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一种依赖 pH 值的计算方法,用于研究突变对蛋白质稳定性的影响。

A pH-dependent computational approach to the effect of mutations on protein stability.

机构信息

BIOVIA, Dassault Systemes, 5005 Wateridge Vista Drive, San Diego, California, 92121.

出版信息

J Comput Chem. 2016 Nov 5;37(29):2573-87. doi: 10.1002/jcc.24482. Epub 2016 Sep 16.

DOI:10.1002/jcc.24482
PMID:27634390
Abstract

This article describes a novel software implementation for high-throughput scanning mutagenesis with a focus on protein stability. The approach combines molecular mechanics calculations with calculations of protein ionization and a Gaussian-chain model of electrostatic interactions in unfolded state. Comprehensive testing demonstrates a state-of-the-art accuracy for predicted free energy differences on single, double, and triple mutations with a correlation coefficient R above 0.7, which takes about 1.5 min per mutation on a single CPU. Unlike most of existing in silico methods for fast mutagenesis, the stability changes are reported as a continuous function of solution pH for wide pH intervals. We also propose a novel in silico strategy for searching stabilized protein variants that is based on combinatorial scanning mutagenesis using representative amino acid types. Our in silico predictions are in excellent agreement with the hyper-stabilized variants of mesophilic cold shock protein found using the Proside method of direct evolution. © 2016 Wiley Periodicals, Inc.

摘要

本文描述了一种新颖的高通量扫描突变软件实现方法,重点关注蛋白质稳定性。该方法结合了分子力学计算、蛋白质离子化计算以及未折叠状态下静电相互作用的高斯链模型。全面的测试表明,对于单突变、双突变和三突变的预测自由能差异具有最先进的准确性,对于每个突变的相关系数 R 超过 0.7,在单个 CPU 上每个突变的计算时间约为 1.5 分钟。与大多数现有的快速突变计算方法不同,稳定性变化以宽 pH 间隔的溶液 pH 的连续函数形式报告。我们还提出了一种基于组合扫描突变和代表性氨基酸类型的新型稳定蛋白变体的计算策略。我们的计算预测与使用直接进化的 Proside 方法发现的嗜热冷休克蛋白的超稳定变体非常吻合。© 2016 威利父子公司

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