Barredo Prechiel A, Balanay Mannix P
Department of Chemistry, Mindanao State University, Marawi City 9700, Philippines.
Department of Chemistry, Nazarbayev University, Astana 010000, Kazakhstan.
Membranes (Basel). 2023 Feb 26;13(3):277. doi: 10.3390/membranes13030277.
The study of tau protein aggregation and interactions with other molecules or solvents using molecular dynamics simulations (MDs) is of interest to many researchers to propose new mechanism-based therapeutics for neurodegenerative diseases such as Alzheimer's disease, Pick's disease, chronic traumatic encephalopathy, and other tauopathies. In this review, we present recent MD simulation studies of tau oligomers and fibrils such as tau-NPK, tau-PHF, tau-K18, and tau-R3-R4 monomers and dimers. All-atom simulations by replica exchange MDs and coarse-grained MDs in lipid bilayers and in solution were used. The simulations revealed different mechanisms in the binding of tau in bilayers and in solutions, depending on the peptide size. Phosphorylation is also an important factor in MD simulations. The use of steered MDs was also included to simulate the dissociation of tau fibrils. The exponential improvement in the computing power of computers has led to an increasing number of scientists and engineers using a cost-effective, high-performance computing platform to study how the tau protein interacts and the effects of changing its structure, such as the phosphorylation of tau fibrils.
利用分子动力学模拟(MD)研究tau蛋白聚集以及与其他分子或溶剂的相互作用,这引起了许多研究人员的兴趣,他们希望借此提出针对神经退行性疾病(如阿尔茨海默病、匹克病、慢性创伤性脑病及其他tau蛋白病)的新型基于机制的疗法。在本综述中,我们展示了近期关于tau寡聚体和原纤维的MD模拟研究,例如tau-NPK、tau-PHF、tau-K18以及tau-R3-R4单体和二聚体。使用了复制交换MD和粗粒化MD在脂质双层和溶液中的全原子模拟。模拟揭示了tau在双层和溶液中的结合存在不同机制,这取决于肽的大小。磷酸化在MD模拟中也是一个重要因素。还包括使用引导MD来模拟tau原纤维的解离。计算机计算能力呈指数级提升,这使得越来越多的科学家和工程师使用具有成本效益的高性能计算平台来研究tau蛋白如何相互作用以及改变其结构(如tau原纤维的磷酸化)所产生的影响。