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Antimicrobial Characterization of Advanced Materials for Bioengineering Applications
Published on: August 4, 2018
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.
Abstract:
Wounds are undeniably important gateways for pathogens to enter the body. In addition to their detrimental local effects, they can also cause adverse systemic effects. For this reason, developing methods for eradicating pathogens from wounds is a challenging medical issue. Polymers, particularly hydrogels, are one of the more essential materials for designing novel drug-delivery systems, thanks to the ease of tuning their structures. This work exploits this property by utilizing copolymerization, microwave modification, and drug-loading processes to obtain antibacterial gels. Synthesized xylitol-modified glycidyl methacrylate-co-ethyl methacrylate ([P(EMA)-co-(GMA)]-Xyl]) matrices were loaded with bacitracin, gentian violet, furazidine, and brilliant green, used as active pharmaceutical ingredients (APIs). The hydrophilic properties, API release mechanism, and antibacterial properties of the obtained hydrogels against Escherichia coli, Pseudomonas aeruginosa, and Staphylococcus epidermidis containing [P(EMA)-co-(GMA)]-Xyl] were studied. The hydrogels with the APIs efficiently inhibit bacteria growth with low doses of drugs, and our findings are statistically significant, confirmed with ANOVA analysis at p = 0.05. The results confirmed that the proposed system is hydrophilic and has extended the drug-release capabilities of APIs with a controlled burst effect based on [P(EMA)-co-(GMA)]-Xyl] content in the hydrogel. Hydrogels are characterized by the prolonged release of APIs in a very short time (a few minutes). Although the amount of released APIs is about 10%, it still exceeds the minimum inhibitory concentrations of drugs. Several kinetic models (first-order, second-order, Baker-Lonsdale, and Korsmeyer-Peppas) were applied to fit the API release data from the [P(EMA)-co-(GMA)]-Xyl-based hydrogel. The best fit of the Korsmeyer-Peppas kinetic model to the experimental data was determined, and it was confirmed that a diffusion-controlled release mechanism of the APIs from the studied hydrogels is dominant, which is desirable for applications requiring a consistent, controlled release of therapeutic agents. A statistical analysis of API release using Linear Mixed Model was performed, examining the relationship between % mass of API, sample (hydrogels and control), time, sample-time interaction, and variability between individuals. The model fits the data well, as evidenced by the determination coefficients close to 1. The analyzed interactions in the data are reliable and statistically significant (p < 0.001). The outcome of this study suggests that the presented acrylate-based gel is a promising candidate for developing wound dressings.
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.
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