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Updated: Jan 22, 2026

A Mouse Model of Mechanotransduction-driven, Human-like Hypertrophic Scarring
Published on: November 29, 2024
MicroRNA-130a has pro-fibroproliferative potential in hypertrophic scar by targeting CYLD
Jian Zhang1, Qin Zhou1, Hongtao Wang1
1Department of Burns and Cutaneous Surgery, Xijing Hospital, The Fourth Military Medical University, Xi'an, Shaanxi, 710032, PR China.
Abstract:
Hypertrophic scars are dermal fibrosis diseases that protrude from the surface of the skin and irregularly extend to the periphery, seriously affecting the appearance and limb function of the patient. In this study, we found that microRNA-130a (miR-130a) was increased in hypertrophic scar tissues and derived primary fibroblasts, accompanied by up-regulation of collagen1/3 and α-SMA. Inhibition of miR-130a in hypertrophic scars fibroblasts suppressed the expression of collagen1/3 and α-SMA as well as the cell proliferation. Bioinformatics analysis combined with luciferase reporter gene assay results indicated that CYLD was a target gene of miR-130a, and the miR-130a mimic could reduce the level of CYLD. In contrast to miR-130a, the expression of CYLD was downregulated in hypertrophic scars and their derived fibroblasts. Overexpressing CYLD inhibited the expression of collagen 1/3 and α-SMA, slowed cell proliferation, and inhibited Akt activity. As expected, further study showed that the overexpression of CYLD could prevent the pro-fibroproliferative effects of miR-130a. Consistent with the in vitro results, the inhibitor of miR-130a effectively ameliorated excessive collagen deposition in bleomycin-induced skin fibrosis mouse model. Taken together, our results indicate that miR-130a promotes collagen secretion, myofibroblast transformation and cell proliferation by targeting CYLD and enhancing Akt activity. Therefore, the miR-130a/CYLD/Akt pathway may serve as a novel entry point for future skin fibrosis research.
Insights
MicroRNA-130a (miR-130a) promotes skin fibrosis by increasing collagen and cell proliferation. Inhibiting miR-130a or increasing CYLD expression may treat hypertrophic scars.
Area of Science:
- Dermatology
- Molecular Biology
- Fibrosis Research
Background:
- Hypertrophic scars are characterized by excessive dermal fibrosis, impacting patient appearance and function.
- Understanding the molecular mechanisms driving hypertrophic scar formation is crucial for developing effective treatments.
Purpose of the Study:
- To investigate the role of microRNA-130a (miR-130a) in the pathogenesis of hypertrophic scars.
- To identify the molecular targets and signaling pathways regulated by miR-130a in skin fibrosis.
Main Methods:
- Analysis of miR-130a and CYLD expression in hypertrophic scar tissues and fibroblasts.
- In vitro experiments involving miR-130a inhibition/overexpression and CYLD manipulation in fibroblasts.
- Bioinformatics analysis and luciferase reporter assays to confirm target gene interaction.
- In vivo study using a bleomycin-induced skin fibrosis mouse model.
Main Results:
- miR-130a was upregulated in hypertrophic scars, correlating with increased collagen and α-SMA expression.
- miR-130a directly targets CYLD, suppressing its expression; CYLD overexpression counteracted miR-130a's pro-fibrotic effects.
- Inhibition of miR-130a reduced collagen deposition in a mouse model of skin fibrosis.
Conclusions:
- miR-130a promotes collagen secretion, myofibroblast differentiation, and fibroblast proliferation in hypertrophic scars by targeting CYLD and activating the Akt pathway.
- The miR-130a/CYLD/Akt pathway represents a potential therapeutic target for treating skin fibrosis and hypertrophic scars.
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