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Current state of theoretical and experimental studies of the voltage-dependent anion channel (VDAC)

机译:电压依赖性阴离子通道(VDAC)的理论和实验研究的当前状态

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摘要

Voltage-dependent anion channel (VDAC), the major channel of the mitochondrial outer membrane provides a controlled pathway for respiratory metabolites in and out of the mitochondria. In spite of the wealth of experimental data from structural, biochemical, and biophysical investigations, the exact mechanisms governing selective ion and metabolite transport, especially the role of titratable charged residues and interactions with soluble cytosolic proteins, remain hotly debated in the field. The computational advances hold a promise to provide a much sought-after solution to many of the scientific disputes around solute and ion transport through VDAC and hence, across the mitochondrial outer membrane. In this review, we examine how Molecular Dynamics, Free Energy, and Brownian Dynamics simulations of the large beta-barrel channel, VDAC, advanced our understanding. We will provide a short overview of non-conventional techniques and also discuss examples of how the modeling excursions into VDAC biophysics prospectively aid experimental efforts. This article is part of a Special Issue entitled: Membrane Proteins edited by J.C. Gumbart and Sergei Noskov. (C) 2016 Elsevier B.V. All rights reserved.
机译:电压依赖性阴离子通道(VDAC)是线粒体外膜的主要通道,为呼吸代谢物进入和流出线粒体提供了受控的途径。尽管从结构,生化和生物物理研究中获得了大量实验数据,但控制选择性离子和代谢产物运输的确切机制,尤其是可滴定的带电荷残基的作用以及与可溶性胞质蛋白的相互作用,仍是该领域的热门话题。计算的进步有望为解决有关溶质和离子通过VDAC并因此穿过线粒体外膜运输的许多科学争端提供广受欢迎的解决方案。在这篇评论中,我们研究了大型β桶通道VDAC的分子动力学,自由能和布朗动力学模拟如何增进我们的理解。我们将提供非常规技术的简短概述,并讨论有关VDAC生物物理学中的建模偏移如何有助于实验工作的示例。本文是特刊(J.C. Gumbart和Sergei Noskov)编辑的《膜蛋白》的一部分。 (C)2016 Elsevier B.V.保留所有权利。

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