Department of Physics and Informatics, Yamaguchi University, 1677-1 Yoshida, Yamaguchi, 753-8512, Japan.
Department of Physics, Tohoku University, Aoba, Sendai 980-8578, Japan.
Soft Matter. 2021 Sep 29;17(37):8434-8445. doi: 10.1039/d1sm00847a.
We investigated the deformation of small unilamellar vesicles (SUVs) induced by flip-flops of lipids using coarse-grained molecular dynamics simulations. In the case of single-component SUVs composed of zero spontaneous curvature lipids (ZLs), the flip-flop of ZLs deformed stomatocyte-shaped SUVs into an oblate shape, whereas pear-shaped SUVs were deformed into a prolate shape. These two equilibrium shapes comply with the local minima of elastic energy. In the case of binary vesicles composed of ZLs and negative spontaneous curvature lipids (NLs), the vesicle deformation pathway depended on the initial NL distribution in the bilayer. If the initial difference in the NL concentration between the outer and inner leaflets was small, the flip-flop of ZLs and NLs rapidly deformed pear-shaped SUVs into an equilibrium prolate shape. On the other hand, when NLs were localised in the inner leaflet, the flip-flop of ZLs and NLs deformed pear-shaped SUVs into a limiting shape and then induced vesicle division. Because the flip-flop rate of NLs is much faster than that of ZLs, the total free energy was first relaxed by the flip-flop of NLs and then by that of ZLs. This kinetic effect is responsible for the observed vesicle division induced by flip-flops.
我们使用粗粒化分子动力学模拟研究了脂质翻转引起的小单层囊泡(SUV)的变形。在由零自发曲率脂质(ZLs)组成的单组分 SUV 的情况下,ZLs 的翻转将胞囊状 SUV 变形为扁球体,而梨形 SUV 则变形为长球体。这两种平衡形状符合弹性势能的局部最小值。在由 ZLs 和负自发曲率脂质(NLs)组成的双分子囊泡的情况下,囊泡的变形途径取决于双层中初始 NL 的分布。如果外叶和内叶之间 NL 浓度的初始差异较小,ZLs 和 NLs 的翻转会迅速将梨形 SUV 变形为平衡的长球体。另一方面,当 NLs 定位于内叶时,ZLs 和 NLs 的翻转会将梨形 SUV 变形为极限形状,然后诱导囊泡分裂。由于 NLs 的翻转速率远快于 ZLs,因此总自由能首先通过 NLs 的翻转松弛,然后通过 ZLs 的翻转松弛。这种动力学效应是观察到的由翻转引起的囊泡分裂的原因。