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Interferon Gamma Enhances Cytoprotective Pathways via Nrf2 and MnSOD Induction in Friedreich's Ataxia Cells
Riccardo Luffarelli1, Luca Panarello1, Andrea Quatrana1
1Department of Biomedicine and Prevention, University of Rome Tor Vergata, 00133 Rome, Italy.
Abstract:
Friedreich's ataxia (FRDA) is a rare monogenic disease characterized by multisystem, slowly progressive degeneration. Because of the genetic defect in a non-coding region of FXN gene, FRDA cells exhibit severe deficit of frataxin protein levels. Hence, FRDA pathophysiology is characterized by a plethora of metabolic disruptions related to iron metabolism, mitochondrial homeostasis and oxidative stress. Importantly, an impairment of the antioxidant defences exacerbates the oxidative damage. This appears closely associated with the disablement of key antioxidant proteins, such as the transcription factor nuclear factor erythroid 2-related factor 2 (Nrf2) and the mitochondrial superoxide dismutase (MnSOD). The cytokine interferon gamma (IFN-γ) has been shown to increase frataxin expression in FRDA cells and to improve functional deficits in FRDA mice. Currently, IFN-γ represents a potential therapy under clinical evaluation in FRDA patients. Here, we show that IFN-γ induces a rapid expression of Nrf2 and MnSOD in different cell types, including FRDA patient-derived fibroblasts. Our data indicate that IFN-γ signals two separate pathways to enhance Nrf2 and MnSOD levels in FRDA fibroblasts. MnSOD expression increased through an early transcriptional regulation, whereas the levels of Nrf2 are induced by a post-transcriptional mechanism. We demonstrate that the treatment of FRDA fibroblasts with IFN-γ stimulates a non-canonical Nrf2 activation pathway through p21 and potentiates antioxidant responses under exposure to hydrogen peroxide. Moreover, IFN-γ significantly reduced the sensitivity to hydrogen peroxide-induced cell death in FRDA fibroblasts. Collectively, these results indicate the presence of multiple pathways triggered by IFN-γ with therapeutic relevance to FRDA.
Insights
Interferon gamma (IFN-γ) boosts antioxidant defenses in Friedreich's ataxia (FRDA) by increasing Nrf2 and MnSOD levels. This treatment protects FRDA cells from oxidative stress and cell death, offering therapeutic potential.
Area of Science:
- Neurodegenerative diseases
- Genetics and molecular biology
- Cellular metabolism
Background:
- Friedreich's ataxia (FRDA) is a rare genetic disorder causing progressive degeneration due to low frataxin levels.
- FRDA pathophysiology involves metabolic disruptions, impaired antioxidant defenses, and reduced Nrf2 and MnSOD activity.
- Interferon gamma (IFN-γ) is a potential therapeutic agent showing promise in FRDA models and patients.
Purpose of the Study:
- To investigate the molecular mechanisms by which IFN-γ affects antioxidant pathways in FRDA.
- To determine how IFN-γ influences Nrf2 and MnSOD expression and activity in FRDA cells.
- To evaluate the protective effects of IFN-γ against oxidative stress in FRDA.
Main Methods:
- Utilized FRDA patient-derived fibroblasts.
- Analyzed Nrf2 and MnSOD expression via transcriptional and post-transcriptional mechanisms.
- Assessed antioxidant responses and cell viability under hydrogen peroxide exposure.
- Investigated IFN-γ signaling pathways involving p21.
Main Results:
- IFN-γ rapidly increased Nrf2 and MnSOD expression in FRDA fibroblasts through distinct pathways.
- MnSOD levels were upregulated transcriptionally, while Nrf2 levels were regulated post-transcriptionally.
- IFN-γ treatment potentiated antioxidant responses and reduced cell death induced by hydrogen peroxide.
- A non-canonical Nrf2 activation pathway via p21 was identified.
Conclusions:
- IFN-γ activates multiple protective pathways in FRDA cells, enhancing antioxidant defenses.
- The distinct regulation of Nrf2 and MnSOD by IFN-γ contributes to cellular protection.
- IFN-γ demonstrates significant therapeutic potential for Friedreich's ataxia by mitigating oxidative damage.
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