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Quantitative optical microscopy and micromanipulation studies on the lipid bilayer membranes of giant unilamellar vesicles

机译:巨型单层囊泡脂质双层膜的定量光学显微镜和显微操作研究

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This manuscript discusses basic methodological aspects of optical microscopy and micromanipulation methods to study membranes and reviews methods to generate giant unilamellar vesicles (GUVs). In particular, we focus on the use of fluorescence microscopy and micropipet manipulation techniques to study composition-structure-property materials relationships of free-standing lipid bilayer membranes. Because their size (~5-100 μm diameter) that is well above the resolution limit of regular light microscopes, GUVs are suitable membrane models for optical microscopy and micromanipulation experimentation. For instance, using different fluorescent reporters, fluorescence microscopy allows strategies to study membrane lateral structure/dynamics at the level of single vesicles of diverse compositions. The micropipet manipulation technique on the other hand, uses Hoffman modulation contrast microscopy and allows studies on the mechanical, thermal, molecular exchange and adhesive-interactive properties of compositionally different membranes under controlled environmental conditions. The goal of this review is to (i) provide a historical perspective for both techniques; (ii) present and discuss some of their most important contributions to our understanding of lipid bilayer membranes; and (iii) outline studies that would utilize both techniques simultaneously on the same vesicle thus bringing the ability to characterize structure and strain responses together with the direct application of well-defined stresses to a single membrane or observe the effects of adhesive spreading. Knowledge gained by these studies has informed several applications of lipid membranes including their use as lung surfactants and drug delivery systems for cancer.
机译:该手稿讨论了光学显微镜和显微操作方法的基本方法论,以研究膜并回顾了产生巨型单层囊泡(GUV)的方法。特别是,我们专注于荧光显微镜和微量移液管操作技术的使用,以研究独立式脂质双层膜的组成-结构-性质材料之间的关系。由于GUV的尺寸(直径约5-100μm)大大超出了常规光学显微镜的分辨率极限,因此它们是适用于光学显微镜和显微操作实验的膜模型。例如,使用不同的荧光报告分子,荧光显微镜允许策略研究不同组成的单个囊泡水平的膜侧向结构/动力学。另一方面,微移液操作技术使用霍夫曼调制对比显微镜,可以研究在受控环境条件下组成不同的膜的机械,热,分子交换和胶粘剂相互作用特性。这次审查的目的是(i)提供两种技术的历史观点; (ii)介绍和讨论它们对我们对脂质双层膜的理解的最重要贡献; (iii)概述将在同一囊泡上同时使用两种技术的研究,从而带来表征结构和应变响应的能力,以及将明确定义的应力直接施加到单个膜上或观察粘合剂扩散的影响。这些研究获得的知识为脂质膜的一些应用提供了信息,包括它们作为肺表面活性剂和癌症的药物输送系统的用途。

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