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水凝胶支撑的脂质双层的组装、形态、扩散和压痕。

Assembly, Morphology, Diffusivity, and Indentation of Hydrogel-Supported Lipid Bilayers.

机构信息

Department of Civil and Environmental Engineering, University of Illinois at Urbana-Champaign , Urbana 61801, Illinois United States.

Department of Materials Science and Engineering, University of Illinois at Urbana-Champaign , Urbana 61801, Illinois United States.

出版信息

Langmuir. 2017 Jul 18;33(28):7105-7117. doi: 10.1021/acs.langmuir.7b01062. Epub 2017 Jul 5.

Abstract

Recognizing the limitations of solid-supported lipid bilayers to reproduce the behavior of cell membranes, including bendability, transmembrane protein inclusion, and virus entry, this study describes a novel biomimetic system for cell membranes with the potential to overcome these and other limitations. The developed strategy utilizes a hydrogel with tunable mechanical behavior that resembles those of living cells as the soft support for the phospholipid bilayer, while a polyelectrolyte multilayer film serves as an intermediate layer to facilitate the self-assembly of the lipid bilayer on the soft cushion. Quartz crystal microbalance studies show that, upon coming into contact with the polyelectrolyte film, vesicles fuse and rupture to yield a robust lipid bilayer. Fluorescence recovery after photobleaching confirms the formation of a membrane, while atomic force microscopy shows a low adhesion between the indenting probe and the bilayer. More importantly, in comparison to the solid-supported lipid bilayer, the response of this biomimetic system to nanoindentation demonstrates its increased mechanical stability and bendability when assembled on a soft cushion. Hence, the developed hydrogel-supported lipid bilayers can mimic biomechanical properties of cell membranes, which will enable scientists to study and to understand biophysicochemical interactions between cell membranes and extracellular entities.

摘要

认识到固载脂质双层在复制细胞膜行为方面的局限性,包括柔韧性、跨膜蛋白包含和病毒进入,本研究描述了一种新型的仿生细胞膜系统,具有克服这些和其他局限性的潜力。所开发的策略利用具有类似于活细胞的可调节机械性能的水凝胶作为磷脂双层的软支撑,而聚电解质多层膜作为中间层,以促进脂质双层在软垫上的自组装。石英晶体微天平研究表明,当与聚电解质膜接触时,囊泡融合并破裂,产生坚固的脂质双层。荧光恢复后光漂白证实了膜的形成,而原子力显微镜显示压痕探针和双层之间的低粘附力。更重要的是,与固载脂质双层相比,该仿生系统对纳米压痕的响应表明,当组装在软垫上时,其机械稳定性和柔韧性得到增强。因此,所开发的水凝胶支撑脂质双层可以模拟细胞膜的生物力学特性,这将使科学家能够研究和理解细胞膜与细胞外实体之间的生物物理化学相互作用。

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