Related Experiment Video
Updated: Sep 30, 2025

Development and Characterization of Fusidic Acid-Loaded Alginate-Aloe vera Based Hydrogel FilmWound Healing
Published on: December 13, 2024
An easy-to-use antimicrobial hydrogel effectively kills bacteria, fungi, and influenza virus
Brinta Bhattacharjee1, Logia Jolly1, Riya Mukherjee1
1Antimicrobial Research Laboratory, New Chemistry Unit, Jakkur, Bengaluru 560064, Karnataka, India.
Abstract:
Various drug resistant pathogens such as bacteria, fungi and viruses enter a host through different routes, which can lead to health-related problems and even fatalities. Propagation of these infectious microbes majorly occurs through the mucosal openings or upon topical contact. To curb their transmission or to cure infections associated with these pathogens, herein we describe the development of an antimicrobial hydrogel, based on a water soluble quaternary lipophilic polyethyleneimine derivative (QPEINH-C6). The cationic polymer QPEINH-C6 exhibited antibacterial activity against drug-resistant Gram-positive bacteria (MIC = 10-62 μg mL-1) and Gram-negative bacteria (MIC = 117-123 μg mL-1). The derivative showed killing of human pathogenic fungi (MIC = 58-67 μg mL-1), including their clinical isolates. The rapid bactericidal and fungicidal nature were confirmed from the fast inactivation kinetics of bacterial cells (methicillin resistant S. aureus and vancomycin resistant S. aureus) within 3-6 hours and C. albicans within 1 h with ∼5-6 log reduction in the microbial burden. This antibacterial and antifungal cationic polymer was then used to construct an antimicrobial shear-thinning hydrogel (Bacfuvir), through non-covalent crosslinking with biocompatible gellan and polyvinyl alcohol (PVA). This hydrogel displayed ∼5-7 log reduction of numerous multidrug-resistant bacteria and their stationary phase cells which are insusceptible to conventional antibiotics. In addition, >99.9 % viable bacterial burden was reduced from preformed biofilm matrices of drug-resistant bacteria. Alongside, fluconazole-resistant C. albicans strains were killed completely within 15-60 min upon exposure to Bacfuvir gel. Most importantly, MRSA and C. albicans cells were reduced (3-4 log) in polymicrobial biofilms after hydrogel treatment. The hydrogel exhibited 99.9 % reduction of influenza viruses in a rapid manner. Due to the biocompatibility of Bacfuvir gel on topical application in a murine model and easy administration owing to its shear-thinning behaviour, this hydrogel can markedly contribute to mitigating drug-resistant bacterial, fungal and viral infections in healthcare settings.
Insights
A novel antimicrobial hydrogel, Bacfuvir, effectively combats drug-resistant bacteria, fungi, and viruses. This innovative material shows significant microbial reduction, offering a promising solution for challenging healthcare-associated infections.
Area of Science:
- Materials Science
- Microbiology
- Infectious Diseases
Background:
- Drug-resistant pathogens pose a significant global health threat, necessitating novel antimicrobial strategies.
- Infections spread through mucosal routes and topical contact, highlighting the need for effective topical treatments.
- Current treatments are often insufficient against multidrug-resistant organisms and biofilms.
Purpose of the Study:
- To develop and characterize a novel antimicrobial hydrogel with broad-spectrum activity against drug-resistant pathogens.
- To evaluate the efficacy of the hydrogel against bacteria, fungi, and viruses, including resistant strains and biofilms.
- To assess the biocompatibility and potential clinical applicability of the developed hydrogel.
Main Methods:
- Synthesis of a cationic polyethyleneimine derivative (QPEINH-C6) with antimicrobial properties.
- Formulation of a shear-thinning hydrogel (Bacfuvir) using QPEINH-C6, gellan, and polyvinyl alcohol (PVA).
- In vitro testing of antimicrobial activity against drug-resistant bacteria (Gram-positive and Gram-negative), fungi, and influenza viruses, including biofilm eradication and kinetic studies.
- In vivo biocompatibility assessment in a murine model.
Main Results:
- QPEINH-C6 demonstrated potent antibacterial and antifungal activity with low minimum inhibitory concentrations (MICs).
- The Bacfuvir hydrogel achieved significant log reductions (up to 7 logs) in multidrug-resistant bacteria, fungi, and influenza viruses.
- The hydrogel effectively eradicated preformed bacterial biofilms and reduced microbial burden in polymicrobial biofilms.
- Rapid inactivation kinetics were observed for bacteria and fungi, with complete killing within hours or minutes.
- Topical application in a murine model showed good biocompatibility.
Conclusions:
- The developed Bacfuvir hydrogel exhibits broad-spectrum antimicrobial efficacy against challenging drug-resistant pathogens.
- Its shear-thinning properties and biocompatibility make it suitable for topical applications in healthcare settings.
- Bacfuvir represents a promising therapeutic candidate for managing and preventing infections caused by multidrug-resistant bacteria, fungi, and viruses.
Related Concept Videos
Hand hygiene
Hand washing...
Antimicrobial Effectiveness
Surface Membrane Barriers
The outer layer of the skin, the epidermis, is a robust barrier comprising layers of closely packed keratinized cells. This dense arrangement prevents microbes from penetrating the body. The periodic shedding of epidermal cells...
Antimicrobial Proteins
Interferons
Interferons (IFNs) are proteins produced by lymphocytes, macrophages, and fibroblasts infected with viruses. While IFNs cannot prevent viruses from entering and...
Chemical Agents for Microbial Control
Gene Regulation in Microbial Communities: Quorum Sensing

