Inhibiting scar formation via wearable multilayer stacked electret patch: Self‐creation of persistent and customizable DC electric field for fibrogenic activity restriction

Author:

Kim Sung‐Won1,Cho Sumin2,Lee Donghan2,Hyun Jiyu1,Jang Sunmin2,Seo Inwoo1,Park Hyun Su1,Hwang Hee Jae3,Han Hyung‐Seop3,Yang Dae Hyeok4,Chun Heung Jae4,Bhang Suk Ho1,Choi Dongwhi2ORCID

Affiliation:

1. School of Chemical Engineering Sungkyunkwan University Suwon Republic of Korea

2. Department of Mechanical Engineering (Integrated Engineering Program) Kyung Hee University Yongin Gyeonggi South Korea

3. Biomaterials Research Center, Biomedical Research Division Korea Institute of Science and Technology (KIST) Seoul Republic of Korea

4. Department of Medical Life Sciences, College of Medicine Institute of Cell and Tissue Engineering, The Catholic University of Korea Seoul Republic of Korea

Abstract

AbstractElectrical stimulation has recently received attention as noninvasive treatment in skin wound healing with its outstanding biological property for clinical setting. However, the complexity of equipment for applying appropriate electrical stimulation remains an ongoing challenge. Here, we proposed a strategy for skin scar inhibition by providing electrical stimulation via a multilayer stacked electret (MS‐electret), which can generate direct current (DC) electric field (EF) without any power supply equipment. In addition, the MS‐electret can easily control the intensity of EFs by simply stacking electret layers and maintain stable EF with the surface potential of 3400 V over 5 days owing to the injected charges on the electret surface. We confirmed inhibition of type 1 collagen and α‐SMA expression of human dermal fibroblasts (hDFs) by 90% and 44% in vitro, indicating that the transition of hDFs to myofibroblasts was restricted by applying stable electrical stimulation. We further revealed a 20% significant decrease in the ratio of myofibroblasts caused by the MS‐electret in vivo. These findings present that the MS‐electret is an outstanding candidate for effective skin scar inhibition with a battery‐free, physiological electrical microenvironment, and noninvasive treatment that allows it to prevent external infection.image

Funder

National Research Foundation of Korea

Publisher

Wiley

Subject

Materials Chemistry,Surfaces, Coatings and Films,Materials Science (miscellaneous),Electronic, Optical and Magnetic Materials

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