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MitoQ Inhibits Human Breast Cancer Cell Migration, Invasion and Clonogenicity
Tania Capeloa1, Joanna Krzystyniak1, Donatienne d'Hose2
1Pole of Pharmacology and Therapeutics, Institut de Recherche Expérimentale et Clinique (IREC), Université Catholique de Louvain (UCLouvain), 1200 Brussels, Belgium.
Abstract:
To successfully generate distant metastases, metastatic progenitor cells must simultaneously possess mesenchymal characteristics, resist to anoïkis, migrate and invade directionally, resist to redox and shear stresses in the systemic circulation, and possess stem cell characteristics. These cells primarily originate from metabolically hostile areas of the primary tumor, where oxygen and nutrient deprivation, together with metabolic waste accumulation, exert a strong selection pressure promoting evasion. Here, we followed the hypothesis according to which metastasis as a whole implies the existence of metabolic sensors. Among others, mitochondria are singled out as a major source of superoxide that supports the metastatic phenotype. Molecularly, stressed cancer cells increase mitochondrial superoxide production, which activates the transforming growth factor-β pathway through src directly within mitochondria, ultimately activating focal adhesion kinase Pyk2. The existence of mitochondria-targeted antioxidants constitutes an opportunity to interfere with the metastatic process. Here, using aggressive triple-negative and HER2-positive human breast cancer cell lines as models, we report that MitoQ inhibits all the metastatic traits that we tested in vitro. Compared to other mitochondria-targeted antioxidants, MitoQ already successfully passed Phase I safety clinical trials, which provides an important incentive for future preclinical and clinical evaluations of this drug for the prevention of breast cancer metastasis.
Insights
Metastatic cancer cells require specific metabolic adaptations. The mitochondria-targeted antioxidant MitoQ effectively inhibited key metastatic traits in breast cancer cells, suggesting its potential for metastasis prevention.
Area of Science:
- Oncology
- Cell Biology
- Metabolic Signaling
Background:
- Metastasis requires progenitor cells with mesenchymal, anoikis-resistant, migratory, and stem cell characteristics.
- These cells often originate from metabolically stressed tumor regions, driving adaptive evolution.
- Mitochondria-derived superoxide is implicated in supporting the metastatic phenotype via signaling pathways.
Purpose of the Study:
- To investigate the role of metabolic sensors, particularly mitochondria, in cancer metastasis.
- To test the hypothesis that targeting mitochondrial function can inhibit metastatic processes.
- To evaluate the efficacy of the mitochondria-targeted antioxidant MitoQ against metastatic traits in breast cancer.
Main Methods:
- Utilized aggressive triple-negative and HER2-positive human breast cancer cell lines.
- Assessed key metastatic traits in vitro, including migration, invasion, and anoikis resistance.
- Investigated the effect of MitoQ on mitochondrial superoxide production and downstream signaling pathways.
Main Results:
- MitoQ demonstrated inhibition of all tested metastatic traits in vitro.
- The drug targets mitochondrial superoxide production, a key factor in metastasis.
- MitoQ has already passed Phase I clinical safety trials.
Conclusions:
- Metastasis involves complex cellular adaptations driven by metabolic stress.
- Mitochondria play a critical role in supporting metastatic capabilities.
- MitoQ shows significant promise as a therapeutic agent for preventing breast cancer metastasis.
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