4.8 Article

Controllable Cell Deformation Using Acoustic Streaming for Membrane Permeability Modulation

Journal

ADVANCED SCIENCE
Volume 8, Issue 3, Pages -

Publisher

WILEY
DOI: 10.1002/advs.202002489

Keywords

acoustic streaming; cell deformation; drug delivery; hydrodynamic force; membrane permeability

Funding

  1. National Natural Science Foundation of China (NSFC) [61674114, 91743110, 21861132001]
  2. National Key R&D Program of China [2017YFF0204604, 2018YFE0118700]
  3. Tianjin Applied Basic Research and Advanced Technology [17JCJQJC43600]
  4. 111 Project [B07014]
  5. Foundation for Talent Scientists of Nanchang Institute for Micro-technology of Tianjin University

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This article presents a novel platform based on acoustic streaming for cell shape control and real-time cell deformation analysis, achieving successful cell behavior control at the microscale. Thorough studies on cell deformation and restoration process were conducted on the platform by tuning the treating time, intensity, and wave form of the streaming.
Hydrodynamic force loading platforms for controllable cell mechanical deformation play an essential role in modern cell technologies. Current systems require assistance from specific microstructures thus limiting the controllability and flexibility in cell shape modulation, and studies on real-time 3D cell morphology analysis are still absent. This article presents a novel platform based on acoustic streaming generated from a gigahertz device for cell shape control and real-time cell deformation analysis. Details in cell deformation and the restoration process are thoroughly studied on the platform, and cell behavior control at the microscale is successfully achieved by tuning the treating time, intensity, and wave form of the streaming. The application of this platform in cell membrane permeability modulation and analysis is also exploited. Based on the membrane reorganization during cell deformation, the effects of deformation extent and deformation patterns on membrane permeability to micro- and macromolecules are revealed. This technology has shown its unique superiorities in cell mechanical manipulation such as high flexibility, high accuracy, and pure fluid force operation, indicating its promising prospect as a reliable tool for cell property study and drug therapy development.

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