The interplay of composition and mechanics in the thermodynamics of asymmetric ternary lipid membranes.

IF 3.3 3区 化学 Q2 CHEMISTRY, PHYSICAL
Malavika Varma, Markus Deserno
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引用次数: 0

Abstract

Eukaryotic lipid membranes are both compositionally complex and strongly asymmetric. Preferential lipid interactions enable coexistence between two fluid phases and an associated critical point, while bilayer asymmetry leads to leaflet-specific values for many observables-most saliently composition, but also a difference in leaflet tensions, for which we introduced the term "differential stress." Lipid mixing thermodynamics has been extensively studied, notably in idealized ternary model systems, and interest in asymmetry has grown significantly in the past decade, but their interplay remains poorly understood. Here we propose a conceptual framework for the thermodynamics of asymmetric ternary lipid membranes. Cholesterol emerges as an essential actor playing two different roles: first, it controls lipid mixing; second, it couples the compositional phase points of the two leaflets by achieving chemical equilibrium between them. Since differential stress can squeeze cholesterol from one leaflet into the other, this couples mechanical properties such as lateral stresses and curvature torques directly to mixing thermodynamics. Using coarse-grained simulations, we explore implications for leaflet coexistence, mechanical stability of giant vesicles, and differential stress driven phase segregation in a single leaflet. We hope this framework enables a fresh look at some persistent puzzles in this field, most notably the elusive nature of lipid rafts.

不对称三元脂质膜热力学中组分与力学的相互作用。
真核生物的脂质膜组成复杂且不对称。优先的脂质相互作用使两种流体相和相关临界点之间能够共存,而双层不对称导致许多可观察到的小叶特异性值-最显著的成分,以及小叶张力的差异,对此我们引入了术语“差应力”。脂质混合热力学已经得到了广泛的研究,特别是在理想化的三元模型系统中,并且在过去十年中对不对称的兴趣显著增长,但它们的相互作用仍然知之甚少。本文提出了不对称三元脂质膜热力学的概念框架。胆固醇扮演着两个重要角色:首先,它控制脂质混合;其次,它通过实现它们之间的化学平衡来耦合两个小叶的组成相点。由于差应力可以将胆固醇从一个小叶挤压到另一个小叶中,这就将横向应力和曲率扭矩等机械特性直接与混合热力学结合起来。通过粗粒度模拟,我们探索了单叶中小叶共存、巨囊泡机械稳定性和差应力驱动相偏析的影响。我们希望这个框架能让我们重新审视这个领域中一些长期存在的谜题,尤其是脂筏难以捉摸的本质。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Faraday Discussions
Faraday Discussions 化学-物理化学
自引率
0.00%
发文量
259
期刊介绍: Discussion summary and research papers from discussion meetings that focus on rapidly developing areas of physical chemistry and its interfaces
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