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在多种环境扰动下α-突触核蛋白聚集的调控

Modulation of α-synuclein aggregation amid diverse environmental perturbation.

作者信息

Wasim Abdul, Menon Sneha, Mondal Jagannath

机构信息

Tata Institute of Fundamental Research, Hyderabad, India.

出版信息

Elife. 2024 Aug 1;13:RP95180. doi: 10.7554/eLife.95180.

Abstract

Intrinsically disordered protein α-synuclein (αS) is implicated in Parkinson's disease due to its aberrant aggregation propensity. In a bid to identify the traits of its aggregation, here we computationally simulate the multi-chain association process of αS in aqueous as well as under diverse environmental perturbations. In particular, the aggregation of αS in aqueous and varied environmental condition led to marked concentration differences within protein aggregates, resembling liquid-liquid phase separation (LLPS). Both saline and crowded settings enhanced the LLPS propensity. However, the surface tension of αS droplet responds differently to crowders (entropy-driven) and salt (enthalpy-driven). Conformational analysis reveals that the IDP chains would adopt extended conformations within aggregates and would maintain mutually perpendicular orientations to minimize inter-chain electrostatic repulsions. The droplet stability is found to stem from a diminished intra-chain interactions in the C-terminal regions of αS, fostering inter-chain residue-residue interactions. Intriguingly, a graph theory analysis identifies within droplets across environmental conditions, suggesting the prevalence of a consensus interaction patterns among the chains. Together these findings suggest a delicate balance between molecular grammar and environment-dependent nuanced aggregation behavior of αS.

摘要

内在无序蛋白α-突触核蛋白(αS)因其异常的聚集倾向而与帕金森病有关。为了确定其聚集特征,我们在此通过计算模拟了αS在水溶液中以及在各种环境扰动下的多链缔合过程。特别是,αS在水溶液和不同环境条件下的聚集导致蛋白质聚集体内出现明显的浓度差异,类似于液-液相分离(LLPS)。盐水和拥挤环境都增强了LLPS倾向。然而,αS液滴的表面张力对拥挤剂(熵驱动)和盐(焓驱动)的反应不同。构象分析表明,IDP链在聚集体内会采用伸展构象,并保持相互垂直的取向,以尽量减少链间静电排斥。发现液滴稳定性源于αS C端区域链内相互作用的减弱,促进了链间残基-残基相互作用。有趣的是,图论分析在不同环境条件下的液滴中识别出,表明链间存在一致的相互作用模式。这些发现共同表明,αS的分子规则与环境依赖的细微聚集行为之间存在微妙的平衡。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fbe3/11293868/036df693c1f4/elife-95180-fig1.jpg

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