首页> 外文期刊>Cytometry, Part A: the journal of the International Society for Analytical Cytology >A Systematic Approach to Improve Scatter Sensitivity of a Flow Cytometer for Detection of Extracellular Vesicles
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A Systematic Approach to Improve Scatter Sensitivity of a Flow Cytometer for Detection of Extracellular Vesicles

机译:一种改善流式细胞仪散射敏感性的系统方法,用于检测细胞外囊囊泡

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Extracellular vesicles (EVs) are commonly studied by flow cytometry. Due to their small size and low refractive index, the scatter intensity of most EVs is below the detection limit of common flow cytometers. Here, we aim to improve forward scatter (FSC) and side scatter (SSC) sensitivity of a common flow cytometer to detect single 100 nm EVs. The effects of the optical and fluidics configuration on scatter sensitivity of a FACSCanto (Becton Dickinson) were evaluated by the separation index (SI) and robust coefficient of variation (rCV) of polystyrene beads (BioCytex). Improvement is defined as increased SI and/or reduced rCV. Changing the obscuration bar improved the rCV 1.9-fold for FSC. A 10-fold increase in laser power improved the SI 19-fold for FSC and 4.4-fold for SSC, whereas the rCV worsened 0.8-fold and improved 1.5-fold, respectively. Confocalization worsened the SI 1.2-fold for FSC, and improved the SI 5.1-fold for SSC, while the rCV improved 1.1-fold and worsened 1.5-fold, respectively. Replacing the FSC photodiode with a photomultiplier tube improved the SI 66-fold and rCV 4.2-fold. A 2-fold reduction in sample stream width improved both SI and rCV for FSC by 1.8-fold, and for SSC by 1.3- and 2.2-fold, respectively. Decreasing the sample flow velocity worsened rCVs. Decreasing the flow channel dimensions and the pore size of the sheath filter did not substantially change the SI or rCV. Using the optimal optical configuration and fluidics settings, the SI improved 3.8 center dot 10(4)-fold on FSC and 30-fold on SSC, resulting in estimated detection limits for EVs (assuming a refractive index of 1.40) of 246 and 91 nm on FSC and SSC, respectively. Although a 50-fold improvement on FSC is still necessary, these adaptions have produced an operator-friendly, high-throughput flow cytometer with a high sensitivity on both SSC and FSC. (c) 2020 The Authors. Cytometry Part A published by Wiley Periodicals, Inc. on behalf of International Society for Advancement of Cytometry.
机译:通过流式细胞术通常研究细胞外囊泡(EVS)。由于它们的小尺寸和低折射率,大多数EV的散射强度低于常见流式细胞计的检测极限。在这里,我们的目标是改善公共流式细胞仪的前向散射(FSC)和侧散射(SSC)敏感性,以检测单个100nm EV。通过聚苯乙烯珠粒(Biocytex)的分离指数(Si)和鲁棒的变异系数(Biocytex)评估光学和流体配置对Facscanto(Becton Dickinson)的散射敏感性的影响(Biocytex)。改进定义为增加的Si和/或降低RCV。改变遮蔽条改善了FSC的RCV 1.9折。激光功率10倍的增加改善了SI 19折的FSC和4.4倍的SSC,而RCV分别使0.8倍变得0.8倍并提高1.5倍。共聚集化使FSC的Si 1.2折恶化,并改善了SC 5.1折的SSC,而RCV分别提高1.1倍并分别恶化1.5倍。用光电倍增管更换FSC光电二极管,改善Si 66折和RCV 4.2倍。样品流宽度的2倍降低分别将Si和RCV改善为1.8倍,SSC分别将Si和RCV改善为1.3-和2.2倍。减少样品流速恶化的RCV。减小流动通道尺寸和护套滤波器的孔径基本上没有改变Si或RCV。使用最佳光学配置和流体设置,SI改进的3.8中心点10(4) - 在FSC上折叠和30倍的SSC,导致EV的估计检测限(假设1.40)为246和91 nm在FSC和SSC上分别。虽然对FSC的50倍改善仍然是必要的,但这些适应性已经生产了一种操作员友好的高通量流动仪表,在SSC和FSC上具有高灵敏度。 (c)2020作者。 Cytometry部分A由Wiley期刊,Inc。代表国际调节仪推进的国际社会。

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