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Updated: Jul 28, 2025

In Vitro Model of Human Cutaneous Hypertrophic Scarring using Macromolecular Crowding
Published on: May 1, 2020
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.
Abstract:
Many factors regulate scar formation, which yields a modified extracellular matrix (ECM). Among ECM components, microfibril-associated proteins have been minimally explored in the context of skin wound repair. Microfibril-associated protein 5 (MFAP5), a small 25 kD serine and threonine rich microfibril-associated protein, influences microfibril function and modulates major extracellular signaling pathways. Though known to be associated with fibrosis and angiogenesis in certain pathologies, MFAP5's role in wound healing is unknown. Using a murine model of skin wound repair, we found that MFAP5 is significantly expressed during the proliferative and remodeling phases of healing. Analysis of existing single-cell RNA-sequencing data from mouse skin wounds identified two fibroblast subpopulations as the main expressors of MFAP5 during wound healing. Furthermore, neutralization of MFAP5 in healing mouse wounds decreased collagen deposition and refined angiogenesis without altering wound closure. In vitro, recombinant MFAP5 significantly enhanced dermal fibroblast migration, collagen contractility, and expression of pro-fibrotic genes. Additionally, TGF-ß1 increased MFAP5 expression and production in dermal fibroblasts. Our findings suggest that MFAP5 regulates fibroblast function and influences scar formation in healing wounds. Our work demonstrates a previously undescribed role for MFAP5 and suggests that microfibril-associated proteins may be significant modulators of wound healing outcomes and scarring.
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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