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光谱细胞术具有独特的特性,能够对从实体组织中分离出的细胞悬液进行多色分析。

Spectral Cytometry Has Unique Properties Allowing Multicolor Analysis of Cell Suspensions Isolated from Solid Tissues.

作者信息

Schmutz Sandrine, Valente Mariana, Cumano Ana, Novault Sophie

机构信息

Institut Pasteur, Flow Cytometry Core Facility, Paris, France.

Institut Pasteur, Immunology Department, Lymphopoiesis Unit, Paris, France.

出版信息

PLoS One. 2016 Aug 8;11(8):e0159961. doi: 10.1371/journal.pone.0159961. eCollection 2016.

Abstract

Flow cytometry, initially developed to analyze surface protein expression in hematopoietic cells, has increased in analytical complexity and is now widely used to identify cells from different tissues and organisms. As a consequence, data analysis became increasingly difficult due the need of large multi-parametric compensation matrices and to the eventual auto-fluorescence frequently found in cell suspensions obtained from solid organs. In contrast with conventional flow cytometry that detects the emission peak of fluorochromes, spectral flow cytometry distinguishes the shapes of emission spectra along a large range of continuous wave lengths. The data is analyzed with an algorithm that replaces compensation matrices and treats auto-fluorescence as an independent parameter. Thus, spectral flow cytometry should be capable to discriminate fluorochromes with similar emission peaks and provide multi-parametric analysis without compensation requirements. Here we show that spectral flow cytometry achieves a 21-parametric (19 fluorescent probes) characterization and deals with auto-fluorescent cells, providing high resolution of specifically fluorescence-labeled populations. Our results showed that spectral flow cytometry has advantages in the analysis of cell populations of tissues difficult to characterize in conventional flow cytometry, such as heart and intestine. Spectral flow cytometry thus combines the multi-parametric analytical capacity of the highest performing conventional flow cytometry without the requirement for compensation and enabling auto-fluorescence management.

摘要

流式细胞术最初是为分析造血细胞表面蛋白表达而开发的,其分析复杂性不断增加,现在广泛用于识别来自不同组织和生物体的细胞。因此,由于需要大型多参数补偿矩阵以及在从实体器官获得的细胞悬液中经常发现的自发荧光,数据分析变得越来越困难。与检测荧光染料发射峰的传统流式细胞术不同,光谱流式细胞术在大范围连续波长上区分发射光谱的形状。使用一种算法分析数据,该算法取代补偿矩阵并将自发荧光作为一个独立参数处理。因此,光谱流式细胞术应该能够区分具有相似发射峰的荧光染料,并提供无需补偿要求的多参数分析。在这里,我们表明光谱流式细胞术实现了21参数(19种荧光探针)表征,并处理自发荧光细胞,提供高分辨率的特异性荧光标记群体。我们的结果表明,光谱流式细胞术在分析传统流式细胞术中难以表征的组织细胞群体(如心脏和肠道)方面具有优势。因此,光谱流式细胞术结合了性能最高的传统流式细胞术的多参数分析能力,无需补偿并能够管理自发荧光。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0c03/4976887/bdc95ec1a929/pone.0159961.g001.jpg

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