Xie Yuliang, Nama Nitesh, Li Peng, Mao Zhangming, Huang Po-Hsun, Zhao Chenglong, Costanzo Francesco, Huang Tony Jun
Department of Chemical Engineering, The Pennsylvania State University, University Park, PA, 16802, USA.
Department of Engineering Science and Mechanics, The Pennsylvania State University, University Park, PA, 16802, USA.
Small. 2016 Feb 17;12(7):902-10. doi: 10.1002/smll.201502220. Epub 2015 Dec 30.
An acoustically actuated, bubble-based technique is developed to investigate the deformability of cells suspended in microfluidic devices. A microsized bubble is generated by an optothermal effect near the targeted cells, which are suspended in a microfluidic chamber. Subsequently, acoustic actuation is employed to create localized acoustic streaming. In turn, the streaming flow results in hydrodynamic forces that deform the cells in situ. The deformability of the cells is indicative of their mechanical properties. The method in this study measures mechanical biomarkers from multiple cells in a single experiment, and it can be conveniently integrated with other bioanalysis and drug-screening platforms. Using this technique, the mean deformability of tens of HeLa, HEK, and HUVEC cells is measured to distinguish their mechanical properties. HeLa cells are deformed upon treatment with Cytochalasin. The technique also reveals the deformability of each subpopulation in a mixed, heterogeneous cell sample by the use of both fluorescent markers and mechanical biomarkers. The technique in this study, apart from being relevant to cell biology, will also enable biophysical cellular diagnosis.
一种基于声学驱动、气泡的技术被开发出来,用于研究悬浮在微流控装置中的细胞的可变形性。在悬浮于微流控腔室中的目标细胞附近,通过光热效应产生一个微尺寸气泡。随后,采用声学驱动来产生局部声流。反过来,声流会产生流体动力,使细胞在原位发生变形。细胞的可变形性反映了它们的力学性质。本研究中的方法在单个实验中测量多个细胞的力学生物标志物,并且可以方便地与其他生物分析和药物筛选平台集成。使用该技术,测量了数十个HeLa、HEK和HUVEC细胞的平均可变形性,以区分它们的力学性质。用细胞松弛素处理后,HeLa细胞发生变形。该技术还通过使用荧光标记和力学生物标志物揭示了混合的异质细胞样本中每个亚群的可变形性。本研究中的技术,除了与细胞生物学相关外,还将实现生物物理细胞诊断。