论文标题

囊泡与纳米管之间的拓扑连接,在单分子脂质膜上由头尾相互作用驱动

Topological connection between vesicles and nanotubes in single-molecule lipid membranes driven by head-tail interactions

论文作者

Baccile, Niki, Lorthioir, Cédric, Ba, Abdoul Aziz, Griel, Patrick Le, Perez, Javier, Merino, Daniel Hermida, Soetaert, Wim, Roelants, Sophie L K W

论文摘要

脂质纳米管网络是物质间通信和运输的重要渠道。实验性地观察到在相邻的哺乳动物细胞中,但在模型膜系统中也重现,在其形成和稳定性上存在广泛的共识。脂质膜必须由至少两个分子成分组成,每个分子成分稳定低(通常是磷脂)和高曲率。第二两重的强烈各向异性或增强的锥形形状对于纳米核的形成至关重要。各向异性驱动力通常有利于囊泡的纳米管突起。在目前的工作中,我们报告了在没有方向力的情况下获得的拓扑连接的纳米管 - 叶面的独特情况,在单分子膜中,该膜由各向异性的Bolaform葡萄糖糖组成,高于其融化温度,TM。冷冻-TEM和荧光共聚焦显微镜显示了单相区域中囊泡和纳米管之间的互连,在稀释条件下60 {\ textDegree}和90 {\ textDegree} C之间的互连。固态NMR表明,葡萄糖可以假设两种不同的构型,即头尾和头尾。这些排列似乎在TM上方具有可比的能量,可以解释拓扑连接的囊泡和纳米管的存在和稳定性,对于基于TM的经典单分子磷脂膜通常未观察到。

Lipid nanotube-vesicle networks are important channels for intercellular communication and transport of matter. Experimentally observed in neighboring mammalian cells, but also reproduced in model membrane systems, a broad consensus exists on their formation and stability. Lipid membranes must be composed of at least two molecular components, each stabilizing low (generally a phospholipid) and high curvatures. Strong anisotropy or enhanced conical shape of the second amphiphile is crucial for the formation of nanotunnels. Anisotropic driving forces generally favor nanotube protrusions from vesicles. In the present work, we report the unique case of topologically-connected nanotubes-vesicles obtained in the absence of directional forces, in single-molecule membranes, composed of an anisotropic bolaform glucolipid, above its melting temperature, Tm. Cryo-TEM and fluorescence confocal microscopy show the interconnection between vesicles and nanotubes in a single-phase region, between 60{\textdegree} and 90{\textdegree}C under diluted conditions. Solid-state NMR demonstrates that the glucolipid can assume two distinct configurations, head-head and head-tail. These arrangements, seemingly of comparable energy above the Tm, could explain the existence and stability of the topologically-connected vesicles and nanotubes, which are generally not observed for classical single-molecule phospholipid-based membranes above their Tm.

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