological membranes is critical to understanding of physiological processes, drug action and permeation, and many biotechnological applications. This review provides an overview of how molecular simulations are used to study the interaction of small molecules with biological membranes, with a particular focus on the interactions of water, organic compounds, drugs and short peptides with models of plasma cell membrane and stratum corneum lipid bilayers. This review will not delve on other types of membranes which might have different composition and arrangement, such as thylakoid or mitochondrial membranes. The application of unbiased molecular dynamics simulations and enhanced sampling methods such as umbrella sampling, metadynamics and replica exchange are described using key examples. This review demonstrates how state-of-the-art molecular simulations have been used successfully to describe the mechanism of binding and permeation of small molecules with biological membranes, as well as associated changes to the structure and dynamics of these membranes. The review concludes with an outlook on future directions in this field.

摘要

细胞膜保护和分隔细胞及其细胞器。这些膜的半透性质控制着溶质在其结构中的交换。描述小分子与生物膜的相互作用对于理解生理过程、药物作用和渗透以及许多生物技术应用至关重要。本综述概述了如何使用分子模拟来研究小分子与生物膜的相互作用,特别关注水、有机化合物、药物和短肽与血浆细胞膜模型和角质层脂质双层的相互作用。本综述不会深入探讨其他类型的膜,这些膜可能具有不同的组成和排列,如类囊体膜或线粒体膜。使用关键示例描述了无偏分子动力学模拟和增强采样方法(如伞状采样、元动力学和复制交换)的应用。本综述表明,如何成功地使用最先进的分子模拟来描述小分子与生物膜结合和渗透的机制,以及这些膜结构和动力学的相关变化。该综述最后展望了该领域的未来发展方向。

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