Bunker Alex, Róg Tomasz
Division of Pharmaceutical Biosciences, Drug Research Program, Faculty of Pharmacy, University of Helsinki, Helsinki, Finland.
Department of Physics, University of Helsinki, Helsinki, Finland.
Front Mol Biosci. 2020 Nov 25;7:604770. doi: 10.3389/fmolb.2020.604770. eCollection 2020.
In this review, we outline the growing role that molecular dynamics simulation is able to play as a design tool in drug delivery. We cover both the pharmaceutical and computational backgrounds, in a pedagogical fashion, as this review is designed to be equally accessible to pharmaceutical researchers interested in what this new computational tool is capable of and experts in molecular modeling who wish to pursue pharmaceutical applications as a context for their research. The field has become too broad for us to concisely describe all work that has been carried out; many comprehensive reviews on subtopics of this area are cited. We discuss the insight molecular dynamics modeling has provided in dissolution and solubility, however, the majority of the discussion is focused on nanomedicine: the development of nanoscale drug delivery vehicles. Here we focus on three areas where molecular dynamics modeling has had a particularly strong impact: (1) behavior in the bloodstream and protective polymer corona, (2) Drug loading and controlled release, and (3) Nanoparticle interaction with both model and biological membranes. We conclude with some thoughts on the role that molecular dynamics simulation can grow to play in the development of new drug delivery systems.
在本综述中,我们概述了分子动力学模拟作为药物递送设计工具所能发挥的日益重要的作用。我们以教学的方式涵盖了药学和计算背景,因为本综述旨在让对这种新计算工具能力感兴趣的药学研究人员以及希望将药学应用作为其研究背景的分子建模专家都能同样容易理解。该领域已经变得过于广泛,以至于我们无法简洁地描述已开展的所有工作;本文引用了许多关于该领域子主题的全面综述。我们讨论了分子动力学建模在溶解和溶解度方面所提供的见解,然而,大部分讨论集中在纳米医学:纳米级药物递送载体的开发。在这里,我们关注分子动力学建模产生特别强烈影响的三个领域:(1)在血流和保护性聚合物冠层中的行为,(2)药物负载和控释,以及(3)纳米颗粒与模型膜和生物膜的相互作用。我们最后对分子动力学模拟在新药物递送系统开发中可能发挥的作用进行了一些思考。