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CAVER 3.0:用于分析动态蛋白质结构中输运途径的工具。

CAVER 3.0: a tool for the analysis of transport pathways in dynamic protein structures.

机构信息

Loschmidt Laboratories, Department of Experimental Biology and Research Centre for Toxic Compounds in the Environment, Faculty of Science, Masaryk University, Brno, Czech Republic.

出版信息

PLoS Comput Biol. 2012;8(10):e1002708. doi: 10.1371/journal.pcbi.1002708. Epub 2012 Oct 18.

Abstract

Tunnels and channels facilitate the transport of small molecules, ions and water solvent in a large variety of proteins. Characteristics of individual transport pathways, including their geometry, physico-chemical properties and dynamics are instrumental for understanding of structure-function relationships of these proteins, for the design of new inhibitors and construction of improved biocatalysts. CAVER is a software tool widely used for the identification and characterization of transport pathways in static macromolecular structures. Herein we present a new version of CAVER enabling automatic analysis of tunnels and channels in large ensembles of protein conformations. CAVER 3.0 implements new algorithms for the calculation and clustering of pathways. A trajectory from a molecular dynamics simulation serves as the typical input, while detailed characteristics and summary statistics of the time evolution of individual pathways are provided in the outputs. To illustrate the capabilities of CAVER 3.0, the tool was applied for the analysis of molecular dynamics simulation of the microbial enzyme haloalkane dehalogenase DhaA. CAVER 3.0 safely identified and reliably estimated the importance of all previously published DhaA tunnels, including the tunnels closed in DhaA crystal structures. Obtained results clearly demonstrate that analysis of molecular dynamics simulation is essential for the estimation of pathway characteristics and elucidation of the structural basis of the tunnel gating. CAVER 3.0 paves the way for the study of important biochemical phenomena in the area of molecular transport, molecular recognition and enzymatic catalysis. The software is freely available as a multiplatform command-line application at http://www.caver.cz.

摘要

隧道和通道促进了小分子、离子和水溶剂在各种蛋白质中的运输。个体运输途径的特点,包括其几何形状、物理化学性质和动力学,对于理解这些蛋白质的结构-功能关系、设计新的抑制剂和构建改良的生物催化剂具有重要意义。CAVER 是一种广泛用于识别和描述静态大分子结构中运输途径的软件工具。本文介绍了 CAVER 的新版本,该版本能够自动分析大型蛋白质构象集合中的隧道和通道。CAVER 3.0 实现了用于路径计算和聚类的新算法。分子动力学模拟的轨迹是典型的输入,而单个路径的时间演化的详细特征和汇总统计数据则在输出中提供。为了说明 CAVER 3.0 的功能,该工具被应用于微生物酶卤代烷脱卤酶 DhaA 的分子动力学模拟分析。CAVER 3.0 安全地识别并可靠地估计了所有先前公布的 DhaA 隧道的重要性,包括 DhaA 晶体结构中封闭的隧道。获得的结果清楚地表明,分子动力学模拟分析对于估计途径特征和阐明隧道门控的结构基础至关重要。CAVER 3.0 为分子运输、分子识别和酶催化领域的重要生化现象研究铺平了道路。该软件作为一个多平台的命令行应用程序在 http://www.caver.cz 上免费提供。

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