Fish Acellular Dermal Matrix Promotes Repair of Full‐Thickness Skin Defects in Mice and Bama Pigs.

This study aimed to develop an acellular dermal matrix derived from tilapia skin and evaluate its potential as a bioscaffold for skin wound repair. Structural and compositional changes before and after decellularisation were assessed through histological staining, electron microscopy and immunologic...

Descripción completa

Detalles Bibliográficos
Publicado en:Wound Repair & Regeneration Vol. 33; no. 5; pp. 1 - 17
Autores principales: Wang, Zi‐Yi, Lin, Zi‐Hao, Liu, Ruo‐Tao, Liu, Zhe, Peng, Hao, Hu, Zhi‐Chao, Fu, Wei‐Qing, Jin, Li‐Ming, Zhang, Chang‐Qing, Tang, Qian, Zhu, Zhen‐Zhong, Wei, Xiao‐Juan
Formato: pictorial research tables/charts Journal Article
Publicado: Wiley-Blackwell Sep/Oct2025
Acceso en línea:Ver este registro en EBSCOhost
fields @attributes:
  recordID: 1
pdfLink:
plink: https://search.ebscohost.com/login.aspx?direct=true&db=ccm&AN=188875048&site=ehost-live
header:
  @attributes:
    shortDbName: ccm
    uiTerm: 188875048
    longDbName: CINAHL Complete
    uiTag: AN
  controlInfo:
    bkinfo:
    dissinfo:
    jinfo:
      jid:
        10671927
        DPV
      jtl: Wound Repair & Regeneration
      issn: 10671927
      maglogo: Y
    pubinfo:
      dt: Sep/Oct2025
      vid: 33
      iid: 5
      pid: 480
      pub: Wiley-Blackwell
      place: Malden, Massachusetts
    artinfo:
      ui:
        188875048
        188875048
        188875048
        10.1111/wrr.70091
        188875048
      ppf: 1
      ppct: 16
      formats:
        fmt:
          – @attributes:
              type: T
          – @attributes:
              type: C
          – @attributes:
              type: P
      tig:
        atl: Fish Acellular Dermal Matrix Promotes Repair of Full‐Thickness Skin Defects in Mice and Bama Pigs.
      aug:
        au:
          Wang, Zi‐Yi
          Lin, Zi‐Hao
          Liu, Ruo‐Tao
          Liu, Zhe
          Peng, Hao
          Hu, Zhi‐Chao
          Fu, Wei‐Qing
          Jin, Li‐Ming
          Zhang, Chang‐Qing
          Tang, Qian
          Zhu, Zhen‐Zhong
          Wei, Xiao‐Juan
        affil: Department of Orthopedic Surgery, Shanghai Sixth People's Hospital Affiliated to Shanghai Jiao Tong University School of Medicine, Shanghai, China
      sug:
        subj:
          Fish
          Skin, Artificial
          Skin Injuries
          Skin Transplantation Methods
          Wound Healing
          Extracellular Matrix
          Biocompatible Materials
          Animal Studies
          Mice
          Swine
          China
          Tissue Engineering
          Tissue Scaffolds
          Collagen
          Cell Proliferation
          Endothelial Cells
          Fibroblasts
          Gene Expression Profiling
          Models, Biological
          Neovascularization, Physiologic
          Enzyme-Linked Immunosorbent Assay
          Staining and Labeling
          Paraffin Embedding
          Blotting, Western
          T-Tests
          One-Way Analysis of Variance
          Two-Way Analysis of Variance
          Statistical Significance
          Data Analysis Software
          Descriptive Statistics
          Funding Source
      ab: This study aimed to develop an acellular dermal matrix derived from tilapia skin and evaluate its potential as a bioscaffold for skin wound repair. Structural and compositional changes before and after decellularisation were assessed through histological staining, electron microscopy and immunological analysis. The matrix exhibited low immunogenicity, preserved extracellular matrix architecture and retained key bioactive components. In vitro, the matrix significantly promoted cell proliferation, migration, and tube formation in human umbilical vein endothelial cells and human foreskin fibroblasts. In vivo, full‐thickness skin defect models in Balb/c mice and Bama pigs demonstrated that the tilapia‐derived matrix not only accelerated wound closure but also improved the quality of tissue regeneration by enhancing collagen deposition and vascularisation. Compared to the commercial porcine‐derived matrix, the fish‐derived scaffold exhibited superior regenerative outcomes. Notably, transcriptomic profiling of wound tissue revealed that the matrix modulated a range of biological pathways, including immune regulation, extracellular matrix remodelling and angiogenesis, indicating a multifaceted interaction between the biomaterial and host tissue. These findings underscore the excellent biocompatibility and therapeutic efficacy of the tilapia‐derived matrix, supporting its potential as a safe, economical and sustainable bioscaffold for clinical skin repair. The inclusion of a large animal model provides critical translational relevance due to the anatomical and physiological similarity between porcine and human skin, while transcriptomic analysis offers valuable mechanistic insights into matrix–tissue interactions.
      pubtype: Academic Journal
      doctype:
        pictorial
        research
        tables/charts
        Journal Article
      ougenre: Article
    language: English
    refInfo:
    holdings:
      @attributes:
        islocal: N