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使用膜染料和单分子敏感流动分析仪测量细胞外囊泡的大小。

Sizing Extracellular Vesicles Using Membrane Dyes and a Single Molecule-Sensitive Flow Analyzer.

机构信息

Department of Chemistry, University of Washington, Seattle 98195, Washington, United States.

Department of Obstetrics and Gynecology, University of Washington, Seattle 98195, Washington, United States.

出版信息

Anal Chem. 2021 Apr 13;93(14):5897-5905. doi: 10.1021/acs.analchem.1c00253. Epub 2021 Mar 30.

Abstract

Extracellular vesicles (EVs) are membranous particles released by most cells in our body, which are involved in many cell-to-cell signaling processes. Given the nanometer sizes and heterogeneity of EVs, highly sensitive methods with single-molecule resolution are fundamental to investigating their biophysical properties. Here, we demonstrate the sizing of EVs using a fluorescence-based flow analyzer with single-molecule sensitivity. Using a dye that selectively partitions into the vesicle's membrane, we show that the fluorescence intensity of a vesicle is proportional to its diameter. We discuss the constraints in sample preparation which are inherent to sizing nanoscale vesicles with a fluorescent membrane dye and propose several guidelines to improve data consistency. After optimizing staining conditions, we were able to measure the size of vesicles in the range ∼35-300 nm, covering the spectrum of EV sizes. Lastly, we developed a method to correct the signal intensity from each vesicle based on its traveling speed inside the microfluidic channel, by operating at a high sampling rate (10 kHz) and measuring the time required for the particle to cross the laser beam. Using this correction, we obtained a threefold greater accuracy in EV sizing, with a precision of ±15-25%.

摘要

细胞外囊泡 (EVs) 是我们体内大多数细胞释放的膜性颗粒,参与许多细胞间信号传递过程。鉴于 EVs 的纳米尺寸和异质性,具有单分子分辨率的高灵敏度方法是研究其生物物理特性的基础。在这里,我们使用具有单分子灵敏度的基于荧光的流动分析仪来测量 EVs 的大小。使用选择性分配到囊泡膜的染料,我们表明囊泡的荧光强度与其直径成正比。我们讨论了在使用荧光膜染料对纳米级囊泡进行尺寸测量时固有的样品制备限制,并提出了一些改进数据一致性的指导方针。在优化了染色条件后,我们能够测量范围在 ∼35-300nm 之间的囊泡大小,涵盖了 EV 大小的范围。最后,我们开发了一种方法,通过以 10 kHz 的高采样率运行并测量粒子穿过激光束所需的时间,根据每个囊泡在微流道中的行进速度来校正其信号强度。使用这种校正方法,我们在 EV 尺寸测量方面的准确性提高了三倍,精度达到 ±15-25%。

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