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冲击器─一种用于加速和分析渗透冲击影响的分子动力学方案和工具。

Shocker─A Molecular Dynamics Protocol and Tool for Accelerating and Analyzing the Effects of Osmotic Shocks.

机构信息

Groningen Biomolecular Sciences and Biotechnology Institute and Zernike Institute for Advanced Materials, University of Groningen, 9747 AG Groningen, The Netherlands.

Heidelberg Institute for Theoretical Studies (HITS), Schloss-Wolfsbrunnenweg 35, 69118 Heidelberg, Germany.

出版信息

J Chem Theory Comput. 2024 Jan 9;20(1):212-223. doi: 10.1021/acs.jctc.3c00961. Epub 2023 Dec 18.

Abstract

The process of osmosis, a fundamental phenomenon in life, drives water through a semipermeable membrane in response to a solute concentration gradient across this membrane. In vitro, osmotic shocks are often used to drive shape changes in lipid vesicles, for instance, to study fission events in the context of artificial cells. While experimental techniques provide a macroscopic picture of large-scale membrane remodeling processes, molecular dynamics (MD) simulations are a powerful tool to study membrane deformations at the molecular level. However, simulating an osmotic shock is a time-consuming process due to slow water diffusion across the membrane, making it practically impossible to examine its effects in classic MD simulations. In this article, we present Shocker, a Python-based MD tool for simulating the effects of an osmotic shock by selecting and relocating water particles across a membrane over the course of several pumping cycles. Although this method is primarily aimed at efficiently simulating volume changes in vesicles, it can also handle membrane tubes and double bilayer systems. Additionally, Shocker is force field-independent and compatible with both coarse-grained and all-atom systems. We demonstrate that our tool is applicable to simulate both hypertonic and hypotonic osmotic shocks for a range of vesicular and bilamellar setups, including complex multicomponent systems containing membrane proteins or crowded internal solutions.

摘要

渗透过程是生命中的一个基本现象,它会促使水在半透膜两侧根据溶质浓度梯度发生移动。在体外,渗透冲击常用于驱动脂质体的形状变化,例如,在人工细胞的背景下研究裂变事件。虽然实验技术提供了宏观层面上的大规模膜重塑过程,但分子动力学(MD)模拟是研究分子水平上膜变形的有力工具。然而,由于水在膜中的扩散速度较慢,模拟渗透冲击是一个耗时的过程,这使得在经典的 MD 模拟中实际上不可能研究其影响。在本文中,我们介绍了 Shocker,这是一种基于 Python 的 MD 工具,它可以通过在几个泵送循环中选择和重新定位跨膜的水分子来模拟渗透冲击的影响。虽然这种方法主要旨在有效地模拟囊泡的体积变化,但它也可以处理膜管和双层系统。此外,Shocker 与力场无关,适用于粗粒化和全原子系统。我们证明了我们的工具可用于模拟各种囊泡和双层设置的高渗和低渗渗透冲击,包括含有膜蛋白或拥挤内部溶液的复杂多组分系统。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bbef/10782443/f386c605930e/ct3c00961_0001.jpg

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