A Highly Efficacious Electrical Biofilm Treatment System for Combating Chronic Wound Bacterial Infections.

Zhao, Fan; Su, Yajuan; Wang, Junying; Romanova, Svetlana; DiMaio, Dominick J; Xie, Jingwei; Zhao, Siwei · Adv Mater · 2023

basic_science · Level V

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Abstract

Biofilm infection has a high prevalence in chronic wounds and can delay wound healing. Current treatment using debridement and antibiotic administration imposes a significant burden on patients and healthcare systems. To address their limitations, a highly efficacious electrical antibiofilm treatment system is described in this paper. This system uses high-intensity current (75 mA cm<sup>-2</sup> ) to completely debride biofilm above the wound surface and enhance antibiotic delivery into biofilm-infected wounds simultaneously. Combining these two effects, this system uses short treatments (≤2 h) to reduce bacterial count of methicillin-resistant S. aureus (MRSA) biofilm-infected ex vivo skin wounds from 10<sup>10</sup> to 10<sup>5.2</sup> colony-forming units (CFU) g<sup>-1</sup> . Taking advantage of the hydrogel ionic circuit design, this system enhances the in vivo safety of high-intensity current application compared to conventional devices. The in vivo antibiofilm efficacy of the system is tested using a diabetic mouse-based wound infection model. MRSA biofilm bacterial count decreases from 10<sup>9.0</sup> to 10<sup>4.6</sup> CFU g<sup>-1</sup> at 1 day post-treatment and to 10<sup>3.3</sup> CFU g<sup>-1</sup> at 7 days post-treatment, both of which are below the clinical threshold for infection. Overall, this novel technology provides a quick, safe, yet highly efficacious treatment to chronic wound biofilm infections.

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