Department of Biotechnology and Biosciences, University of Milano-Bicocca, 20126 Milan, Italy.
SYSBIO (Centre of Systems Biology), ISBE (Infrastructure Systems Biology Europe), 20126 Milan, Italy.
Cells. 2022 Mar 2;11(5):866. doi: 10.3390/cells11050866.
Three-dimensional cancer models, such as spheroids, are increasingly being used to study cancer metabolism because they can better recapitulate the molecular and physiological aspects of the tumor architecture than conventional monolayer cultures. Although Agilent Seahorse XFe96 (Agilent Technologies, Santa Clara, CA, United States) is a valuable technology for studying metabolic alterations occurring in cancer cells, its application to three-dimensional cultures is still poorly optimized. We present a reliable and reproducible workflow for the Seahorse metabolic analysis of three-dimensional cultures. An optimized protocol enables the formation of spheroids highly regular in shape and homogenous in size, reducing variability in metabolic parameters among the experimental replicates, both under basal and drug treatment conditions. High-resolution imaging allows the calculation of the number of viable cells in each spheroid, the normalization of metabolic parameters on a per-cell basis, and grouping of the spheroids as a function of their size. Multivariate statistical tests on metabolic parameters determined by the Mito Stress test on two breast cancer cell lines show that metabolic differences among the studied spheroids are mostly related to the cell line rather than to the size of the spheroid. The optimized workflow allows high-resolution metabolic characterization of three-dimensional cultures, their comparison with monolayer cultures, and may aid in the design and interpretation of (multi)drug protocols.
三维癌症模型,如球体,越来越多地被用于研究癌症代谢,因为它们可以更好地再现肿瘤结构的分子和生理方面,而不是传统的单层培养。虽然 Agilent Seahorse XFe96(安捷伦科技,圣克拉拉,CA,美国)是研究癌细胞代谢变化的有价值的技术,但它在三维培养物中的应用仍未得到很好的优化。我们提出了一种可靠且可重复的 Seahorse 代谢分析三维培养物的工作流程。优化的方案可形成形状规则且大小均匀的球体,减少了基础和药物处理条件下实验重复之间代谢参数的变异性。高分辨率成像允许计算每个球体中的活细胞数量,基于每个细胞对代谢参数进行归一化,并根据球体的大小对其进行分组。对两种乳腺癌细胞系的 Mito Stress 测试确定的代谢参数进行的多变量统计检验表明,研究球体之间的代谢差异主要与细胞系有关,而与球体的大小无关。优化的工作流程允许对三维培养物进行高分辨率代谢特征分析,将其与单层培养物进行比较,并有助于(多)药物方案的设计和解释。