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Updated: Aug 20, 2025

Author Spotlight: Unveiling the Role of TMOD3 in Platinum Resistance and Immune Infiltration in Ovarian Cancer
Published on: August 2, 2024
Complementary anti-cancer pathways triggered by inhibition of sideroflexin 4 in ovarian cancer
Lia Tesfay1, Bibbin T Paul1, Poornima Hegde2
1Department of Molecular Biology and Biophysics, University of Connecticut Health Center, Farmington, CT, 06030, USA.
Abstract:
DNA damaging agents are a mainstay of standard chemotherapy for ovarian cancer. Unfortunately, resistance to such DNA damaging agents frequently develops, often due to increased activity of DNA repair pathways. Sideroflexin 4 (SFXN4) is a little-studied inner mitochondrial membrane protein. Here we demonstrate that SFXN4 plays a role in synthesis of iron sulfur clusters (Fe-S) in ovarian cancer cells and ovarian cancer tumor-initiating cells, and that knockdown of SFXN4 inhibits Fe-S biogenesis in ovarian cancer cells. We demonstrate that this has two important consequences that may be useful in anti-cancer therapy. First, inhibition of Fe-S biogenesis triggers the accumulation of excess iron, leading to oxidative stress. Second, because enzymes critical to multiple DNA repair pathways require Fe-S clusters for their function, DNA repair enzymes and DNA repair itself are inhibited by reduction of SFXN4. Through this dual mechanism, SFXN4 inhibition heightens ovarian cancer cell sensitivity to DNA-damaging drugs and DNA repair inhibitors used in ovarian cancer therapy, such as cisplatin and PARP inhibitors. Sensitization is achieved even in drug resistant ovarian cancer cells. Further, knockout of SFXN4 decreases DNA repair and profoundly inhibits tumor growth in a mouse model of ovarian cancer metastasis. Collectively, these results suggest that SFXN4 may represent a new target in ovarian cancer therapy.
Insights
Sideroflexin 4 (SFXN4) is crucial for iron-sulfur cluster synthesis in ovarian cancer cells. Inhibiting SFXN4 combats drug resistance by increasing oxidative stress and impairing DNA repair, offering a new therapeutic target.
Area of Science:
- Mitochondrial biology
- Cancer research
- DNA repair mechanisms
Background:
- Ovarian cancer chemotherapy relies on DNA damaging agents.
- Drug resistance often arises from enhanced DNA repair.
- Sideroflexin 4 (SFXN4) is an understudied mitochondrial protein.
Purpose of the Study:
- To investigate the role of SFXN4 in ovarian cancer.
- To determine if SFXN4 is a potential therapeutic target for overcoming chemoresistance.
Main Methods:
- SFXN4 knockdown in ovarian cancer cells and tumor-initiating cells.
- Assessing iron-sulfur cluster biogenesis and iron accumulation.
- Evaluating DNA repair enzyme activity and DNA repair capacity.
- Testing sensitivity to DNA-damaging drugs and PARP inhibitors.
- SFXN4 knockout in a mouse model of ovarian cancer metastasis.
Main Results:
- SFXN4 knockdown inhibits iron-sulfur cluster synthesis in ovarian cancer cells.
- Inhibition of SFXN4 leads to iron accumulation and oxidative stress.
- SFXN4 reduction impairs DNA repair enzyme function and DNA repair.
- SFXN4 inhibition sensitizes chemoresistant ovarian cancer cells to cisplatin and PARP inhibitors.
- SFXN4 knockout reduces DNA repair and inhibits tumor growth in vivo.
Conclusions:
- SFXN4 is essential for iron-sulfur cluster biogenesis in ovarian cancer.
- SFXN4 inhibition presents a dual mechanism to enhance ovarian cancer therapy efficacy.
- SFXN4 represents a promising novel therapeutic target for ovarian cancer treatment, including resistant cases.
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