Breaking free: endocytosis and endosomal escape of extracellular vesicles

L. Ribovski, B. Joshi, J. Gao, I. Zuhorn
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引用次数: 1

Abstract

Extracellular vesicles (EVs) are natural micro-/nanoparticles that play an important role in intercellular communication. They are secreted by producer/donor cells and subsequent uptake by recipient/acceptor cells may result in phenotypic changes in these cells due to the delivery of cargo molecules, including lipids, RNA, and proteins. The process of endocytosis is widely described as the main mechanism responsible for cellular uptake of EVs, with endosomal escape of cargo molecules being a necessity for the functional delivery of EV cargo. Equivalent to synthetic micro-/nanoparticles, the properties of EVs, such as size and composition, together with environmental factors such as temperature, pH, and extracellular fluid composition, codetermine the interactions of EVs with cells, from binding to uptake, intracellular trafficking, and cargo release. Innovative assays for detection and quantification of the different steps in the EV formation and EV-mediated cargo delivery process have provided valuable insight into the biogenesis and cellular processing of EVs and their cargo, revealing the occurrence of EV recycling and degradation, next to functional cargo delivery, with the back fusion of the EV with the endosomal membrane standing out as a common cargo release pathway. In view of the significant potential for developing EVs as drug delivery systems, this review discusses the interaction of EVs with biological membranes en route to cargo delivery, highlighting the reported techniques for studying EV internalization and intracellular trafficking, EV-membrane fusion, endosomal permeabilization, and cargo delivery, including functional delivery of RNA cargo.
挣脱:胞外囊泡的内吞作用和内体逃逸
细胞外囊泡(EVs)是一种天然的微/纳米颗粒,在细胞间通讯中起着重要作用。它们由生产者/供体细胞分泌,随后被受体/受体细胞摄取,可能导致这些细胞的表型变化,这是由于运送货物分子,包括脂质、RNA和蛋白质。内吞作用过程被广泛描述为负责细胞摄取EV的主要机制,货物分子的内体逃逸是EV货物功能递送的必要条件。相当于合成的微/纳米颗粒,电动汽车的性质,如大小和组成,以及环境因素,如温度、pH值和细胞外液组成,共同决定了电动汽车与细胞的相互作用,从结合到摄取,细胞内运输和货物释放。检测和量化电动汽车形成和电动汽车介导的货物递送过程的不同步骤的创新分析为电动汽车及其货物的生物发生和细胞加工提供了有价值的见解,揭示了电动汽车回收和降解的发生,除了功能性货物递送之外,电动汽车与内体膜的反向融合是一种常见的货物释放途径。鉴于开发EV作为药物递送系统的巨大潜力,本文讨论了EV在货物递送过程中与生物膜的相互作用,重点介绍了EV内化和细胞内运输、EV-膜融合、内体渗透和货物递送(包括RNA货物的功能递送)的研究技术。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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