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β-微球蛋白二聚体的界面动力学和生长模式。

Interfacial Dynamics and Growth Modes of β-Microglobulin Dimers.

机构信息

BioISI: Biosystems and Integrative Sciences Institute, Departamento de Química e Bioquímica, Faculdade de Ciências, Universidade de Lisboa, 1749-016 Lisboa, Portugal.

BioISI: Biosystems and Integrative Sciences Institute, Departamento de Física, Faculdade de Ciências, Universidade de Lisboa, 1749-016 Lisboa, Portugal.

出版信息

J Chem Inf Model. 2023 Jul 24;63(14):4447-4457. doi: 10.1021/acs.jcim.3c00399. Epub 2023 May 3.

Abstract

Protein aggregation is a complex process, strongly dependent on environmental conditions and highly structurally heterogeneous, both at the final level of fibril structure and intermediate level of oligomerization. Since the first step in aggregation is the formation of a dimer, it is important to clarify how certain properties of the latter (e.g., stability or interface geometry) may play a role in self-association. Here, we report a simple model that represents the dimer's interfacial region by two angles and combine it with a simple computational method to investigate how modulations of the interfacial region occurring on the ns-μs time scale change the dimer's growth mode. To illustrate the proposed methodology, we consider 15 different dimer configurations of the βm D76N mutant protein equilibrated with long Molecular Dynamics simulations and identify which interfaces lead to limited and unlimited growth modes, having, therefore, different aggregation profiles. We found that despite the highly dynamic nature of the starting configurations, most polymeric growth modes tend to be conserved within the studied time scale. The proposed methodology performs remarkably well taking into consideration the nonspherical morphology of the βm dimers, which exhibit unstructured termini detached from the protein's core, and the relatively weak binding affinities of their interfaces, which are stabilized by nonspecific apolar interactions. The proposed methodology is general and can be applied to any protein for which a dimer structure has been experimentally determined or computationally predicted.

摘要

蛋白质聚集是一个复杂的过程,强烈依赖于环境条件,并且在终末纤维结构水平和中间寡聚化水平上都具有高度的结构异质性。由于聚集的第一步是形成二聚体,因此阐明后者的某些性质(例如稳定性或界面几何形状)如何在自组装中发挥作用非常重要。在这里,我们报告了一个简单的模型,该模型通过两个角度表示二聚体的界面区域,并结合一个简单的计算方法来研究界面区域在 ns-μs 时间尺度上的调制如何改变二聚体的生长模式。为了说明所提出的方法,我们考虑了βm D76N 突变蛋白的 15 种不同二聚体构象,这些构象在长分子动力学模拟中达到平衡,并确定哪些界面导致有限和无限生长模式,从而具有不同的聚集谱。我们发现,尽管起始构象具有高度动态的性质,但大多数聚合生长模式在研究的时间尺度内趋于保持不变。所提出的方法考虑到βm 二聚体的非球形形态、从蛋白质核心分离的无结构末端以及界面的相对较弱的结合亲和力(通过非特异性非极性相互作用稳定)表现出色。所提出的方法是通用的,可以应用于任何实验确定或计算预测的二聚体结构的蛋白质。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ddfd/10369489/64f4ba5a3c9d/ci3c00399_0001.jpg

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