Pronk Sander, Lindahl Erik, Kasson Peter M
'Department of Theoretical Physics, KTH Royal Institute of Technology , AlbaNova, 106 91 Stockholm, Sweden.
J Am Chem Soc. 2015 Jan 21;137(2):708-14. doi: 10.1021/ja508803d. Epub 2015 Jan 6.
Biomembrane interfaces create regions of slowed water dynamics in their vicinity. When two lipid bilayers come together, this effect is further accentuated, and the associated slowdown can affect the dynamics of larger-scale processes such as membrane fusion. We have used molecular dynamics simulations to examine how lipid and water dynamics are affected as two lipid bilayers approach each other. These two interacting fluid systems, lipid and water, both slow and become coupled when the lipid membranes are separated by a thin water layer. We show in particular that the water dynamics become glassy, and diffusion of lipids in the apposed leaflets becomes coupled across the water layer, while the "outer" leaflets remain unaffected. This dynamic coupling between bilayers appears mediated by lipid-water-lipid hydrogen bonding, as it occurs at bilayer separations where water-lipid hydrogen bonds become more common than water-water hydrogen bonds. We further show that such coupling occurs in simulations of vesicle-vesicle fusion prior to the fusion event itself. Such altered dynamics at membrane-membrane interfaces may both stabilize the interfacial contact and slow fusion stalk formation within the interface region.
生物膜界面在其附近形成水动力学减缓的区域。当两个脂质双层靠近时,这种效应会进一步加剧,相关的减缓可能会影响诸如膜融合等更大尺度过程的动力学。我们使用分子动力学模拟来研究当两个脂质双层相互靠近时脂质和水的动力学是如何受到影响的。这两个相互作用的流体系统,脂质和水,当脂质膜被一层薄水层隔开时都会变慢并相互耦合。我们特别表明,水动力学变得像玻璃态一样,相对的小叶中脂质的扩散会跨水层耦合,而“外部”小叶则不受影响。双层之间的这种动态耦合似乎是由脂质 - 水 - 脂质氢键介导的,因为它发生在双层间距处,此时水 - 脂质氢键比水 - 水氢键更常见。我们进一步表明,这种耦合发生在囊泡 - 囊泡融合模拟中融合事件本身之前。膜 - 膜界面处这种改变的动力学可能既稳定界面接触又减缓界面区域内融合柄的形成。