HOCl-producing electrochemical bandage is active in murine polymicrobial wound infection
Derek Fleming1, Ibrahim Bozyel2, Christina A Koscianski1
1Division of Clinical Microbiology, Mayo Clinic, Rochester, Minnesota, USA.
Abstract:
Wound infections, exacerbated by the prevalence of antibiotic-resistant bacterial pathogens, necessitate innovative antimicrobial approaches. Polymicrobial infections, often involving Pseudomonas aeruginosa and methicillin-resistant Staphylococcus aureus (MRSA), present challenges due to biofilm formation and antibiotic resistance. Hypochlorous acid (HOCl), a potent antimicrobial agent, holds promise as an alternative therapy. An electrochemical bandage (e-bandage) that generates HOCl in situ via precise polarization controlled by a miniaturized potentiostat was evaluated for the treatment of murine wound biofilm infections containing both P. aeruginosa with "difficult-to-treat" resistance and MRSA. Previously, HOCl-producing e-bandage was shown to reduce murine wound biofilms containing P. aeruginosa alone. Here, in 5-mm excisional skin wounds containing 48-h biofilms comprising MRSA and P. aeruginosa combined, polarized e-bandage treatment reduced MRSA by 1.1 log10 CFU/g (P = 0.026) vs non-polarized e-bandage treatment (no HOCl production), and 1.4 log10 CFU/g (0.0015) vs Tegaderm only controls; P. aeruginosa was similarly reduced by 1.6 log10 CFU/g (P = 0.0032) and 1.6 log10 CFU/g (P = 0.0015), respectively. For wounds infected with MRSA alone, polarized e-bandage treatment reduced bacterial load by 1.1 log10 CFU/g (P = 0.0048) and 1.3 log10 CFU/g (P = 0.0048) compared with non-polarized e-bandage and Tegaderm only, respectively. The e-bandage treatment did not negatively impact wound healing or cause tissue toxicity. The addition of systemic antibiotics did not enhance the antimicrobial efficacy of e-bandages. This study provides additional evidence for the HOCl-producing e-bandage as a novel antimicrobial strategy for managing wound infections, including in the context of antibiotic resistance and polymicrobial infections.
Importance:
New approaches are needed to combat the rise of antimicrobial-resistant infections. The HOCl-producing electrochemical bandage (e-bandage) leverages in situ generation of HOCl, a natural biocide, for broad-spectrum killing of wound pathogens. Unlike traditional therapies that may exhibit limited activity against biofilms and antimicrobial-resistant organisms, the e-bandage offers a potent, standalone solution that does not contribute to further resistance or require adjunctive antibiotic therapy. Here, we show the ability of the e-bandage to address polymicrobial infection by antimicrobial resistant clinical isolates of Staphylococcus aureus and Pseudomonas aeruginosa, two commonly isolated, co-infecting wound pathogens. Effectiveness of the HOCl-producing e-bandage in reducing pathogen load while minimizing tissue toxicity and avoiding the need for systemic antibiotics underscores its potential as a tool in managing complex wound infections.
Insights
An electrochemical bandage (e-bandage) effectively treats polymicrobial wound infections by generating hypochlorous acid (HOCl) in situ. This innovative approach reduces antibiotic-resistant bacteria like MRSA and Pseudomonas aeruginosa without needing systemic antibiotics.
Area of Science:
- Biomedical Engineering
- Infectious Diseases
- Wound Care
Background:
- Antibiotic-resistant bacterial pathogens, including MRSA and Pseudomonas aeruginosa, complicate wound infections.
- Polymicrobial infections and biofilms present significant challenges for conventional antimicrobial therapies.
- Hypochlorous acid (HOCl) is a potent antimicrobial agent with potential for novel therapeutic applications.
Purpose of the Study:
- To evaluate the efficacy of an electrochemical bandage (e-bandage) generating HOCl in situ for treating polymicrobial wound infections.
- To assess the e-bandage's impact on antibiotic-resistant strains of Staphylococcus aureus (MRSA) and Pseudomonas aeruginosa.
- To determine if the e-bandage requires adjunctive systemic antibiotic therapy and evaluate its tissue toxicity and effect on wound healing.
Main Methods:
- An electrochemical bandage (e-bandage) was developed to generate HOCl precisely via potentiostat control.
- The e-bandage was tested on murine excisional skin wound models with 48-hour biofilms of MRSA and P. aeruginosa.
- Bacterial load reduction was compared between polarized (HOCl-producing) e-bandages, non-polarized e-bandages, and Tegaderm-only controls. Tissue toxicity and wound healing were also assessed.
Main Results:
- Polarized e-bandage treatment significantly reduced MRSA load by 1.1-1.4 log10 CFU/g and P. aeruginosa by 1.6 log10 CFU/g compared to controls.
- The e-bandage also effectively reduced bacterial load in MRSA-only infected wounds.
- No negative impact on wound healing or tissue toxicity was observed, and systemic antibiotics did not enhance efficacy.
Conclusions:
- The HOCl-producing e-bandage is a promising antimicrobial strategy for managing complex wound infections.
- This technology demonstrates efficacy against polymicrobial infections involving antibiotic-resistant bacteria.
- The e-bandage offers a potential standalone treatment option, minimizing the need for systemic antibiotics and reducing the risk of further resistance.


