Stability and conformational memory of electrosprayed and rehydrated bacteriophage MS2 virus coat proteins

IF 2.7 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Maxim N. Brodmerkel , Emiliano De Santis , Charlotte Uetrecht , Carl Caleman , Erik G. Marklund
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引用次数: 2

Abstract

Proteins are innately dynamic, which is important for their functions, but which also poses significant challenges when studying their structures. Gas-phase techniques can utilise separation and a range of sample manipulations to transcend some of the limitations of conventional techniques for structural biology in crystalline or solution phase, and isolate different states for separate interrogation. However, the transfer from solution to the gas phase risks affecting the structures, and it is unclear to what extent different conformations remain distinct in the gas phase, and if resolution in silico can recover the native conformations and their differences. Here, we use extensive molecular dynamics simulations to study the two distinct conformations of dimeric capsid protein of the MS2 bacteriophage. The protein undergoes notable restructuring of its peripheral parts in the gas phase, but subsequent simulation in solvent largely recovers the native structure. Our results suggest that despite some structural loss due to the experimental conditions, gas-phase structural biology techniques provide meaningful data that inform not only about the structures but also conformational dynamics of proteins.

Abstract Image

电喷雾和水合噬菌体MS2病毒外壳蛋白的稳定性和构象记忆
蛋白质天生是动态的,这对它们的功能很重要,但这也给研究它们的结构带来了重大挑战。气相技术可以利用分离和一系列样品操作来超越传统结构生物学技术在晶体或溶液中的一些局限性,并分离不同的状态进行单独的询问。然而,从溶液到气相的转移有影响结构的风险,而且目前还不清楚不同的构象在气相中保留到什么程度,以及硅分解是否可以恢复天然构象及其差异。在这里,我们使用广泛的分子动力学模拟来研究MS2噬菌体二聚体衣壳蛋白的两种不同构象。蛋白质在气相中经历了其外围部分的显著重组,但随后在溶剂中的模拟在很大程度上恢复了天然结构。我们的研究结果表明,尽管实验条件造成了一些结构损失,气相结构生物学技术提供了有意义的数据,不仅可以了解蛋白质的结构,还可以了解蛋白质的构象动力学。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
4.60
自引率
0.00%
发文量
33
审稿时长
104 days
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