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基于分子动力学模拟揭示 Tau 蛋白关键六肽(PHF6)自发聚集和模板诱导错误折叠的机制。

Disclosing the Mechanism of Spontaneous Aggregation and Template-Induced Misfolding of the Key Hexapeptide (PHF6) of Tau Protein Based on Molecular Dynamics Simulation.

机构信息

Chongqing Key Laboratory on Big Data for Bio Intelligence , Chongqing University of Posts and Telecommunications , Chongqing 400065 , China.

State Key Laboratory of Quality Research in Chinese Medicine, Macau Institute for Applied Research in Medicine and Health , Macau University of Science and Technology , Taipa , Macau 999078 , China.

出版信息

ACS Chem Neurosci. 2019 Dec 18;10(12):4810-4823. doi: 10.1021/acschemneuro.9b00488. Epub 2019 Nov 12.

Abstract

The microtubule-associated protein tau is critical for the development and maintenance of the nervous system. Tau dysfunction is associated with a variety of neurodegenerative diseases called tauopathies, which are characterized by neurofibrillary tangles formed by abnormally aggregated tau protein. Studying the aggregation mechanism of tau protein is of great significance for elucidating the etiology of tauopathies. The hexapeptide VQIVYK (PHF6) of R3 has been shown to play a vital role in promoting tau aggregation. In this study, long-term all-atom molecular dynamics simulations in explicit solvent were performed to investigate the mechanisms of spontaneous aggregation and template-induced misfolding of PHF6, and the dimerization at the early stage of nucleation was further specifically analyzed by the Markov state model (MSM). Our results show that PHF6 can spontaneously aggregate to form multimers enriched with β-sheet structure and the β-sheets in multimers prefer to exist in a parallel way. It is observed that PHF6 monomer can be induced to form a β-sheet structure on either side of the template but in a different way. In detail, the β-sheet structure is easier to form on the left side but does not extend well, but on the right side, the monomer can form the extended β-sheet structure. Furthermore, MSM analysis shows that the formation of dimer mainly occurs in three steps. First, the separated monomers collide with each other at random orientations, and then a dimer with short β-sheet structure at the N-terminal forms; finally, β-sheets elongate to form an extended parallel β-sheet dimer. During these processes, multiple intermediate states are identified and multiple paths can form a parallel β-sheet dimer from the disordered coil structure. Moreover, the residues I308, V309, and Y310 play an essential role in the dimerization. In a word, our results uncover the aggregation and misfolding mechanism of PHF6 from the atomic level, which can provide useful theoretical guidance for rational design of effective therapeutic drugs against tauopathies.

摘要

微管相关蛋白 tau 对于神经系统的发育和维持至关重要。tau 功能障碍与各种称为 tau 病的神经退行性疾病有关,这些疾病的特征是由异常聚集的 tau 蛋白形成的神经纤维缠结。研究 tau 蛋白的聚集机制对于阐明 tau 病的病因具有重要意义。R3 中的六肽 VQIVYK(PHF6)已被证明在促进 tau 聚集中起着至关重要的作用。在这项研究中,我们进行了长期的全原子分子动力学模拟,以研究 PHF6 自发聚集和模板诱导错误折叠的机制,并通过马尔可夫状态模型(MSM)进一步专门分析了成核早期的二聚化。我们的结果表明,PHF6 可以自发聚集形成富含β-折叠结构的多聚体,并且多聚体中的β-折叠更喜欢以平行的方式存在。观察到 PHF6 单体可以在模板的任一侧诱导形成β-折叠结构,但方式不同。具体而言,β-折叠结构更容易在左侧形成,但扩展效果不佳,但在右侧,单体可以形成扩展的β-折叠结构。此外,MSM 分析表明,二聚体的形成主要经历三个步骤。首先,分离的单体在任意方向上随机碰撞,然后在 N 端形成具有短β-折叠结构的二聚体;最后,β-折叠延伸形成扩展的平行β-折叠二聚体。在这些过程中,鉴定出多个中间状态,并且可以从无序卷曲结构形成多个路径来形成平行的β-折叠二聚体。此外,残基 I308、V309 和 Y310 在二聚化中起着至关重要的作用。总之,我们的结果从原子水平揭示了 PHF6 的聚集和错误折叠机制,可为合理设计针对 tau 病的有效治疗药物提供有用的理论指导。

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