Formation and Characterization of Xylitol-Modified Glycidyl Methacrylate-co-Ethyl Methacrylate Matrices for

Adam Chyzy1, Przemysław Gnatowski2,3, Edyta Piłat3

  • 1Department of Organic Chemistry, Faculty of Medicine with the Division of Dentistry and Division of Medical Education in English, Medical University of Bialystok, Mickiewicza 2A, 15-222 Bialystok, Poland.

PubMed

Insights

New antibacterial hydrogels loaded with multiple drugs show significant efficacy against wound pathogens like E. coli and P. aeruginosa. These xylitol-modified polymer matrices offer controlled, diffusion-based drug release, promising for advanced wound dressings.

Area of Science:

  • Biomaterials Science
  • Polymer Chemistry
  • Infectious Disease Research

Background:

  • Wounds serve as entry points for pathogens, leading to local and systemic infections.
  • Developing effective antimicrobial strategies for wound management is a critical medical challenge.
  • Polymers, especially hydrogels, offer tunable structures ideal for novel drug delivery systems.

Purpose of the Study:

  • To synthesize and characterize novel antibacterial hydrogels for wound pathogen eradication.
  • To investigate the drug release kinetics and antibacterial efficacy of these hydrogels.
  • To evaluate the potential of these hydrogels as advanced wound dressing materials.

Main Methods:

  • Copolymerization of glycidyl methacrylate-co-ethyl methacrylate ([P(EMA)-co-(GMA)]) and xylitol modification.
  • Loading of active pharmaceutical ingredients (APIs): bacitracin, gentian violet, furazidine, and brilliant green.
  • Assessment of hydrophilic properties, API release mechanisms, and antibacterial activity against E. coli, P. aeruginosa, and S. epidermidis.
  • Kinetic modeling (Korsmeyer-Peppas) and statistical analysis (Linear Mixed Model) of drug release.

Main Results:

  • Synthesized [P(EMA)-co-(GMA)]-Xyl] hydrogels demonstrated efficient inhibition of bacterial growth at low API doses.
  • Hydrogels exhibited hydrophilic properties and controlled, extended API release, with a dominant diffusion-controlled mechanism (Korsmeyer-Peppas model).
  • Statistical analysis confirmed significant antibacterial efficacy (p=0.05) and reliable drug release kinetics (p<0.001).

Conclusions:

  • The developed xylitol-modified acrylate-based hydrogels show significant potential for wound infection treatment.
  • These hydrogels provide a promising platform for controlled delivery of multiple antimicrobial agents.
  • The findings support the use of these hydrogels as effective components of advanced wound dressings.