University of Ottawa Flow Cytometry and Virometry Core Facility, Ottawa, Canada.
Department of Biochemistry, Microbiology and Immunology, Faculty of Medicine, University of Ottawa, Ottawa, Canada.
Sci Rep. 2017 Dec 19;7(1):17769. doi: 10.1038/s41598-017-18227-8.
Retroviruses and small EVs overlap in size, buoyant densities, refractive indices and share many cell-derived surface markers making them virtually indistinguishable by standard biochemical methods. This poses a significant challenge when purifying retroviruses for downstream analyses or for phenotypic characterization studies of markers on individual virions given that EVs are a major contaminant of retroviral preparations. Nanoscale flow cytometry (NFC), also called flow virometry, is an adaptation of flow cytometry technology for the analysis of individual nanoparticles such as extracellular vesicles (EVs) and retroviruses. In this study we systematically optimized NFC parameters for the detection of retroviral particles in the range of 115-130 nm, including viral production, sample labeling, laser power and voltage settings. By using the retroviral envelope glycoprotein as a selection marker, and evaluating a number of fluorescent dyes and labeling methods, we demonstrate that it is possible to confidently distinguish retroviruses from small EVs by NFC. Our findings make it now possible to individually phenotype genetically modified retroviral particles that express a fluorescent envelope glycoprotein without removing EV contaminants from the sample.
逆转录病毒和小 EV 在大小、浮力密度、折射率方面存在重叠,并且具有许多细胞来源的表面标志物,这使得它们几乎无法通过标准生化方法区分。当需要对下游分析进行纯化或对单个病毒粒子上的标记物进行表型特征研究时,这就带来了巨大的挑战,因为 EV 是逆转录病毒制剂的主要污染物。纳米流式细胞术(NFC),也称为流式病毒检测,是流式细胞术技术的一种改进,用于分析单个纳米颗粒,如细胞外囊泡(EV)和逆转录病毒。在这项研究中,我们系统地优化了 NFC 参数,以检测范围在 115-130nm 的逆转录病毒颗粒,包括病毒生产、样品标记、激光功率和电压设置。通过使用逆转录病毒包膜糖蛋白作为选择标记,并评估了多种荧光染料和标记方法,我们证明通过 NFC 可以可靠地区分逆转录病毒和小 EV。我们的发现使得现在有可能对表达荧光包膜糖蛋白的基因修饰逆转录病毒颗粒进行个体表型分析,而无需从样品中去除 EV 污染物。