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A Degradable Bioelectronic Scaffold for Localized Cell Transfection toward Enhancing Wound Healing in a 3D Space

  • Ao Xiao
  • , Xinran Jiang
  • , Yongyan Hu
  • , Hu Li
  • , Yanli Jiao
  • , Dedong Yin*
  • , Yuqiong Wang
  • , Hong Sun
  • , Han Wu
  • , Long Lin
  • , Tianrui Chang
  • , Feng Liu
  • , Kuan Yang
  • , Zhaocun Huang
  • , Yanan Sun
  • , Penghua Zhai
  • , Yao Fu
  • , Shenshen Kong
  • , Wei Mu*
  • , Yi Wang*
  • Xinge Yu*, Lingqian Chang*
*Corresponding author for this work
  • Beihang University
  • Peking University
  • City University of Hong Kong
  • National Research Institute for Family Planning, Beijing
  • Capital Medical University
  • China Academy of Chinese Medical Sciences

Research output: Contribution to journalArticlepeer-review

Abstract

Large skin wounds, with extensive surface area and deep vertical full-thickness involvement, can pose significant challenges in clinical settings. Traditional routes for repairing skin wounds encompass three hallmarks: 1) scab formation for hemostasis; 2) proliferation and migration of epidermal cells for wound closure; 3) proliferation, migration, and functionalization of fibroblasts and endothelial cells for dermal remodeling. However, this route face remarkable challenges to healing large wounds, usually leading to disordered structures and loss of functions in the regenerated skin, due to limited control on the transition among the three stages. In this work, an implantable bioelectronics is developed that enables the synchronization of the three stages, offering accelerated and high-quality healing of large skin wounds. The system efficiently electro-transfect local cells near the wounds, forcing cellular proliferation, while providing a 3D porous environments for synchronized migration of epidermal and dermal cells. In vivo experiments demonstrated that the system achieved synchronous progression of multiple layers within the wounds, leading to the reconstruction of a complete skin structure similar to healthy skin, which presents a new avenue for the clinical translation of large wound healing.

Original languageEnglish
Article number2404534
JournalAdvanced Materials
Volume36
Issue number40
DOIs
StatePublished - 2 Oct 2024
Externally publishedYes

Keywords

  • bioelectronics
  • electro-transfection
  • implantable device
  • wound healing

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