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FOXA2 controls the anti-oxidant response in FH-deficient cells
Connor Rogerson1, Marco Sciacovelli1, Lucas A Maddalena1
1MRC Cancer Unit, University of Cambridge, Hutchison MRC Research Centre, Cambridge Biomedical Campus, Cambridge, UK.
Abstract:
Hereditary leiomyomatosis and renal cell cancer (HLRCC) is a cancer syndrome caused by inactivating germline mutations in fumarate hydratase (FH) and subsequent accumulation of fumarate. Fumarate accumulation leads to profound epigenetic changes and the activation of an anti-oxidant response via nuclear translocation of the transcription factor NRF2. The extent to which chromatin remodeling shapes this anti-oxidant response is currently unknown. Here, we explored the effects of FH loss on the chromatin landscape to identify transcription factor networks involved in the remodeled chromatin landscape of FH-deficient cells. We identify FOXA2 as a key transcription factor that regulates anti-oxidant response genes and subsequent metabolic rewiring cooperating without direct interaction with the anti-oxidant regulator NRF2. The identification of FOXA2 as an anti-oxidant regulator provides additional insights into the molecular mechanisms behind cell responses to fumarate accumulation and potentially provides further avenues for therapeutic intervention for HLRCC.
Insights
Hereditary leiomyomatosis and renal cell cancer (HLRCC) is linked to fumarate hydratase (FH) gene mutations. This study reveals FOXA2 as a key regulator of antioxidant responses in FH-deficient cells, offering new therapeutic targets for HLRCC.
Area of Science:
- Oncology
- Molecular Biology
- Epigenetics
Background:
- Hereditary leiomyomatosis and renal cell cancer (HLRCC) is a cancer syndrome resulting from germline mutations in the fumarate hydratase (FH) gene.
- FH mutations lead to fumarate accumulation, causing epigenetic alterations and activating antioxidant responses through NRF2.
- The role of chromatin remodeling in shaping these antioxidant responses in FH-deficient cells remains unclear.
Purpose of the Study:
- To investigate the impact of FH loss on the chromatin landscape in FH-deficient cells.
- To identify transcription factor networks involved in the remodeled chromatin of these cells.
- To understand the molecular mechanisms underlying cellular responses to fumarate accumulation in HLRCC.
Main Methods:
- Analysis of chromatin landscape alterations in FH-deficient cells.
- Identification of key transcription factors regulating antioxidant response genes.
- Investigation of interactions between identified transcription factors and known regulators like NRF2.
Main Results:
- FH loss significantly remodels the chromatin landscape in affected cells.
- FOXA2 is identified as a crucial transcription factor regulating antioxidant response genes.
- FOXA2 cooperates with NRF2 in regulating metabolic rewiring, despite lacking direct interaction.
Conclusions:
- FOXA2 plays a significant role in mediating antioxidant responses and metabolic adaptation in the context of FH deficiency.
- The findings provide novel insights into the molecular pathogenesis of HLRCC.
- Identification of FOXA2 as an antioxidant regulator opens potential new therapeutic strategies for HLRCC.
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