College of Mathematics and Physics, Shanghai University of Electric Power, Shanghai 200090, China.
The Research Center of Chiral Drugs, Shanghai Frontiers Science Center for TCM Chemical Biology, Innovation Research Institute of Traditional Chinese Medicine, Shanghai University of Traditional Chinese Medicine, Shanghai 201203, China.
Phys Chem Chem Phys. 2024 Sep 11;26(35):23062-23072. doi: 10.1039/d4cp02131b.
Pathological aggregation of α-synuclein (α-syn) into amyloid fibrils is a major feature of Parkinson's disease (PD). The self-assembly of α-syn is mainly governed by a non-amyloid-β component core (NACore). However, the effects of concentrations and temperatures on their conformational transition remain unclear. To answer this question, we investigated the aggregation kinetics of NACore oligomers by performing several independent all-atom molecular dynamics simulations. The simulation results show that tetramers are more prone to form β-sheets at 300 K than dimers and octamers. We also found that the NACore oligomers had higher β-sheet and β-barrel contents at 310 K. The inter-chain hydrophobic interactions, the backbone hydrogen bonding, the residue-residue interactions between V70-V77 as well as V77-V77 play important roles in the aggregation tendency of NACore octamers at 310 K. Interestingly, the energy gap analysis revealed that the conformational transition of NACore oligomers from intermediate states (β-barrel conformation) to stable structures (β-sheet layers) was dependent on the temperatures. In short, our study provides insight into the kinetic and thermodynamic mechanisms of the conformational transition of NACore at different concentrations and temperatures, contributing to a better understanding of the aggregation process of α-syn in Parkinson's disease.
α-突触核蛋白(α-syn)病理性聚集形成淀粉样纤维是帕金森病(PD)的主要特征。α-syn 的自组装主要受非淀粉样β成分核心(NACore)的控制。然而,其构象转变对浓度和温度的影响仍不清楚。为了回答这个问题,我们通过进行多次独立的全原子分子动力学模拟来研究 NACore 低聚物的聚集动力学。模拟结果表明,四聚体在 300 K 时比二聚体和八聚体更容易形成β-折叠。我们还发现 NACore 低聚物在 310 K 时具有更高的β-折叠和β-桶含量。在 310 K 时,链间疏水力、主链氢键、V70-V77 以及 V77-V77 之间的残基相互作用在 NACore 八聚体的聚集趋势中起着重要作用。有趣的是,能量间隙分析表明,NACore 低聚物从中间状态(β-桶构象)到稳定结构(β-折叠层)的构象转变取决于温度。总之,我们的研究深入了解了 NACore 在不同浓度和温度下构象转变的动力学和热力学机制,有助于更好地理解帕金森病中α-syn 的聚集过程。