Skip to main navigation Skip to search Skip to main content

Selective Cell-Cell Adhesion Regulation via Cyclic Mechanical Deformation Induced by Ultrafast Nanovibrations

  • Young Ju Son
  • , Changjoon Keum
  • , Minsoo Kim
  • , Goeen Jeong
  • , Soyeong Jin
  • , Hae Won Hwang
  • , Hyewon Kim
  • , Kyungwoo Lee
  • , Hojeong Jeon
  • , Hojun Kim
  • , Ki Joo Pahk
  • , Ho Won Jang
  • , Jeong Yun Sun
  • , Hyung Seop Han
  • , Kwan Hyi Lee
  • , Myoung Ryul Ok
  • , Yu Chan Kim
  • , Youngdo Jeong

Research output: Contribution to journalArticlepeer-review

Abstract

The adoption of dynamic mechanomodulation to regulate cellular behavior is an alternative to the use of chemical drugs, allowing spatiotemporal control. However, cell-selective targeting of mechanical stimuli is challenging due to the lack of strategies with which to convert macroscopic mechanical movements to different cellular responses. Here, we designed a nanoscale vibrating surface that controls cell behavior via selective repetitive cell deformation based on a poroelastic cell model. The vibrating indentations induce repetitive water redistribution in the cells with water redistribution rates faster than the vibrating rate; however, in the opposite case, cells perceive the vibrations as a one-time stimulus. The selective regulation of cell-cell adhesion through adjusting the frequency of nanovibration was demonstrated by suppression of cadherin expression in smooth muscle cells (fast water redistribution rate) with no change in vascular endothelial cells (slow water redistribution rate). This technique may provide a new strategy for cell-type-specific mechanical stimulation.

Original languageEnglish
JournalACS applied materials & interfaces
DOIs
Publication statusAccepted/In press - 2023

Bibliographical note

Publisher Copyright:
© 2023 American Chemical Society.

Keywords

  • cell-type selective
  • cell-type selective control
  • cellular deformation
  • poroelastic model
  • vibrating surface

Fingerprint

Dive into the research topics of 'Selective Cell-Cell Adhesion Regulation via Cyclic Mechanical Deformation Induced by Ultrafast Nanovibrations'. Together they form a unique fingerprint.

Cite this