糖胺聚糖在血清淀粉样蛋白A纤维形成中的潜在作用

Q1 Medicine
Martyna Maszota-Zieleniak, Annemarie Danielsson, Sergey A. Samsonov
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引用次数: 2

摘要

血清淀粉样蛋白A (SAA)通过其聚集积极参与动脉粥样硬化、类风湿性关节炎、癌症和阿尔茨海默病等病理过程。其与糖基聚糖(GAGs)、线性阴离子周期多糖的相互作用是削弱其聚集从而影响其生理作用的因素之一。这些分子位于细胞的细胞外基质中,它们的化学成分和硫酸化模式变化很大。尽管已有SAA-GAG相互作用的实验证据,但迄今为止还没有关于这些系统在原子水平上的机制细节的报道。在我们的工作中,我们的目标是应用不同的计算工具来表征SAA- gag复合物的形成,并回答有关它们的潜在特异性、能量模式、参与这些相互作用的特定SAA残基、蛋白质的有利寡聚状态以及GAGs对SAA聚集的潜在影响等问题。应用分子对接、常规交换和复制交换分子动力学方法对实验知识进行确证,并提出相应的分子模型。研究发现,SAA-GAG复合物的形成是静电驱动的,而不是特定的GAG硫酸化模式,当通过其n端螺旋与短GAG寡糖结合时,二聚体比单体更有利,这可能有助于该螺旋的展开,从而促进蛋白质聚集。获得的数据增加了对SAA-GAG系统的特定知识,并加深了对蛋白质- gag相互作用的一般理解,这对于在广泛的治疗背景下开发基于gag的方法具有相当大的价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

The potential role of glycosaminoglycans in serum amyloid A fibril formation by in silico approaches

The potential role of glycosaminoglycans in serum amyloid A fibril formation by in silico approaches

Serum amyloid A (SAA) is actively involved in such pathological processes as atherosclerosis, rheumatoid arthritis, cancer and Alzheimer's disease by its aggregation. One of the factors that can attenuate its aggregation and so affects its physiological role is its interactions with glycosminoglycans (GAGs), linear anionic periodic polysaccharides. These molecules located in the extracellular matrix of the cell are highly variable in their chemical composition and sulfation patterns. Despite the available experimental evidence of SAA-GAG interactions, no mechanistic details at atomic level have been reported for these systems so far. In our work we aimed to apply diverse computational tools to characterize SAA-GAG complexes formation and to answer questions about their potential specificity, energetic patterns, particular SAA residues involved in these interactions, favourable oligomeric state of the protein and the potential influence of GAGs on SAA aggregation. Molecular docking, conventional and replica exchange molecular dynamics approaches were applied to corroborate the experimental knowledge and to propose the corresponding molecular models. SAA-GAG complex formation was found to be electrostatics-driven and rather unspecific of a GAG sulfation pattern, more favorable for the dimer than for the monomer when binding to a short GAG oligosaccharide through its N-terminal helix, potentially contributing to the unfolding of this helix, which could lead to the promotion of the protein aggregation. The data obtained add to the specific knowledge on SAA-GAG systems and deepen the general understanding of protein-GAG interactions that is of a considerable value for the development of GAG-based approaches in a broad theurapeutic context.

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来源期刊
Matrix Biology Plus
Matrix Biology Plus Medicine-Histology
CiteScore
9.00
自引率
0.00%
发文量
25
审稿时长
105 days
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