Temperature- and rigidity-mediated rapid transport of lipid nanovesicles in hydrogels

Proc Natl Acad Sci U S A. 2019 Mar 19;116(12):5362-5369. doi: 10.1073/pnas.1818924116. Epub 2019 Mar 5.

Abstract

Lipid nanovesicles are widely present as transport vehicles in living organisms and can serve as efficient drug delivery vectors. It is known that the size and surface charge of nanovesicles can affect their diffusion behaviors in biological hydrogels such as mucus. However, how temperature effects, including those of both ambient temperature and phase transition temperature (Tm), influence vehicle transport across various biological barriers outside and inside the cell remains unclear. Here, we utilize a series of liposomes with different Tm as typical models of nanovesicles to examine their diffusion behavior in vitro in biological hydrogels. We observe that the liposomes gain optimal diffusivity when their Tm is around the ambient temperature, which signals a drastic change in the nanovesicle rigidity, and that liposomes with Tm around body temperature (i.e., ∼37 °C) exhibit enhanced cellular uptake in mucus-secreting epithelium and show significant improvement in oral insulin delivery efficacy in diabetic rats compared with those with higher or lower Tm Molecular-dynamics (MD) simulations and superresolution microscopy reveal a temperature- and rigidity-mediated rapid transport mechanism in which the liposomes frequently deform into an ellipsoidal shape near the phase transition temperature during diffusion in biological hydrogels. These findings enhance our understanding of the effect of temperature and rigidity on extracellular and intracellular functions of nanovesicles such as endosomes, exosomes, and argosomes, and suggest that matching Tm to ambient temperature could be a feasible way to design highly efficient nanovesicle-based drug delivery vectors.

Keywords: biological hydrogels; diffusion; lipid nanovesicle; liposome; phase transition temperature.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Animals
  • Biological Transport / drug effects
  • Diabetes Mellitus, Experimental / drug therapy
  • Diffusion / drug effects
  • Drug Carriers / chemistry
  • Drug Delivery Systems / methods
  • Epithelium / metabolism
  • Hydrogels / administration & dosage*
  • Hydrogels / chemistry*
  • Insulin / administration & dosage
  • Insulin / chemistry
  • Lipids / chemistry*
  • Liposomes / chemistry
  • Male
  • Nanoparticles / chemistry*
  • Phase Transition / drug effects
  • Rats
  • Rats, Sprague-Dawley
  • Temperature

Substances

  • Drug Carriers
  • Hydrogels
  • Insulin
  • Lipids
  • Liposomes