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  2. Nanocascade Engineering Workshop for Synergistic Microenvironment Reprogramming and EpSC Revitalization in Precise Diabetic Wound Therapy

Nanocascade Engineering Workshop for Synergistic Microenvironment Reprogramming and EpSC Revitalization in Precise Diabetic Wound Therapy

  • Adv Mater. 2026 Apr;38(21):e22987. doi: 10.1002/adma.202522987.
Rong Shi 1 2 Chao Hu 1 3 Wei Zhang 1 Luyao Wan 1 Yuxin Shi 1 Ni Zhen 1 Zhengwei Mao 1 4 Binghua Zhou 1 5 Gaoxing Luo 1 Jun Deng 1 6
Affiliations

Affiliations

  • 1 Institute of Burn Research, Southwest Hospital, State Key Lab of Trauma and Chemical Poisoning, Army Medical University, Chongqing, China.
  • 2 Department of Breast Surgery, Gansu Provincial Hospital, Lanzhou, China.
  • 3 Department of Hand and Foot Microsurgery, The Affiliated Nanhua Hospital, Hengyang Medical College, University of South China, Hengyang, China.
  • 4 MOE Key laboratory of Macromolecular Synthesis and Functionalization, Department of Polymer Science and Engineering, Zhejiang University, Hangzhou, China.
  • 5 Department of Sports Medicine, Southwest Hospital, Army Medical University, Chongqing, China.
  • 6 Medical lmaging Key Laboratory of Sichuan Province, North Sichuan Medical College, Nanchong, Sichuan, China.
Abstract

Chronic wounds are life-threatening conditions characterized by impaired closure. Chronic inflammation and impaired regeneration and repair lead to the pathological phenotype of chronic diabetic wounds and reduce drug efficacy. In this study, we found that the poor proliferative and differentiative ability of epidermal stem cells (EpSCs) within an inflammatory microenvironment is a key factor contributing to the delayed healing of chronic diabetic wounds. To address this issue, we designed a nanocascade engineering workshop (Cu5.4O@LL-37/pDNA) capable of simultaneously reshaping the inflammatory microenvironment and activating EpSC functions to promote rapid wound closure. The workshop used a core-shell structure design. The core, an ultrasmall Cu5.4O nanozyme, can efficiently eliminate Reactive Oxygen Species, enhance the inflammatory response, and transform the pathological wound microenvironment into a niche facilitating regeneration. The shell is constructed through the electrostatic assembly of plasmid DNA (pDNA) and the Antibacterial peptide LL-37, enhancing gene transfection efficiency and inhibiting Bacterial infection effectively. By leveraging its dual advantages in microenvironment modulation and structural design, the system substantially improves gene delivery and facilitates sustained P311 expression, thereby promoting EpSC proliferation and differentiation. This nanotherapy reshaping the microenvironment and activating EpSC function accelerates re-epithelialization and wound closure in both diabetes and Infection models. This treatment strategy is a novel approach to achieve durable and effective healing in chronic wounds.

Keywords

diabetic wounds; epidermal stem cells; gene delivery; microenvironment reprogramming; nanozyme.

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