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基于光谱编码细胞条码的多维多次流动 cytometry。

High-dimensional multi-pass flow cytometry via spectrally encoded cellular barcoding.

机构信息

LASE Innovation Inc., Woburn, MA, USA.

Harvard Medical School and Wellman Center for Photomedicine, Massachusetts General Hospital, Cambridge, MA, USA.

出版信息

Nat Biomed Eng. 2024 Mar;8(3):310-324. doi: 10.1038/s41551-023-01144-9. Epub 2023 Nov 30.

Abstract

Advances in immunology, immuno-oncology, drug discovery and vaccine development demand improvements in the capabilities of flow cytometry to allow it to measure more protein markers per cell at multiple timepoints. However, the size of panels of fluorophore markers is limited by overlaps in fluorescence-emission spectra, and flow cytometers typically perform cell measurements at one timepoint. Here we describe multi-pass high-dimensional flow cytometry, a method leveraging cellular barcoding via microparticles emitting near-infrared laser light to track and repeatedly measure each cell using more markers and fewer colours. By using live human peripheral blood mononuclear cells, we show that the method enables the time-resolved characterization of the same cells before and after stimulation, their analysis via a 10-marker panel with minimal compensation for spectral spillover and their deep immunophenotyping via a 32-marker panel, where the same cells are analysed in 3 back-to-back cycles with 10-13 markers per cycle, reducing overall spillover and simplifying marker-panel design. Cellular barcoding in flow cytometry extends the utility of the technique for high-dimensional multi-pass single-cell analyses.

摘要

免疫学、免疫肿瘤学、药物发现和疫苗开发的进展要求流式细胞术的能力不断提高,以便能够在多个时间点对每个细胞进行更多的蛋白质标记物的测量。然而,荧光标记物的面板大小受到荧光发射光谱重叠的限制,而流式细胞仪通常在一个时间点进行细胞测量。在这里,我们描述了多轮高维流式细胞术,这是一种利用通过近红外激光发射的微球进行细胞条形码跟踪的方法,以使用更少的颜色和更多的标记物来重复测量每个细胞。通过使用活的人外周血单核细胞,我们证明该方法能够在刺激前后对同一细胞进行时间分辨的特征描述,通过一个 10 标记物面板进行分析,最小化光谱串扰的补偿,通过一个 32 标记物面板进行深度免疫表型分析,其中在 3 个连续循环中对同一细胞进行分析,每个循环使用 10-13 个标记物,从而减少整体串扰并简化标记物面板设计。流式细胞术中的细胞条形码扩展了该技术在高维多轮单细胞分析中的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/20b3/10963263/ec6bd13aa60f/41551_2023_1144_Fig1_HTML.jpg

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