Cell Deformation by Single-beam Acoustic Trapping: A Promising Tool for Measurements of Cell Mechanics

  • Jae Youn Hwang
  • , Jihun Kim
  • , Jin Man Park
  • , Changyang Lee
  • , Hayong Jung
  • , Jungwoo Lee
  • , K. Kirk Shung

Research output: Contribution to journalArticlepeer-review

67 Scopus citations

Abstract

We demonstrate a noncontact single-beam acoustic trapping method for the quantification of the mechanical properties of a single suspended cell with label-free. Experimentally results show that the single-beam acoustic trapping force results in morphological deformation of a trapped cell. While a cancer cell was trapped in an acoustic beam focus, the morphological changes of the immobilized cell were monitored using bright-field imaging. The cell deformability was then compared with that of a trapped polystyrene microbead as a function of the applied acoustic pressure for a better understanding of the relationship between the pressure and degree of cell deformation. Cell deformation was found to become more pronounced as higher pressure levels were applied. Furthermore, to determine if this acoustic trapping method can be exploited in quantifying the cell mechanics in a suspension and in a non-contact manner, the deformability levels of breast cancer cells with different degrees of invasiveness due to acoustic trapping were compared. It was found that highly-invasive breast cancer cells exhibited greater deformability than weakly-invasive breast cancer cells. These results clearly demonstrate that the single-beam acoustic trapping technique is a promising tool for non-contact quantitative assessments of the mechanical properties of single cells in suspensions with label-free.

Original languageEnglish
Article number27238
JournalScientific Reports
Volume6
DOIs
StatePublished - 8 Jun 2016

Bibliographical note

Funding Information:
This work has been supported by DGIST and National Research Foundation of Korea (NRF) (15-01-HRLA-01, NRF-2014R1A1A2054934 and NRF-2014M3A9D7070668) for J.Y. Hwang at DGIST, NRF (NRF-2012R1A1A1015778 and-2015R1D1A1A01060074) and the Research Grant of Kwangwoon University in 2015 for J.W. Lee at KWU and by a NIH grant (P41-EB002182) for K.K. Shung at USC.

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