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Multiscale Simulations of Biological Membranes: The Challenge To Understand Biological Phenomena in a Living Substance

机译:多尺度模拟生物膜:挑战以了解生物实质的生物现象

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Biological membranes are tricky to investigate. They are complex in terms of molecular composition and structure, functional over a wide range of time scales, and characterized by nonequilibrium conditions. Because of all of these features, simulations are a great technique to study biomembrane behavior. A significant part of the functional processes in biological membranes takes place at the molecular level; thus computer simulations are the method of choice to explore how their properties emerge from specific molecular features and how the interplay among the numerous molecules gives rise to function over spatial and time scales larger than the molecular ones. In this review, we focus on this broad theme. We discuss the current state-of-the-art of biomembrane simulations that, until now, have largely focused on a rather narrow picture of the complexity of the membranes. Given this, we also discuss the challenges that we should unravel in the foreseeable future. Numerous features such as the actin-cytoskeleton network, the glycocalyx network, and nonequilibrium transport under ATP-driven conditions have so far received very little attention; however, the potential of simulations to solve them would be exceptionally high. A major milestone for this research would be that one day we could say that computer simulations genuinely research biological membranes, not just lipid bilayers.
机译:对研究的生物膜是棘手的。它们在分子组成和结构方面是复杂的,在各种时间尺度上具有功能,并且通过非纤维纤维条件表征。由于所有这些特征,模拟是研究生物膜行为的伟大技术。生物膜中的功能过程的重要部分在分子水平进行;因此,计算机模拟是探讨其特性如何从特定分子特征中出现的方法以及多种分子之间的相互作用如何在大于分子尺寸的空间和时间尺度上产生功能。在这篇综述中,我们专注于这一广泛的主题。我们讨论目前的生物膜模拟最先进的,直到现在,在很大程度上主要集中于膜的复杂性的相当窄的图像上。鉴于这一点,我们还讨论了我们在可预见的未来撤消的挑战。在ATP驱动条件下,诸如肌动蛋白 - 细胞骨架网络,甘氨酸网络网络和非预测运输等众多特征对此感到很少受到影响;然而,用于解决它们的模拟的潜力将是非常高的。这项研究的主要里程碑是我们可以说计算机仿真真正研究生物膜,而不仅仅是脂质双层。

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  • 来源
    《Chemical Reviews》 |2019年第9期|共168页
  • 作者单位

    Univ Helsinki Dept Phys POB 64 FI-00014 Helsinki Finland;

    Univ Helsinki Dept Phys POB 64 FI-00014 Helsinki Finland;

    Univ Helsinki Dept Phys POB 64 FI-00014 Helsinki Finland;

    Univ Helsinki Dept Phys POB 64 FI-00014 Helsinki Finland;

    Univ Helsinki Dept Phys POB 64 FI-00014 Helsinki Finland;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
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