Hugh Green Cytometry Centre, Malaghan Institute of Medical Research, Wellington, New Zealand.
Malaghan Institute of Medical Research, Wellington, New Zealand.
Methods Cell Biol. 2024;186:51-90. doi: 10.1016/bs.mcb.2024.02.014. Epub 2024 Mar 7.
Technological advancements in fluorescence flow cytometry and an ever-expanding understanding of the complexity of the immune system, have led to the development of large flow cytometry panels, reaching up to 40 markers at the single-cell level. Full spectrum flow cytometry, that measures the full emission range of all the fluorophores present in the panel instead of only the emission peaks is now routinely used in many laboratories internationally, and the demand for this technology is rapidly increasing. With the capacity to use larger and more complex staining panels, optimized protocols are required for the best panel design, panel validation and high-dimensional data analysis outcomes. In addition, for ex vivo experiments, tissue preparation methods for single-cell analysis should also be optimized to ensure that samples are of the highest quality and are truly representative of tissues in situ. Here we provide optimized step-by-step protocols for full spectrum flow cytometry panel design, tissue digestion and panel optimization to facilitate the analysis of challenging tissue types.
荧光流式细胞术的技术进步和对免疫系统复杂性的不断深入理解,推动了大流式细胞术面板的发展,在单细胞水平上达到了多达 40 个标记物。全光谱流式细胞术现在在国际上许多实验室中得到了常规应用,该技术的需求正在迅速增加。它可以测量面板中所有荧光染料的全发射范围,而不仅仅是发射峰。随着能够使用更大和更复杂的染色面板,需要优化方案来实现最佳的面板设计、面板验证和高维数据分析结果。此外,对于体外实验,单细胞分析的组织准备方法也应进行优化,以确保样品的质量最高,并真正代表原位组织。在这里,我们提供了全光谱流式细胞术面板设计、组织消化和面板优化的优化分步方案,以促进对具有挑战性的组织类型的分析。