Mechanical Deformation Mediated Transmembrane Transport

Macromol Rapid Commun. 2020 Jan;41(2):e1900518. doi: 10.1002/marc.201900518. Epub 2019 Dec 29.

Abstract

Transmembrane transport is essential and plays critical roles for molecule exchange for cell survival. Methods capable of mimicking and regulating transmembrane transport have transformed the ability to create biosensors, separation membranes, and drug carriers. However, artificial channels have been largely restricted by their complicated chemical fabrication and inefficiency to dynamically manipulate the transport process. Here, a novel approach to regulate transmembrane transport is described by simply adjusting the mechanical deformation of liposomal bilayers which are covalently embedded in a crosslinked hydrogel network. This new approach is able to dynamically control transmembrane transport by stretching and loosening. The transmembrane diffusion of molecules can be switched on and off, and precisely tuned by varying strain. A potential of this method to programmably regulate cell growth is demonstrated by tuning external mechanical force. Given its unique characteristics, this method allows the development of innovative systems for controlled transmembrane transport of molecules.

Keywords: controlled release; hydrogels; liposomes; mechanical deformation; transmembrane transport.

MeSH terms

  • Acrylamide / chemistry
  • Biomedical Engineering
  • Cell Survival
  • Diffusion
  • Drug Carriers / chemistry
  • Elasticity
  • HeLa Cells
  • Humans
  • Hydrogels / chemistry*
  • Ion Channels / chemistry*
  • Liposomes / chemistry*
  • Liposomes / ultrastructure
  • Membrane Transport Proteins / chemistry*
  • Molecular Docking Simulation
  • Polymers / chemical synthesis
  • Polymers / chemistry
  • Stress, Mechanical

Substances

  • Drug Carriers
  • Hydrogels
  • Ion Channels
  • Liposomes
  • Membrane Transport Proteins
  • Polymers
  • Acrylamide