ONC201 kills breast cancer cells in vitro by targeting mitochondria
Yoshimi Endo Greer1, Natalie Porat-Shliom2, Kunio Nagashima3
1Women's Malignancies Branch, Center for Cancer Research (CCR), National Cancer Institute (NCI), National Institutes of Health (NIH), Bethesda, MD, USA.
Abstract:
We report a novel mechanism of action of ONC201 as a mitochondria-targeting drug in cancer cells. ONC201 was originally identified as a small molecule that induces transcription of TNF-related apoptosis-inducing ligand (TRAIL) and subsequently kills cancer cells by activating TRAIL death receptors. In this study, we examined ONC201 toxicity on multiple human breast and endometrial cancer cell lines. ONC201 attenuated cell viability in all cancer cell lines tested. Unexpectedly, ONC201 toxicity was not dependent on either TRAIL receptors nor caspases. Time-lapse live cell imaging revealed that ONC201 induces cell membrane ballooning followed by rupture, distinct from the morphology of cells undergoing apoptosis. Further investigation found that ONC201 induces phosphorylation of AMP-dependent kinase and ATP loss. Cytotoxicity and ATP depletion were significantly enhanced in the absence of glucose, suggesting that ONC201 targets mitochondrial respiration. Further analysis indicated that ONC201 indirectly inhibits mitochondrial respiration. Confocal and electron microscopic analysis demonstrated that ONC201 triggers mitochondrial structural damage and functional impairment. Moreover, ONC201 decreased mitochondrial DNA (mtDNA). RNAseq analysis revealed that ONC201 suppresses expression of multiple mtDNA-encoded genes and nuclear-encoded mitochondrial genes involved in oxidative phosphorylation and other mitochondrial functions. Importantly, fumarate hydratase deficient cancer cells and multiple cancer cell lines with reduced amounts of mtDNA were resistant to ONC201. These results indicate that cells not dependent on mitochondrial respiration are ONC201-resistant. Our data demonstrate that ONC201 kills cancer cells by disrupting mitochondrial function and further suggests that cancer cells that are dependent on glycolysis will be resistant to ONC201.
Insights
ONC201 kills cancer cells by targeting mitochondria, causing ATP loss and cell rupture, independent of TRAIL receptors. Cancer cells relying on glycolysis are resistant to this mitochondria-targeting drug.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- ONC201 was initially identified as a small molecule inducing TNF-related apoptosis-inducing ligand (TRAIL) to kill cancer cells.
- Its previously known mechanism involved TRAIL death receptor activation.
Purpose of the Study:
- To investigate the novel mechanism of action of ONC201 in cancer cells.
- To determine ONC201's toxicity and cellular targets beyond TRAIL receptors.
Main Methods:
- Utilized time-lapse live cell imaging to observe cellular morphology changes.
- Assessed cytotoxicity, ATP levels, and mitochondrial function (mtDNA, gene expression) via RNAseq, confocal, and electron microscopy.
- Tested ONC201 sensitivity in various cancer cell lines, including fumarate hydratase deficient cells and those with reduced mtDNA.
Main Results:
- ONC201 induced cell membrane ballooning and rupture, not typical apoptosis.
- Toxicity was independent of TRAIL receptors and caspases, but linked to AMP-dependent kinase phosphorylation and ATP depletion.
- ONC201 inhibited mitochondrial respiration, causing structural damage, functional impairment, and decreased mitochondrial DNA (mtDNA).
- Cancer cells with fumarate hydratase deficiency or reduced mtDNA showed resistance to ONC201.
Conclusions:
- ONC201 acts as a mitochondria-targeting drug, disrupting mitochondrial function to kill cancer cells.
- Cancer cells dependent on glycolysis and not relying heavily on mitochondrial respiration are resistant to ONC201.
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