神经毒性
四聚体
化学
分子动力学
生物物理学
脂质双层
淀粉样蛋白(真菌学)
细胞生物学
单纯疱疹病毒
糖蛋白
氢键
细胞膜
胆碱能的
膜
淀粉样β
生物化学
脂筏
疏水效应
细胞
血浆蛋白结合
病毒膜
蛋白质聚集
范德瓦尔斯力
机制(生物学)
静电
膜蛋白
乙酰胆碱酯酶
蛋白质结构
P-糖蛋白
脂质双层融合
纤维
结合位点
作者
Subramanian Boopathi,Ramón Garduño‐Juárez,M. Michael Gromiha
标识
DOI:10.1021/acschemneuro.5c00866
摘要
Alzheimer's disease (AD) is characterized by deleterious amyloid plaques deposited in the brain, formed through the interaction of Amyloid β-peptides (Aβ1-42) with the cell membrane. Despite promising preclinical results, Aβ1-42 aggregation inhibitors have not delivered the anticipated benefits in clinical trials for AD. This discrepancy may stem from the fact that the cause of sporadic AD is unknown. Mounting evidence suggests that herpes simplex virus type-1 (HSV-1) may significantly contribute to the onset of AD by facilitating the aggregation of Aβ1-42 into oligomers, leading to neurotoxicity and neuronal cell loss in the brain. However, the mechanism of neurotoxicity remains elusive. Understanding the relationship between the HSV-1 envelope glycoprotein D (gD) and Aβ1-42 oligomers and their impact on neuronal membranes, is the most demanding task for unveiling the underlying mechanism. Thus, we performed extensive all-atom molecular dynamics (MD) simulations to thoroughly investigate the molecular mechanism underlying the interaction between the gD protein and Aβ1-42 oligomers in both aqueous environments and in the presence of lipid bilayers, which mimic the composition of neuronal membranes in vivo. Our simulation study provides valuable insights into the initial stages of this process, in which the Aβ1-42 tetramer (Aβ1-42t) associates with gD via hydrogen bonds formed at their interface. Consequently, we observed that Aβ1-42t-gD, rather than Aβ1-42t alone, demonstrates significant adsorption to the membrane, driven by robust electrostatic interactions between the charged residues of Aβ1-42t-gD and the phosphate groups of lipids such as POPC, POPS, POPE, and PSM. This interaction significantly reduces the electrostatic and van der Waals interactions among the lipids, in contrast to Aβ1-42t binding alone. As a result, disruptions of the lipid membrane integrity are more pronounced upon the Aβ1-42t-gD binding than the Aβ1-42t alone. This study provides atomic-level evidence that gD amplifies Aβ1-42t-membrane interactions, potentially altering membrane phase behavior and contributing to the initial molecular events underlying neuronal dysfunction, thereby suggesting a link between HSV-1 infection and the pathogenesis of AD.
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