Reshaping the Endogenous Electric Field to Boost Wound Repair via Electrogenerative Dressing

Author:

Luo Ruizeng123,Liang Yi14,Yang Jinrui1,Feng Hongqing23,Chen Ying1,Jiang Xupin1,Zhang Ze1,Liu Jie1,Bai Yuan25,Xue Jiangtao26,Chao Shengyu23,Xi Yi7,Liu Xiaoqiang1,Wang Engui2,Luo Dan235ORCID,Li Zhou2358ORCID,Zhang Jiaping1

Affiliation:

1. Department of Plastic Surgery State Key Laboratory of Trauma Burns and Combined Injury Southwest Hospital Third Military Medical University (Army Medical University) Chongqing 400038 China

2. Beijing Institute of Nanoenergy and Nanosystems Chinese Academy of Sciences Beijing 101400 China

3. School of Nanoscience and Technology University of Chinese Academy of Sciences Beijing 100049 China

4. Department of Burn and Plastic Surgery Army 73rd Group Military Hospital Xiamen 361000 China

5. Center on Nanoenergy Research School of Physical Science & Technology Guangxi University Nanning 530004 China

6. Institute of Engineering Medicine Beijing Institute of Technology Beijing 100081 China

7. Chongqing Key Laboratory of Soft Condensed Matter Physics and Smart Materials Department of Applied Physics State Key Laboratory of Power Transmission Equipment & System Security and New Technology Chongqing University Chongqing 400044 P. R. China

8. Institute for Stem Cell and Regeneration Chinese Academy of Sciences Beijing 100101 China

Abstract

AbstractThe endogenous electric field (EF) generated by transepithelial potential difference plays a decisive role in wound reepithelialization. For patients with large or chronic wounds, negative‐pressure wound therapy (NPWT) is the most effective clinical method in inflammation control by continuously removing the necrotic tissues or infected substances, thus creating a proproliferative microenvironment beneficial for wound reepithelialization. However, continuous negative‐pressure drainage causes electrolyte loss and weakens the endogenous EF, which in turn hinders wound reepithelialization. Here, an electrogenerative dressing (EGD) is developed by integrating triboelectric nanogenerators with NPWT. By converting the negative‐pressure‐induced mechanical deformation into electricity, EGD produces a stable and high‐safety EF that can trigger a robust epithelial electrotactic response and drive the macrophages toward a reparative M2 phenotype in vitro. Translational medicine studies confirm that EGD completely reshapes the wound EF weakened by NPWT, and promotes wound closure by facilitating an earlier transition of inflammation/proliferation and guiding epithelial migration and proliferation to accelerate reepithelialization. Long‐term EGD therapy remarkably advances tissue remodeling with mature epithelium, orderly extracellular matrix, and less scar formation. Compared with the golden standard of NPWT, EGD orchestrates all the essential wound stages in a noninvasive manner, presenting an excellent prospect in clinical wound therapy.

Funder

Natural Science Foundation of Beijing Municipality

National Basic Research Program of China

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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