Panagopoulou Maria S, Wark Alastair W, Birch David J S, Gregory Christopher D
University of Edinburgh Centre for Inflammation Research, The Queen's Medical Research Institute, Edinburgh, UK.
Centre for Molecular Nanometrology, Technology and Innovation Centre, Department of Pure and Applied Chemistry, University of Strathclyde, Glasgow, UK.
J Extracell Vesicles. 2020 Jan 7;9(1):1710020. doi: 10.1080/20013078.2019.1710020. eCollection 2020.
Extracellular vesicles (EVs) have numerous potential applications in the field of healthcare and diagnostics, and research into their biological functions is rapidly increasing. Mainly because of their small size and heterogeneity, there are significant challenges associated with their analysis and despite overt evidence of the potential of EVs in clinical diagnostic practice, guidelines for analytical procedures have not yet been properly established. Here, we present an overview of the main methods for studying the properties of EVs based on the principles of fluorescence. Setting aside the isolation, purification and physicochemical characterization strategies which answer questions about the size, surface charge and stability of EVs (reviewed elsewhere), we focus on available optical tools that enable the direct analysis of phenotype and mechanisms of interaction with tissues. In brief, the topics on which we elaborate range from the most popular approaches such as nanoparticle tracking analysis and flow cytometry, to less commonly used techniques such as fluorescence depolarization and microarrays as well as emerging areas such as fast fluorescence lifetime imaging microscopy (FLIM). We highlight that understanding the strengths and limitations of each method is essential for choosing the most appropriate combination of analytical tools. Finally, future directions of this rapidly developing area of medical diagnostics are discussed.
细胞外囊泡(EVs)在医疗保健和诊断领域有众多潜在应用,对其生物学功能的研究正在迅速增加。主要由于其尺寸小和异质性,对其进行分析存在重大挑战,尽管有明显证据表明EVs在临床诊断实践中有潜力,但尚未妥善建立分析程序的指南。在此,我们基于荧光原理对研究EVs特性的主要方法进行概述。暂且不考虑用于解答有关EVs大小、表面电荷和稳定性问题的分离、纯化及物理化学表征策略(在其他地方已有综述),我们专注于能够直接分析表型及与组织相互作用机制的现有光学工具。简而言之,我们详细阐述的主题范围从最常用的方法如纳米颗粒跟踪分析和流式细胞术,到较少使用的技术如荧光去极化和微阵列,以及新兴领域如快速荧光寿命成像显微镜(FLIM)。我们强调,了解每种方法的优缺点对于选择最合适的分析工具组合至关重要。最后,讨论了这个快速发展的医学诊断领域的未来方向。