Boselli Daniela, Clemente Francesca, Di Terlizzi Simona, Pagiatakis Christina, Papa Laura, Del Zotto Genny, Villa Chiara, Ramirez Giuseppe Alvise, Maugeri Norma, Manfredi Angelo A, Anselmo Achille
Experimental Imaging Center, FRACTAL, Flow cytometry Resource, Advanced Cytometry Technical Applications Laboratory IRCCS Ospedale San Raffaele Milan Italy.
Department of Cardiovascular Medicine IRCCS Humanitas Research Hospital Rozzano Milan Italy.
J Extracell Biol. 2025 Apr 25;4(4):e70045. doi: 10.1002/jex2.70045. eCollection 2025 Apr.
Extracellular vesicles (EVs) are crucial for intercellular communication and are found in various biological fluids. The identification and immunophenotyping of such small particles continue to pose significant challenges. Here, we have developed a workflow for the optimisation of a next-generation panel for in-depth immunophenotyping of circulating plasma EVs using spectral flow cytometry. Our data collection followed a multistep optimisation phase for both instrument setup and 21-colour panel design, thus maximising fluorescent signal recovery. This spectral approach enabled the identification of novel EV subpopulations. Indeed, besides common EVs released by erythrocytes, platelets, leukocytes and endothelial cells, we observed rare and poorly known EV subsets carrying antigens related to cell activation or exhaustion. Notably, the unsupervised data analysis of major EV subsets revealed subpopulations expressing up to five surface antigens simultaneously. However, the majority of EVs expressed only a single surface antigen, suggesting they may not fully represent the phenotype of their parent cells. This is likely due to the small surface area or the biogenesis of EVs rather than antibody steric hindrance. Finally, we tested our workflow by analysing the plasma EV landscape in a cohort of systemic lupus erythematosus (SLE) patients. Interestingly, we observed a significant increase in CD54 EVs, supporting the notion of elevated circulating ICAM under SLE conditions. To our knowledge, these are the first data highlighting the importance of a spectral flow cytometry approach in deciphering the heterogeneity of plasma EVs paving the way for the routine use of a high-dimensional immunophenotyping in EV research.
细胞外囊泡(EVs)对细胞间通讯至关重要,且存在于多种生物体液中。对这类小颗粒的鉴定和免疫表型分析仍然面临重大挑战。在此,我们开发了一种工作流程,用于优化下一代检测板,以使用光谱流式细胞术对循环血浆EVs进行深入免疫表型分析。我们的数据收集遵循仪器设置和21色检测板设计的多步骤优化阶段,从而最大限度地提高荧光信号恢复率。这种光谱方法能够识别新型EV亚群。事实上,除了红细胞、血小板、白细胞和内皮细胞释放的常见EVs外,我们还观察到携带与细胞激活或耗竭相关抗原的罕见且鲜为人知的EV亚群。值得注意的是,对主要EV亚群的无监督数据分析揭示了同时表达多达五种表面抗原的亚群。然而,大多数EVs仅表达单一表面抗原,这表明它们可能无法完全代表其母细胞的表型。这可能是由于EVs的表面积小或生物发生过程,而非抗体空间位阻。最后,我们通过分析一组系统性红斑狼疮(SLE)患者的血浆EV情况来测试我们的工作流程。有趣的是,我们观察到CD54 EVs显著增加,支持了SLE条件下循环细胞间黏附分子升高的观点。据我们所知,这些是首批强调光谱流式细胞术方法在解读血浆EVs异质性方面重要性的数据,为在EV研究中常规使用高维免疫表型分析铺平了道路。