定量荧光纳米颗粒跟踪分析和纳米流式细胞术使单个细胞外囊泡的高级表征成为可能。

Journal of extracellular biology Pub Date : 2025-01-08 eCollection Date: 2025-01-01 DOI:10.1002/jex2.70031
Danilo Mladenović, Joseph Brealey, Ben Peacock, Kairi Koort, Nataša Zarovni
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引用次数: 0

摘要

目前最先进的分析细胞外囊泡(EV)的工具要么提供高灵敏度但一维的EV成分体积测量,要么提供高分辨率的多参数单粒子分析,但缺乏标准化和适当的参考物质。这限制了评估单个EV中标记丰度和总体标记分布的准确性,并最终限制了对真正EV异质性的理解。在本研究中,我们旨在通过纳米颗粒跟踪分析(NTA)和纳米流式细胞术(nFCM)两种常用的EV分析平台,定义EV荧光表征的标准化操作程序和标准物质。我们在ZetaView NTA和NanoAnalyzer nFCM仪器上使用具有指定等效参考荧光团值的黄绿色荧光球(FS)进行了定量荧光分析。这种标准化技术允许荧光EV信号以ERF单位表达(指示每个EV结合的荧光抗体),从而能够测量单个EV和整个EV群体的靶蛋白标记物丰度。分别对21个和9个Alexa Fluor 488 (AF488)分子进行NTA和nFCM的检出限(LoD)评估。为了补充在单个EV中表达的标记的有限定量,使用平板阅读器进行了在线批量荧光测量。这提供了绝对标记量化和更深入的EV异质性和标记化学计量分析。这项工作概述的标准化方法释放了NTA和nFCM的全部分析潜力,实现了跨平台数据比较。同时,它强调了一些技术挑战和注意事项,从而有助于正在进行的EV分析工具开发的努力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Quantitative fluorescent nanoparticle tracking analysis and nano-flow cytometry enable advanced characterization of single extracellular vesicles.

Current state-of-the-art tools for analysing extracellular vesicles (EVs) offer either highly sensitive but unidimensional bulk measurements of EV components, or high-resolution multiparametric single-particle analyses which lack standardization and appropriate reference materials. This limits the accuracy of the assessment of marker abundance and overall marker distribution amongst individual EVs, and finally, the understanding of true EV heterogeneity. In this study, we aimed to define the standardized operating procedures and reference material for fluorescent characterization of EVs with two commonly used EV analytical platforms-nanoparticle tracking analysis (NTA) and nano-flow cytometry (nFCM). We achieved quantitative fluorescence analyses on ZetaView NTA and NanoAnalyzer nFCM instruments, by utilizing yellow-green FluoSpheres (FS) with assigned ERF (equivalent reference fluorophore) values. This standardization technique allowed for fluorescent EV signal to be expressed in ERF units (indicative of bound fluorescent antibodies per EV), thus enabling measurement of target protein marker abundance on individual EVs, and in the whole EV population. The NTA's and nFCM's limits of detection (LoD) were evaluated at 21 and 9 Alexa Fluor 488 (AF488) molecules, respectively. To complement the limited quantification of markers expressed in a few copies per single EV, in-line bulk fluorescence measurements with a plate reader were performed. This provided absolute marker quantification and more insightful analyses of EV heterogeneity and marker stoichiometry. The standardization method outlined in this work unlocks the full analytical potential of NTA and nFCM, enabling cross-platform data comparison. At the same time, it highlights some of the technical challenges and considerations and thus contributes to the ongoing efforts towards the development of EV analytical tools.

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