In vitro cell compatibility and antibacterial activity of microencapsulated doxycycline designed for improved

M Christina Haerdi-Landerer1, Maja M Suter, Adrian Steiner

  • 1AO Research Institute, 7270 Davos-Platz, Switzerland. christina-haerdi@ethz.ch

Abstract

Insights

New doxycycline microspheres offer a promising slow-release system for treating septic arthritis in large animals, demonstrating effective antimicrobial activity and suitability for intra-articular use.

Area of Science:

  • Veterinary Medicine
  • Pharmacology
  • Biomaterials Science

Background:

  • Septic arthritis in large animals requires effective local antibiotic delivery to maximize efficacy and minimize systemic effects.
  • Current treatments may lead to undesirable side effects and drug residues.
  • Slow-release antibiotic systems offer a potential solution for targeted treatment.

Purpose of the Study:

  • To develop and evaluate doxycycline microspheres as a novel slow-release system for treating septic arthritis in large animals.
  • To assess the in vitro drug release, intra-articular application suitability, and antimicrobial activity of the developed microspheres.

Main Methods:

  • Doxycycline was encapsulated into poly(lactide-co-glycolide) microspheres using ultrasonic atomization.
  • Drug elution profiles were determined by High-Performance Liquid Chromatography (HPLC).
  • In vitro joint-tissue compatibility was assessed using cultured bovine synoviocytes, analyzing cytokine mRNA and nitric oxide (NO) production.
  • Antimicrobial activity was tested against gram-negative and gram-positive bacteria.

Main Results:

  • Microspheres exhibited suitable size, doxycycline stabilization, and sustained release above the minimum inhibitory concentration (MIC) for relevant bacteria over 15 days.
  • Cytokine mRNA expression indicated excellent tissue compatibility, though NO results were contradictory.
  • Released doxycycline demonstrated antimicrobial activity comparable to free doxycycline.

Conclusions:

  • The developed doxycycline microsphere delivery system meets target specifications for slow release and antimicrobial efficacy.
  • This novel system is prepared for further in vivo investigation for treating septic arthritis in large animals.

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