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The Nrf2-Antioxidant Response Element Signaling Pathway Controls Fibrosis and Autoimmunity in Scleroderma
Niloufar Kavian1,2, Souad Mehlal1,2, Mohamed Jeljeli1,2
1Laboratoire d'Immunologie, Hôpital Cochin, Paris, France.
Abstract:
Systemic sclerosis (SSc) is an autoimmune disease with fibrosis of the skin and internal organs and vascular alterations. Dysregulations in the oxidant/antioxidant balance are known to be a major factor in the pathogenesis of the disease. Indeed, reactive oxygen species (ROS) trigger neoepitopes leading to a breach of immune tolerance and autoimmune responses, activate fibroblasts to proliferate and to produce excess of type I collagen. ROS also alter endothelial cells leading to vascular dysfunction. Glutathione (GSH) is the most potent antioxidant system in eukaryotic cells. Numerous studies have reported a defect in GSH in SSc animal models and humans, but the origin of this defect remains unknown. The transcription factor NRF2 is a key player in the antioxidant defense, as it can induce the transcription of antioxidant and cytoprotective genes, including GSH, through its interaction with the antioxidant response elements. In this work, we investigated whether NRF2 could be implicated in the pathogenesis of SSc, and if this pathway could represent a new therapeutic target in this orphan disease with no curative medicine. Skin biopsies from 11 patients and 10 controls were harvested, and skin fibroblasts were extracted. Experimental SSc was induced both in BALB/c and in nrf2-/- mice by daily intradermal injections of hypochloric acid. In addition, diseased BALB/c mice were treated with an nrf2 agonist, dimethyl fumarate, or placebo. A drop in nrf2 and target genes mRNA levels was observed in skin fibroblasts of SSc patients compared to controls. Moreover, the nrf2 pathway is also downregulated in skins and lungs of SSc mice. In addition, we observed that nrf2-/- mice have a more severe form of SSc with increased fibrosis and inflammation compared to wild-type SSc mice. Diseased mice treated with the nrf2 agonist dimethyl fumarate (DMF) exhibited reduced fibrosis and immune activation compared to untreated mice. The ex vivo treatment of skin fibroblasts from SSc mice with DMF restores GSH intracellular content, decreases ROS production and cell proliferation. These results suggest that the nrf2 pathway is highly dysregulated in human and SSc mice with deleterious consequences on fibrosis and inflammation and that Nrf2 modulation represents a therapeutic target in SSc.
Insights
Systemic sclerosis involves immune dysfunction and fibrosis. This study reveals a downregulated NRF2 antioxidant pathway in SSc patients and mice, suggesting NRF2 agonists as a potential therapeutic strategy for this autoimmune disease.
Area of Science:
- Immunology
- Cell Biology
- Dermatology
Background:
- Systemic sclerosis (SSc) is an autoimmune disease characterized by fibrosis and vascular damage.
- Oxidant/antioxidant imbalance, particularly reduced glutathione (GSH), is implicated in SSc pathogenesis.
- The transcription factor NRF2 regulates antioxidant defenses, but its role in SSc is unclear.
Purpose of the Study:
- Investigate the role of the NRF2 pathway in SSc pathogenesis.
- Determine if NRF2 dysregulation contributes to fibrosis and inflammation in SSc.
- Evaluate NRF2 agonists as a potential therapeutic target for SSc.
Main Methods:
- Analyzed skin biopsies from SSc patients and controls for NRF2 and target gene expression.
- Induced experimental SSc in wild-type and NRF2-deficient mice.
- Treated SSc mice with the NRF2 agonist dimethyl fumarate (DMF).
Main Results:
- NRF2 pathway components were downregulated in SSc patient fibroblasts and SSc mouse tissues.
- NRF2-deficient mice exhibited more severe SSc phenotypes, including increased fibrosis and inflammation.
- DMF treatment reduced fibrosis and immune activation in SSc mice and restored GSH levels in vitro.
Conclusions:
- The NRF2 pathway is significantly downregulated in SSc, contributing to disease severity.
- NRF2 agonists like DMF show therapeutic potential by mitigating fibrosis and inflammation in SSc.
- Modulating NRF2 offers a promising new therapeutic avenue for SSc.
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