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Acousto-dielectric tweezers for size-insensitive manipulation and biophysical characterization of single cells

  • Liang Shen
  • , Zhenhua Tian
  • , Jinxin Zhang
  • , Haodong Zhu
  • , Kaichun Yang
  • , Teng Li
  • , Joseph Rich
  • , Neil Upreti
  • , Nanjing Hao
  • , Zhichao Pei
  • , Geonsoo Jin
  • , Shujie Yang
  • , Yaosi Liang
  • , Wang Chaohui
  • , Tony Jun Huang
  • Duke University
  • Xi'an Jiaotong University
  • Virginia Polytechnic Institute and State University

科研成果: 期刊稿件文章同行评审

16 引用 (Scopus)

摘要

The intrinsic biophysical properties of cells, such as mechanical, acoustic, and electrical properties, are valuable indicators of a cell's function and state. However, traditional single-cell biophysical characterization methods are hindered by limited measurable properties, time-consuming procedures, and complex system setups. This study presents acousto-dielectric tweezers that leverage the balance between controllable acoustophoretic and dielectrophoretic forces applied on cells through surface acoustic waves and alternating current electric fields, respectively. Particularly, the balanced acoustophoretic and dielectrophoretic forces can trap cells at equilibrium positions independent of the cell size to differentiate between various cell-intrinsic mechanical, acoustic, and electrical properties. Experimental results show our mechanism has the potential for applications in single-cell analysis, size-insensitive cell separation, and cell phenotyping, which are all primarily based on cells’ intrinsic biophysical properties. Our results also show the measured equilibrium position of a cell can inversely determine multiple biophysical properties, including membrane capacitance, cytoplasm conductivity, and acoustic contrast factor. With these features, our acousto-dielectric tweezing mechanism is a valuable addition to the resources available for biophysical property-based biological and medical research.

源语言英语
期刊论文编号115061
期刊Biosensors and Bioelectronics
224
DOI
出版状态已出版 - 15 3月 2023
已对外发布

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