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使用脂质体和细胞衍生囊泡的单囊泡分析:从模拟复杂膜过程到合成生物学和生物医学应用。

Single-Vesicle Assays Using Liposomes and Cell-Derived Vesicles: From Modeling Complex Membrane Processes to Synthetic Biology and Biomedical Applications.

机构信息

Institute of Chemical Sciences and Engineering , Ecole Polytechnique Fédérale de Lausanne (EPFL) , CH-1015 Lausanne , Switzerland.

出版信息

Chem Rev. 2018 Sep 26;118(18):8598-8654. doi: 10.1021/acs.chemrev.7b00777. Epub 2018 Aug 28.

Abstract

The plasma membrane is of central importance for defining the closed volume of cells in contradistinction to the extracellular environment. The plasma membrane not only serves as a boundary, but it also mediates the exchange of physical and chemical information between the cell and its environment in order to maintain intra- and intercellular functions. Artificial lipid- and cell-derived membrane vesicles have been used as closed-volume containers, representing the simplest cell model systems to study transmembrane processes and intracellular biochemistry. Classical examples are studies of membrane translocation processes in plasma membrane vesicles and proteoliposomes mediated by transport proteins and ion channels. Liposomes and native membrane vesicles are widely used as model membranes for investigating the binding and bilayer insertion of proteins, the structure and function of membrane proteins, the intramembrane composition and distribution of lipids and proteins, and the intermembrane interactions during exo- and endocytosis. In addition, natural cell-released microvesicles have gained importance for early detection of diseases and for their use as nanoreactors and minimal protocells. Yet, in most studies, ensembles of vesicles have been employed. More recently, new micro- and nanotechnological tools as well as novel developments in both optical and electron microscopy have allowed the isolation and investigation of individual (sub)micrometer-sized vesicles. Such single-vesicle experiments have revealed large heterogeneities in the structure and function of membrane components of single vesicles, which were hidden in ensemble studies. These results have opened enormous possibilities for bioanalysis and biotechnological applications involving unprecedented miniaturization at the nanometer and attoliter range. This review will cover important developments toward single-vesicle analysis and the central discoveries made in this exciting field of research.

摘要

细胞膜对于定义与细胞外环境相对的细胞封闭体积具有核心重要性。细胞膜不仅充当边界,还介导细胞与其环境之间的物理和化学信息交换,以维持细胞内和细胞间的功能。人工脂质和细胞衍生的膜囊泡已被用作封闭体积容器,代表最简单的细胞模型系统,用于研究跨膜过程和细胞内生物化学。经典的例子是研究质膜囊泡和蛋白脂囊泡中转运蛋白和离子通道介导的膜转运过程。脂质体和天然膜囊泡广泛用作模型膜,用于研究蛋白质的结合和双层插入、膜蛋白的结构和功能、膜脂和蛋白质的跨膜组成和分布,以及胞吞和胞吐过程中的膜间相互作用。此外,天然细胞释放的微囊泡在疾病的早期检测以及作为纳米反应器和最小原细胞的用途方面变得越来越重要。然而,在大多数研究中,使用的都是囊泡的混合物。最近,新的微纳技术工具以及光学和电子显微镜的新发展,使得单个(亚)微米大小的囊泡的分离和研究成为可能。这些单个囊泡实验揭示了单个囊泡中膜成分的结构和功能的巨大异质性,而这些异质性在混合物研究中被隐藏了。这些结果为涉及在纳米和阿托升范围内前所未有的微型化的生物分析和生物技术应用开辟了巨大的可能性。本综述将涵盖朝着单个囊泡分析的重要发展以及在这个令人兴奋的研究领域中取得的核心发现。

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