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Probing Cell Deformability via Acoustically Actuated Bubbles
Authors:Yuliang Xie  Nitesh Nama  Peng Li  Zhangming Mao  Po‐Hsun Huang  Chenglong Zhao  Francesco Costanzo  Tony Jun Huang
Affiliation:1. Department of Chemical Engineering, The Pennsylvania State University, University Park, PA, USA;2. Department of Engineering Science and Mechanics, The Pennsylvania State University, University Park, PA, USA;3. Department of Physics & Electro‐Optics Program, University of Dayton, Dayton, OH, USA;4. Center for Neural Engineering, The Pennsylvania State University, University Park, PA, USA
Abstract: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.
Keywords:acoustic streaming  acoustically actuated bubbles  cell deformability  optothermal effects  microfluidics
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