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Updated: Apr 20, 2026

Antimicrobial Characterization of Advanced Materials for Bioengineering Applications
Published on: August 4, 2018
Antimicrobial hydrogels: a new weapon in the arsenal against multidrug-resistant infections
Abstract:
The rapid emergence of antibiotic resistance in pathogenic microbes is becoming an imminent global public health problem. Treatment with conventional antibiotics often leads to resistance development as the majority of these antibiotics act on intracellular targets, leaving the bacterial morphology intact. Thus, they are highly prone to develop resistance through mutation. Much effort has been made to develop macromolecular antimicrobial agents that are less susceptible to resistance as they function by microbial membrane disruption. Antimicrobial hydrogels constitute an important class of macromolecular antimicrobial agents, which have been shown to be effective in preventing and treating multidrug-resistant infections. Advances in synthetic chemistry have made it possible to tailor molecular structure and functionality to impart broad-spectrum antimicrobial activity as well as predictable mechanical and rheological properties. This has significantly broadened the scope of potential applications that range from medical device and implant coating, sterilization, wound dressing, to antimicrobial creams for the prevention and treatment of multidrug-resistant infections. In this review, advances in both chemically and physically cross-linked natural and synthetic hydrogels possessing intrinsic antimicrobial properties or loaded with antibiotics, antimicrobial polymers/peptides and metal nanoparticles are highlighted. Relationships between physicochemical properties and antimicrobial activity/selectivity, and possible antimicrobial mechanisms of the hydrogels are discussed. Approaches to mitigating toxicity of metal nanoparticles that are encapsulated in hydrogels are reviewed. In addition, challenges and future perspectives in the development of safe and effective antimicrobial hydrogel systems especially involving co-delivery of antimicrobial polymers/peptides and conventional antimicrobial agents for eventual clinical applications are presented.
Insights
Antimicrobial hydrogels offer a promising solution to combat rising antibiotic resistance by disrupting microbial membranes. These advanced materials show potential for treating infections and various medical applications.
Area of Science:
- Biomaterials Science
- Infectious Diseases
- Drug Delivery
Background:
- Antibiotic resistance is a growing global health threat, driven by conventional antibiotics targeting intracellular pathogens.
- Macromolecular antimicrobial agents, like hydrogels, offer an alternative by disrupting microbial membranes, reducing resistance development.
- Antimicrobial hydrogels are effective in preventing and treating multidrug-resistant infections.
Purpose of the Study:
- To review advances in antimicrobial hydrogels for combating multidrug-resistant infections.
- To explore the relationship between hydrogel properties and antimicrobial efficacy.
- To discuss challenges and future directions for clinical applications.
Main Methods:
- Review of chemically and physically cross-linked natural and synthetic hydrogels.
- Analysis of hydrogels with intrinsic antimicrobial properties or loaded with antimicrobial agents (antibiotics, polymers, peptides, nanoparticles).
- Discussion of structure-property-activity relationships and antimicrobial mechanisms.
Main Results:
- Tailored hydrogel structures offer broad-spectrum antimicrobial activity and tunable mechanical properties.
- Hydrogels can be designed for diverse applications including coatings, wound dressings, and creams.
- Strategies for mitigating nanoparticle toxicity within hydrogels are presented.
Conclusions:
- Antimicrobial hydrogels represent a significant advancement in fighting multidrug-resistant pathogens.
- Further research is needed to optimize hydrogel systems for safe and effective clinical translation.
- Co-delivery strategies hold promise for enhanced therapeutic outcomes.
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