Electrochemically Enhanced Antimicrobial Action of Plasma‐Activated Poly(Vinyl Alcohol) Hydrogel Dressings

Author:

Sabrin Sumyea1ORCID,Hong Sung‐Ha1,KC Sushil Kumar1,Oh Jun‐Seok2,Derrick‐Roberts Ainslie L.K.1,Karmokar Debabrata K.3,Habibullah Habibullah3,Short Robert D.4,Ghimire Bhagirath5,Fitridge Robert67,Szili Endre J.1ORCID

Affiliation:

1. Future Industries Institute University of South Australia Mawson Lakes Campus Mawson Lakes South Australia 5095 Australia

2. Graduate School of Engineering Osaka Metropolitan University Sakai Osaka 599‐8531 Japan

3. UniSA STEM, University of South Australia, Mawson Lakes Campus Mawson Lakes South Australia 5095 Australia

4. Department of Chemistry The University of Sheffield Dainton Building, Brook Hill Sheffield S3 7HF UK

5. Center for Space Plasma and Aeronomic Research University of Alabama in Huntsville Huntsville 35899 USA

6. Faculty of Health and Medical Sciences University of Adelaide Adelaide South Australia 5005 Australia

7. Vascular and Endovascular Service Royal Adelaide Hospital Adelaide South Australia 5000 Australia

Abstract

AbstractThis paper presents and explains the principle behind anelectrochemical method to enhance the antimicrobial action of plasma‐activated hydrogel therapy (PAHT) in the context of wound decontamination. The process involves grounding and hydratingpoly(vinyl alcohol) (PVA) hydrogel films during treatment with a helium (He) plasma jet. This electrochemically enhances production of hydrogen peroxide (H2O2), which is amajor antibacterial agent produced in the PVA hydrogel. Production of H2O2 is shownto be electrically enhanced through electron dissociation reactions, and through reactions associated with excited state species, metastables and ultra‐violet (UV) photolysis. H2O2 production is chemically enhanced through the He flow of the plasma jet dehydrating the PVA hydrogel, which fuels the electrochemical dependent reactions associated with H2O2 production. The electrochemical process produces an unprecedented 3.4 mM of H2O2 in the PVA hydrogel. Production of other molecules such as reactive nitrogen species (RNS) are also enhanced by the same method. The electrochemically enhanced PAHT is highly effective ateradicating common wound pathogens Escherichia coli and Pseudomonas aeruginosa and mildly effective against Staphylococcus aureus. Overall, this study shows that the new PAHT dressing offers a promising alternative to antibiotics and silver‐based dressings for controlling infection and stimulating healing in wounds.

Publisher

Wiley

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