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一种新型基于半导体的流式细胞仪,具有增强的光散射灵敏度,用于分析生物纳米颗粒。

A Novel Semiconductor-Based Flow Cytometer with Enhanced Light-Scatter Sensitivity for the Analysis of Biological Nanoparticles.

机构信息

Beckman Coulter Life Sciences, Life Science Research, Miami, FL, USA.

Beckman Coulter Life Sciences, Particle Characterization, Miami, FL, USA.

出版信息

Sci Rep. 2019 Nov 5;9(1):16039. doi: 10.1038/s41598-019-52366-4.

Abstract

The CytoFLEX is a novel semiconductor-based flow cytometer that utilizes avalanche photodiodes, wavelength-division multiplexing, enhanced optics, and diode lasers to maximize light capture and minimize optical and electronic noise. Due to an increasing interest in the use of extracellular vesicles (EVs) as disease biomarkers, and the growing desire to use flow cytometry for the analyses of biological nanoparticles, we assessed the light-scatter sensitivity of the CytoFLEX for small-particle detection. We found that the CytoFLEX can fully resolve 70 nm polystyrene and 98.6 nm silica beads by violet side scatter (VSSC). We further analyzed the detection limit for biological nanoparticles, including viruses and EVs, and show that the CytoFLEX can detect viruses down to 81 nm and EVs at least as small as 65 nm. Moreover, we could immunophenotype EV surface antigens, including directly in blood and plasma, demonstrating the double labeling of platelet EVs with CD61 and CD9, as well as triple labeling with CD81 for an EV subpopulation in one donor. In order to assess the refractive indices (RIs) of the viruses and EVs, we devised a new method to inversely calculate the RIs using the intensity vs. size data together with Mie-theory scatter efficiencies scaled to reference-particle measurements. Each of the viruses tested had an equivalent RI, approximately 1.47 at 405 nm, which suggests that flow cytometry can be more broadly used to easily determine virus sizes. We also found that the RIs of EVs increase as the particle diameters decrease below 150 nm, increasing from 1.37 for 200 nm EVs up to 1.61 for 65 nm EVs, expanding the lower range of EVs that can be detected by light scatter. Overall, we demonstrate that the CytoFLEX has an unprecedented level of sensitivity compared to conventional flow cytometers. Accordingly, the CytoFLEX can be of great benefit to virology and EV research, and will help to expand the use of flow cytometry for minimally invasive liquid biopsies by allowing for the direct analysis of antigen expression on biological nanoparticles within patient samples, including blood, plasma, urine and bronchoalveolar lavages.

摘要

CytoFLEX 是一种新型基于半导体的流式细胞仪,它利用雪崩光电二极管、波分复用、增强光学和二极管激光器来最大限度地捕获光并最小化光和电子噪声。由于人们对细胞外囊泡 (EVs) 作为疾病生物标志物的应用越来越感兴趣,并且越来越希望使用流式细胞术分析生物纳米颗粒,因此我们评估了 CytoFLEX 对小颗粒检测的光散射灵敏度。我们发现 CytoFLEX 可以通过紫光边散射 (VSSC) 完全分辨 70nm 聚苯乙烯和 98.6nm 二氧化硅珠。我们进一步分析了生物纳米颗粒(包括病毒和 EVs)的检测限,并表明 CytoFLEX 可以检测到 81nm 以下的病毒和至少 65nm 以下的 EVs。此外,我们可以对 EV 表面抗原进行免疫表型分析,包括直接在血液和血浆中,证明血小板 EVs 与 CD61 和 CD9 的双重标记,以及在一位供体中使用 CD81 对 EV 亚群进行三重标记。为了评估病毒和 EV 的折射率 (RI),我们设计了一种新方法,通过使用强度与尺寸数据以及与参考粒子测量缩放的米氏理论散射效率来反向计算 RI。测试的每种病毒都具有等效的 RI,在 405nm 时约为 1.47,这表明流式细胞术可以更广泛地用于轻松确定病毒大小。我们还发现,当颗粒直径小于 150nm 时,EV 的 RI 会增加,从 200nm EV 的 1.37 增加到 65nm EV 的 1.61,扩大了可以通过光散射检测到的 EV 的下限。总的来说,与传统流式细胞仪相比,CytoFLEX 具有前所未有的灵敏度。因此,CytoFLEX 可以极大地有益于病毒学和 EV 研究,并将有助于通过允许直接分析患者样本(包括血液、血浆、尿液和支气管肺泡灌洗)中的生物纳米颗粒上的抗原表达,扩大流式细胞术在微创液体活检中的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bd34/6831566/bd26e95145e9/41598_2019_52366_Fig1_HTML.jpg

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