Lockhart Christopher, Klimov Dmitri K
School of Systems Biology and Computational Materials Science Center, George Mason University, Manassas, Virginia.
School of Systems Biology and Computational Materials Science Center, George Mason University, Manassas, Virginia.
Biophys J. 2015 Apr 7;108(7):1807-1818. doi: 10.1016/j.bpj.2015.03.001.
Using isobaric-isothermal replica-exchange molecular dynamics and the all-atom explicit-solvent model, we studied the equilibrium binding of Aβ monomers to a zwitterionic dimyristoylphosphatidylcholine (DMPC) bilayer coincubated with calcium ions. Using our previous replica-exchange molecular dynamics calcium-free simulations as a control, we reached three conclusions. First, calcium ions change the tertiary structure of the bound Aβ monomer by destabilizing several long-range intrapeptide interactions, particularly the salt bridge Asp(23)-Lys(28). Second, calcium strengthens Aβ peptide binding to the DMPC bilayer by enhancing electrostatic interactions between charged amino acids and lipid polar headgroups. As a result, Aβ monomer penetrates deeper into the bilayer, making disorder in proximal lipids and bilayer thinning more pronounced. Third, because calcium ions demonstrate strong affinity to negatively charged amino acids, a considerable influx of calcium into the area proximal to the bound Aβ monomer is observed. Consequently, the localizations of negatively charged amino acids and calcium ions in the Aβ binding footprint overlap. Based on our data, we propose a mechanism by which calcium ions strengthen Aβ-bilayer interactions. This mechanism involves two factors: 1) calcium ions make the DMPC bilayer partially cationic and thus attractive to the anionic Aβ peptide; and 2) destabilization of the Asp(23)-Lys(28) salt bridge makes Lys(28) available for interactions with the bilayer. Finally, we conclude that a single Aβ monomer does not promote permeation of calcium ions through the zwitterionic bilayer.
我们使用等压等温副本交换分子动力学和全原子显式溶剂模型,研究了Aβ单体与与钙离子共孵育的两性离子二肉豆蔻酰磷脂酰胆碱(DMPC)双层膜的平衡结合。以我们之前无钙的副本交换分子动力学模拟作为对照,我们得出了三个结论。第一,钙离子通过破坏几个长程肽内相互作用,特别是盐桥Asp(23)-Lys(28),改变了结合的Aβ单体的三级结构。第二,钙离子通过增强带电氨基酸与脂质极性头部基团之间的静电相互作用,加强了Aβ肽与DMPC双层膜的结合。结果,Aβ单体更深地穿透双层膜,使近端脂质的无序性和双层膜变薄更加明显。第三,由于钙离子对带负电荷的氨基酸表现出很强的亲和力,观察到大量钙离子流入结合的Aβ单体近端区域。因此,带负电荷的氨基酸和钙离子在Aβ结合足迹中的定位重叠。基于我们的数据,我们提出了一种钙离子加强Aβ-双层膜相互作用的机制。该机制涉及两个因素:1)钙离子使DMPC双层膜部分带阳离子,因此对阴离子Aβ肽具有吸引力;2)Asp(23)-Lys(28)盐桥的不稳定使Lys(28)可用于与双层膜相互作用。最后,我们得出结论,单个Aβ单体不会促进钙离子通过两性离子双层膜的渗透。