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Simplified protocol for flow cytometry analysis of fluorescently labeled exosomes and microvesicles using dedicated flow cytometer

机译:使用专用流式细胞仪的荧光标记外泌体和微泡流式细胞仪分析的简化方案

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摘要

Flow cytometry is a powerful method, which is widely used for high-throughput quantitative and qualitative analysis of cells. However, its straightforward applicability for extracellular vesicles (EVs) and mainly exosomes is hampered by several challenges, reflecting mostly the small size of these vesicles (exosomes: ~80–200 nm, microvesicles: ~200–1,000 nm), their polydispersity, and low refractive index. The current best and most widely used protocol for beads-free flow cytometry of exosomes uses ultracentrifugation (UC) coupled with floatation in sucrose gradient for their isolation, labeling with lipophilic dye PKH67 and antibodies, and an optimized version of commercial high-end cytometer for analysis. However, this approach requires an experienced flow cytometer operator capable of manual hardware adjustments and calibration of the cytometer. Here, we provide a novel and fast approach for quantification and characterization of both exosomes and microvesicles isolated from cell culture media as well as from more complex human samples (ascites of ovarian cancer patients) suitable for multiuser labs by using a flow cytometer especially designed for small particles, which can be used without adjustments prior to data acquisition. EVs can be fluorescently labeled with protein-(Carboxyfluoresceinsuccinimidyl ester, CFSE) and/or lipid- (FM) specific dyes, without the necessity of removing the unbound fluorescent dye by UC, which further facilitates and speeds up the characterization of microvesicles and exosomes using flow cytometry. In addition, double labeling with protein- and lipid-specific dyes enables separation of EVs from common contaminants of EV preparations, such as protein aggregates or micelles formed by unbound lipophilic styryl dyes, thus not leading to overestimation of EV numbers. Moreover, our protocol is compatible with antibody labeling using fluorescently conjugated primary antibodies. The presented methodology opens the possibility for routine quantification and characterization of EVs from various sources. Finally, it has the potential to bring a desired level of control into routine experiments and non-specialized labs, thanks to its simple bead-based standardization.
机译:流式细胞仪是一种强大的方法,广泛用于细胞的高通量定量和定性分析。但是,它对于细胞外囊泡(EV)和主要是囊泡的直接适用性受到一些挑战的阻碍,这主要反映了这些囊泡的体积小(囊泡:〜80–200 nm,微囊泡:〜200–1,000 nm),它们的多分散性以及低折射率。外泌体无珠流式细胞术的当前最佳和最广泛使用的方案是使用超速离心(UC)结合蔗糖梯度中的浮选进行分离,用亲脂性染料PKH67和抗体标记,以及用于商业用途的优化型高端细胞仪分析。但是,这种方法需要经验丰富的流式细胞仪操作员,能够对硬件进行手动硬件调整和校准。在这里,我们提供了一种新颖,快速的方法,通过使用专门设计的流式细胞仪对从细胞培养基以及从更复杂的人类样品(卵巢癌患者腹水)中分离的外泌体和微囊泡进行定量和表征,这些样品适用于多用户实验室小颗粒,可在数据采集前不作任何调整就使用。 EV可以用蛋白质-(羧基荧光素-琥珀酰亚胺酯,CFSE)和/或脂质-(FM)特定的染料进行荧光标记,而无需通过UC去除未结合的荧光染料,这进一步促进并加速了微囊泡和外泌体的鉴定流式细胞仪。此外,用蛋白质和脂质特异性染料进行双重标记可以将EV与EV制剂的常见污染物(例如未结合的亲脂性苯乙烯基染料形成的蛋白质聚集体或胶束)分离,因此不会导致EV值的过高估计。此外,我们的方案与使用荧光偶联一抗的抗体标记兼容。提出的方法为常规量化和表征各种来源的电动汽车提供了可能性。最后,由于其基于珠的简单标准化,它有可能将所需的控制水平带入常规实验和非专业实验室。

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