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Updated: Oct 23, 2025

Mechanistic Insight into the Development of TNBS-Mediated Intestinal Fibrosis and Evaluating the Inhibitory Effects of Rapamycin
Published on: September 12, 2019
Systemic mesalazine treatment prevents spontaneous skin fibrosis in PLK2-deficient mice
Manja Newe1, Theresa A Kant1, Maximilian Hoffmann1
1Institute of Pharmacology and Toxicology, Faculty of Medicine Carl Gustav Carus, Technische Universität Dresden, Fiedlerstraße 42, 01309, Dresden, Germany.
Abstract:
Skin fibrosis is a complex biological remodeling process occurring in disease like systemic sclerosis, morphea, or eosinophilic fasciitis. Since the knowledge about the underlying pathomechanisms is still incomplete, there is currently no therapy, which prevents or reverses skin fibrosis sufficiently. The present study investigates the role of polo-like kinase 2 (PLK2) and the pro-fibrotic cytokine osteopontin (OPN) in the pathogenesis of cutaneous fibrosis and demonstrates the antifibrotic effects of systemic mesalazine treatment in vivo. Isolated primary dermal fibroblasts of PLK2 wild-type (WT) and knockout (KO) mice were characterized in vitro. Skin thickness and histoarchitecture were studied in paraffin-embedded skin sections. The effects of mesalazine treatment were examined in isolated fibroblasts and PLK2 KO mice, which were fed 100 µg/g mesalazine for 6 months via the drinking water. Compared to WT, PLK2 KO fibroblasts displayed higher spontaneous myofibroblast differentiation, reduced proliferation rates, and overexpression of the fibrotic cytokine OPN. In vitro, 72 h of treatment with 10 mmol/L mesalazine induced phenotype conversion in PLK2 KO fibroblasts and attenuated OPN expression by inhibiting ERK1/2. In vivo, dermal myofibroblast differentiation, collagen accumulation, and skin thickening were prevented by mesalazine in PLK2 KO. Plasma creatinine levels indicated good tolerability of systemic long-term mesalazine treatment. The current study reveals a spontaneous fibrotic skin phenotype and ERK1/2-dependent OPN overexpression in PLK2 KO mice. We provide experimental evidence for the antifibrotic effectiveness of systemic mesalazine treatment to prevent fibrosis of the skin, suggesting further investigation in experimental and clinical settings.
Insights
Polo-like kinase 2 (PLK2) knockout mice show spontaneous skin fibrosis and osteopontin (OPN) overexpression. Mesalazine treatment effectively reduced fibrosis in these mice, suggesting its potential as an antifibrotic therapy.
Area of Science:
- Dermatology
- Molecular Biology
- Pharmacology
Background:
- Skin fibrosis, a hallmark of diseases like systemic sclerosis, lacks effective preventative or curative therapies due to incomplete understanding of its mechanisms.
- Polo-like kinase 2 (PLK2) and osteopontin (OPN) are implicated in fibrotic processes, but their specific roles in cutaneous fibrosis require further elucidation.
Purpose of the Study:
- To investigate the role of PLK2 and OPN in the pathogenesis of skin fibrosis.
- To evaluate the potential of mesalazine as an antifibrotic agent in a preclinical model.
Main Methods:
- Primary dermal fibroblasts from PLK2 wild-type (WT) and knockout (KO) mice were analyzed in vitro.
- Skin thickness and histoarchitecture were assessed in vivo.
- Mesalazine treatment effects were studied in isolated fibroblasts and PLK2 KO mice over six months.
Main Results:
- PLK2 KO fibroblasts exhibited increased spontaneous myofibroblast differentiation, reduced proliferation, and OPN overexpression compared to WT.
- In vitro, mesalazine treatment reversed the fibrotic phenotype in PLK2 KO fibroblasts by inhibiting ERK1/2 signaling and reducing OPN expression.
- In vivo, mesalazine administration prevented dermal myofibroblast differentiation, collagen accumulation, and skin thickening in PLK2 KO mice, with good tolerability.
Conclusions:
- PLK2 deficiency leads to a spontaneous fibrotic skin phenotype in mice, characterized by ERK1/2-dependent OPN overexpression.
- Systemic mesalazine demonstrates significant antifibrotic efficacy in this model, warranting further investigation for treating skin fibrosis.
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