Department of Biochemistry, University of Oxford , South Parks Road, Oxford, OX1 3QU, U.K.
Department of Physics, Institute for Soft Matter Synthesis and Metrology, Georgetown University , 37th and O Streets, N.W., Washington, D.C. 20057, United States.
J Am Chem Soc. 2016 Sep 14;138(36):11633-42. doi: 10.1021/jacs.6b04880. Epub 2016 Aug 30.
Characterizing the nanoscale dynamic organization within lipid bilayer membranes is central to our understanding of cell membranes at a molecular level. We investigate phase separation and communication across leaflets in ternary lipid bilayers, including saturated lipids with between 12 and 20 carbons per tail. Coarse-grained molecular dynamics simulations reveal a novel two-step kinetics due to hydrophobic mismatch, in which the initial response of the apposed leaflets upon quenching is to increase local asymmetry (antiregistration), followed by dominance of symmetry (registration) as the bilayer equilibrates. Antiregistration can become thermodynamically preferred if domain size is restricted below ∼20 nm, with implications for the symmetry of rafts and nanoclusters in cell membranes, which have similar reported sizes. We relate our findings to theory derived from a semimicroscopic model in which the leaflets experience a "direct" area-dependent coupling, and an "indirect" coupling that arises from hydrophobic mismatch and is most important at domain boundaries. Registered phases differ in composition from antiregistered phases, consistent with a direct coupling between the leaflets. Increased hydrophobic mismatch purifies the phases, suggesting that it contributes to the molecule-level lipid immiscibility. Our results demonstrate an interplay of competing interleaflet couplings that affect phase compositions and kinetics, and lead to a length scale that can influence lateral and transverse bilayer organization within cells.
描述双层脂膜内的纳米级动态组织是理解细胞膜在分子水平上的关键。我们研究了包括具有 12 到 20 个碳尾的饱和脂质在内的三元脂质双层中双层小叶片之间的相分离和通讯。粗粒分子动力学模拟揭示了一种由于疏水性失配而导致的新的两步动力学,其中在猝灭时相邻小叶片的初始响应是增加局部不对称性(反注册),然后随着双层平衡,对称性(注册)占主导地位。如果域大小限制在约 20nm 以下,反注册可能在热力学上更有利,这对细胞膜中筏和纳米簇的对称性有影响,它们具有类似的报道大小。我们将我们的发现与从半微观模型得出的理论联系起来,其中小叶片经历“直接”面积相关耦合,以及由疏水性失配引起的“间接”耦合,在域边界处最重要。与反注册相相比,注册相在组成上有所不同,这与小叶片之间的直接耦合一致。疏水性失配的增加使相纯化,表明它有助于分子水平的脂质不混溶性。我们的结果表明,竞争的小叶间耦合相互作用影响相组成和动力学,并导致一个长度尺度,从而影响细胞内的横向和横向双层组织。