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Published on: March 15, 2024
Ferroptosis Suppressor Protein 1 (FSP1)-CoQ10-NADPH-Axis Is Responsible for Erastin Resistance in MCF-7 Breast Cancer
Brian B Silver1, Carri Murphy1, Erik J Tokar1
1Mechanistic Toxicology Branch, Division of Translational Toxicology, National Institute of Environmental Health, National Institutes of Health, Research Triangle Park, Durham, NC 27709, USA.
Abstract:
Ferroptosis has emerged as a promising therapeutic strategy for drug-resistant cancers; however, the molecular mechanisms governing ferroptosis susceptibility in breast cancer remain poorly defined. Here, we have investigated distinct ferroptosis resistance mechanisms in parental MCF-7 breast cancer cells and their BCRP-overexpressing derivative, MCF-7/MXR. MCF-7/MXR cells displayed robust erastin (ER)-induced ferroptosis characterized by extensive lipid peroxidation, ROS accumulation, and suppression of the xCT-GSH-GPX4 axis. In contrast, MCF-7 cells were resistant to ER, exhibiting minimal lipid damage despite measurable ER-induced oxidative stress. We found that this resistance is mediated not by the canonical GPX4 pathway, but by a potent compensatory antioxidant system centered on the FSP1-CoQ10-NADPH axis. Pharmacological inhibition of FSP1 strongly sensitized MCF-7 cells to ER, with minimal effects in MXR cells. ER differentially regulated ferroptosis-associated genes, downregulating GPX4, and SLC7A11 in MXR cells but upregulating the GPX4 pathway in MCF-7 cells. Additionally, ER downregulated FSP1 and NQO1 in MCF-7 cells without affecting their expressions in MXR cells. This mechanistic divergence highlights that ferroptosis resistance in breast cancer is context-dependent and mediated by pathway-specific antioxidant programs. Co-targeting FSP1 and GPX4 therefore represents a rational strategy to overcome ferroptosis resistance in MCF-7-like breast cancers.
Insights
Breast cancer cells resist ferroptosis through distinct antioxidant pathways. Targeting both FSP1 and GPX4 (glutathione peroxidase 4) may overcome resistance in MCF-7-like cancers.
Area of Science:
- Biochemistry
- Molecular Biology
- Oncology
Background:
- Ferroptosis is a promising strategy for drug-resistant cancers.
- Mechanisms of ferroptosis resistance in breast cancer are not well understood.
Purpose of the Study:
- Investigate distinct ferroptosis resistance mechanisms in MCF-7 and MCF-7/MXR breast cancer cells.
- Identify key molecular pathways involved in ferroptosis resistance.
Main Methods:
- Utilized erastin (ER) to induce ferroptosis.
- Analyzed lipid peroxidation, ROS accumulation, and antioxidant gene expression.
- Pharmacologically inhibited FSP1 (ferroptosis suppressor protein 1).
Main Results:
- MCF-7/MXR cells showed robust ferroptosis via GPX4 pathway suppression.
- MCF-7 cells resisted ferroptosis through the FSP1-CoQ10-NADPH antioxidant axis.
- FSP1 inhibition sensitized MCF-7 cells to erastin.
Conclusions:
- Breast cancer ferroptosis resistance is context-dependent and mediated by specific antioxidant programs.
- Co-targeting FSP1 and GPX4 is a potential strategy to overcome ferroptosis resistance in MCF-7-like breast cancers.
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