Microfibril-associated protein 5 and the regulation of skin scar formation

Chen Han1, Trevor R Leonardo2, Bruna Romana-Souza3

  • 1Center for Wound Healing and Tissue Regeneration, University of Illinois Chicago, Chicago, IL, USA.

Scientific Reports
|May 30, 2023
PubMed

Insights

Microfibril-associated protein 5 (MFAP5) influences fibroblast function and scar formation during wound healing. Neutralizing MFAP5 reduced collagen and refined blood vessel growth, suggesting MFAP5 as a target for modulating wound repair.

Area of Science:

  • Extracellular Matrix Biology
  • Wound Healing Research
  • Fibrosis and Scarring

Background:

  • Scar formation involves extracellular matrix (ECM) modification.
  • Microfibril-associated proteins' role in skin wound repair is largely unexplored.
  • Microfibril-associated protein 5 (MFAP5) is known to associate with fibrosis and angiogenesis.

Purpose of the Study:

  • To investigate the role of MFAP5 in skin wound healing and scar formation.
  • To identify cell types expressing MFAP5 during wound repair.
  • To determine MFAP5's effect on fibroblast function and ECM deposition.

Main Methods:

  • Murine model of skin wound repair.
  • Analysis of single-cell RNA-sequencing data.
  • MFAP5 neutralization in vivo and recombinant MFAP5 treatment in vitro.
  • Assessment of collagen deposition, angiogenesis, and fibroblast activity.

Main Results:

  • MFAP5 is significantly expressed during proliferative and remodeling phases of wound healing.
  • Fibroblast subpopulations are primary MFAP5 expressors.
  • MFAP5 neutralization decreased collagen deposition and refined angiogenesis.
  • MFAP5 enhanced dermal fibroblast migration, collagen contractility, and pro-fibrotic gene expression.
  • TGF-ß1 upregulated MFAP5 expression in fibroblasts.

Conclusions:

  • MFAP5 plays a significant role in regulating fibroblast function during wound healing.
  • MFAP5 influences scar formation by modulating collagen deposition and angiogenesis.
  • Microfibril-associated proteins, like MFAP5, are potential key regulators of wound healing and scarring.

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