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盐酸胍依赖的 M-晶体蛋白结构展开:不断变化的天然状态拓扑结构和分子间缔合。

Guanidine-HCl dependent structural unfolding of M-crystallin: fluctuating native state like topologies and intermolecular association.

机构信息

Department of Chemical Sciences, Tata Institute of Fundamental Research, Colaba, Mumbai, India.

出版信息

PLoS One. 2012;7(12):e42948. doi: 10.1371/journal.pone.0042948. Epub 2012 Dec 17.

Abstract

Numerous experimental techniques and computational studies, proposed in recent times, have revolutionized the understanding of protein-folding paradigm. The complete understanding of protein folding and intermediates are of medical relevance, as the aggregation of misfolding proteins underlies various diseases, including some neurodegenerative disorders. Here, we describe the unfolding of M-crystallin, a βγ-crystallin homologue protein from archaea, from its native state to its denatured state using multidimensional NMR and other biophysical techniques. The protein, which was earlier characterized to be a predominantly β-sheet protein in its native state, shows different structural propensities (α and β), under different denaturing conditions. In 2 M GdmCl, the protein starts showing two distinct sets of peaks, with one arising from a partially unfolded state and the other from a completely folded state. The native secondary structural elements start disappearing as the denaturant concentration approaches 4 M. Subsequently, the protein is completely unfolded when the denaturant concentration is 6 M. The (15)N relaxation data (T(1)/T(2)), heteronuclear (1)H-(15)N Overhauser effects (nOes), NOESY data, and other biophysical data taken together indicate that the protein shows a consistent, gradual change in its structural and motional preferences with increasing GdmCl concentration.

摘要

近年来,许多实验技术和计算研究极大地改变了人们对蛋白质折叠范式的理解。对蛋白质折叠和中间态的完全理解具有医学相关性,因为错误折叠蛋白质的聚集是各种疾病(包括一些神经退行性疾病)的基础。在这里,我们使用多维 NMR 和其他生物物理技术描述了 M-晶状体蛋白(一种来自古菌的 βγ-晶状体蛋白同源物)从其天然状态到变性状态的展开。该蛋白在天然状态下被表征为主要的β-折叠蛋白,在不同的变性条件下显示出不同的结构倾向(α和β)。在 2 M GdmCl 中,该蛋白开始显示出两组截然不同的峰,一组来自部分展开的状态,另一组来自完全折叠的状态。随着变性剂浓度接近 4 M,天然二级结构元件开始消失。随后,当变性剂浓度为 6 M 时,该蛋白完全展开。(15)N 弛豫数据(T1/T2)、异核(1)H-(15)N 过相关效应(nOes)、NOESY 数据和其他生物物理数据一起表明,随着 GdmCl 浓度的增加,该蛋白的结构和动态偏好呈现出一致的、逐渐的变化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bff0/3524170/2e7edc0db51a/pone.0042948.g001.jpg

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