Engineered microparticles based on drug-polymer coprecipitates for ocular-controlled delivery of Ciprofloxacin:

Elisabetta Gavini1, Maria Cristina Bonferoni2, Giovanna Rassu1

  • 1a Department of Chemistry and Pharmacy , University of Sassari , Sassari , Italy .

Insights

Ciprofloxacin ocular formulations can be improved using polyelectrolyte coprecipitates. Chondroitin sulfate coprecipitates, especially with surfactants, yield optimal particle sizes for controlled drug delivery in eye infections.

Area of Science:

  • Ophthalmology
  • Pharmaceutics
  • Materials Science

Background:

  • Ciprofloxacin is effective for bacterial eye infections but requires frequent dosing due to rapid clearance.
  • Developing controlled-release ocular formulations for ciprofloxacin presents significant challenges.
  • Ionic interactions offer a promising route for creating microparticulate drug delivery systems.

Purpose of the Study:

  • To investigate the impact of preparation parameters on the particle size of ciprofloxacin-polyelectrolyte coprecipitates.
  • To engineer particles with sizes suitable for ocular administration.
  • To optimize controlled release formulations for ciprofloxacin eye drops.

Main Methods:

  • Preparation of ciprofloxacin coprecipitates with chondroitin sulfate and lambda carrageenan.
  • Evaluation of technological parameters: solution concentrations, surfactant use, temperature, and stirring.
  • Particle size analysis of the resulting microparticulates.
  • Preliminary stability testing of optimized formulations.

Main Results:

  • Chondroitin sulfate coprecipitates demonstrated superior particle size characteristics for ocular delivery.
  • Technological parameters significantly influenced particle size.
  • The addition of surfactants further refined particle size, enhancing suitability for ophthalmic use.
  • Carbopol inclusion was explored for improved mucoadhesion.

Conclusions:

  • Ciprofloxacin-chondroitin sulfate coprecipitates are a viable strategy for ocular controlled release.
  • Particle size engineering through controlled preparation is crucial for effective ophthalmic formulations.
  • Surfactant addition offers a method to optimize particle characteristics for improved ocular drug delivery.

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