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.

Biomaterials Science
|March 16, 2022
PubMed

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.

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