Hu Shuhuan, Liu Guangyu, Chen Weiqiang, Li Xiang, Lu Wei, Lam Raymond H W, Fu Jianping
Department of Mechanical and Biomedical Engineering, City University of Hong Kong, 852, Hong Kong.
Department of Mechanical Engineering, University of Michigan, Ann Arbor, MI, 48109, USA.
Small. 2016 May;12(17):2300-11. doi: 10.1002/smll.201503620. Epub 2016 Mar 1.
Deep phenotyping of single cancer cells is of critical importance in the era of precision medicine to advance understanding of relationships between gene mutation and cell phenotype and to elucidate the biological nature of tumor heterogeneity. Existing microfluidic single-cell phenotyping tools, however, are limited to phenotypic measurements of 1-2 selected morphological and physiological features of single cells. Herein a microfluidic elasticity microcytometer is reported for multiparametric biomechanical and biochemical phenotypic profiling of free-floating, live single cancer cells for quantitative, simultaneous characterizations of cell size, cell deformability/stiffness, and surface receptors. The elasticity microcytometer is implemented for measurements and comparisons of four human cell lines with distinct metastatic potentials and derived from different human tissues. An analytical model is developed from first principles for the first time to convert cell deformation and adhesion information of single cancer cells encapsulated inside the elasticity microcytometer to cell deformability/stiffness and surface protein expression. Together, the elasticity microcytometer holds great promise for comprehensive molecular, cellular, and biomechanical phenotypic profiling of live cancer cells at the single cell level, critical for studying intratumor cellular and molecular heterogeneity using low-abundance, clinically relevant human cancer cells.
在精准医学时代,对单个癌细胞进行深度表型分析对于增进对基因突变与细胞表型之间关系的理解以及阐明肿瘤异质性的生物学本质至关重要。然而,现有的微流控单细胞表型分析工具仅限于对单个细胞的1 - 2个选定形态和生理特征进行表型测量。在此,我们报道了一种微流控弹性微细胞仪,用于对游离的活单个癌细胞进行多参数生物力学和生化表型分析,以定量、同时表征细胞大小、细胞变形性/硬度和表面受体。该弹性微细胞仪用于对具有不同转移潜能且源自不同人体组织的四种人类细胞系进行测量和比较。首次从第一原理开发了一个分析模型,将封装在弹性微细胞仪内的单个癌细胞的细胞变形和粘附信息转换为细胞变形性/硬度和表面蛋白表达。总之,弹性微细胞仪在单细胞水平对活癌细胞进行全面的分子、细胞和生物力学表型分析方面具有巨大潜力,这对于使用低丰度、临床相关的人类癌细胞研究肿瘤内细胞和分子异质性至关重要。