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Revealing the diversity of extracellular vesicles using high-dimensional flow cytometry analyses

机译:使用高维流式细胞仪分析揭示细胞外囊泡的多样性

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摘要

Extracellular vesicles (EV) are small membrane vesicles produced by cells upon activation and apoptosis. EVs are heterogeneous according to their origin, mode of release, membrane composition, organelle and biochemical content, and other factors. Whereas it is apparent that EVs are implicated in intercellular communication, they can also be used as biomarkers. Continuous improvements in pre-analytical parameters and flow cytometry permit more efficient assessment of EVs; however, methods to more objectively distinguish EVs from cells and background, and to interpret multiple single-EV parameters are lacking. We used spanning-tree progression analysis of density-normalized events (SPADE) as a computational approach for the organization of EV subpopulations released by platelets and erythrocytes. SPADE distinguished EVs, and logically organized EVs detected by high-sensitivity flow cytofluorometry based on size estimation, granularity, mitochondrial content, and phosphatidylserine and protein receptor surface expression. Plasma EVs were organized by hierarchy, permitting appreciation of their heterogeneity. Furthermore, SPADE was used to analyze EVs present in the synovial fluid of patients with inflammatory arthritis. Its algorithm efficiently revealed subtypes of arthritic patients based on EV heterogeneity patterns. Our study reveals that computational algorithms are useful for the analysis of high-dimensional single EV data, thereby facilitating comprehension of EV functions and biomarker development.
机译:细胞外囊泡(EV)是细胞在激活和凋亡后产生的小膜囊泡。电动汽车根据其来源,释放方式,膜成分,细胞器和生化含量以及其他因素而异质。显然,电动汽车与细胞间通讯有关,但它们也可以用作生物标记。分析前参数和流式细胞仪的不断改进使对电动汽车的评估更加有效。然而,缺乏更客观地将电动汽车与细胞和背景区分开来并解释多个单电动汽车参数的方法。我们使用密度归一化事件(SPADE)的生成树进度分析作为一种计算方法,用于组织由血小板和红细胞释放的EV亚群。 SPADE特有的电动汽车,以及基于大小估计,粒度,线粒体含量以及磷脂酰丝氨酸和蛋白质受体表面表达的高灵敏度流式细胞仪检测到的逻辑组织电动汽车。等离子电动车是按层次结构组织的,可以欣赏其异质性。此外,SPADE还用于分析炎症性关节炎患者滑液中存在的电动汽车。它的算法基于EV异质性模式有效地揭示了关节炎患者的亚型。我们的研究表明,计算算法可用于分析高维单个EV数据,从而促进对EV功能的理解和生物标记物的开发。

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