Polymer-augmented liposomes enhancing antibiotic delivery against intracellular infections

Fang-Yi Su1, Jasmin Chen, Hye-Nam Son

  • 1Department of Bioengineering, University of Washington, Seattle, WA 98195, USA. dratner@uw.edu stayton@uw.edu.

Insights

Polymer-augmented liposomes (PALs) enhance streptomycin delivery into macrophages, improving treatment for intracellular lung infections and combating antibiotic resistance. This novel platform shows significant potential for treating challenging bacterial pathogens.

Area of Science:

  • Drug Delivery
  • Nanomedicine
  • Infectious Diseases

Background:

  • Pulmonary intracellular infections pose challenges due to limited antibiotic bioavailability and emerging resistance.
  • Aminoglycosides like streptomycin are crucial but struggle with intracellular delivery to macrophages.
  • Conventional therapies face limitations in effectively targeting intracellular bacterial reservoirs.

Purpose of the Study:

  • To develop polymer-augmented liposomes (PALs) for enhanced cytosolic delivery of streptomycin to alveolar macrophages.
  • To engineer PALs with carbohydrate-mediated targeting, pH-responsive, and endosomal release functionalities.
  • To improve the efficacy of antibiotic treatment against intracellular pulmonary pathogens.

Main Methods:

  • Functionalized liposomes with a diblock copolymer for targeting and pH-responsive release.
  • Assessed pH-dependent drug release using fluorescence dequenching assays.
  • Evaluated cellular uptake and antibacterial activity in a macrophage co-culture model.

Main Results:

  • PALs demonstrated pH-responsive streptomycin release, with 70% release at endosomal pH versus 16% at physiological pH.
  • Mannose-targeted PALs showed 2.5 times higher macrophage internalization than non-targeted liposomes.
  • Streptomycin-loaded PALs exhibited significantly improved intracellular antibacterial activity (13-16x) compared to free drug or control liposomes.

Conclusions:

  • Polymer-augmented liposomes (PALs) offer a promising platform for delivering antibiotics to intracellular pathogens within macrophages.
  • The developed PALs exhibit targeted delivery, controlled release, and enhanced antibacterial efficacy.
  • This approach holds potential for overcoming limitations in treating intracellular pulmonary infections and mitigating antibiotic resistance.

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