ONC201-Induced Mitochondrial Dysfunction, Senescence-like Phenotype, and Sensitization of Cultured BT474 Human Breast

Artem Mishukov1,2, Irina Odinokova1, Ekaterina Mndlyan1

  • 1Institute of Theoretical & Experimental Biophysics, Russian Academy of Sciences, Pushchino 142290, Russia.

Insights

ONC201 anticancer drug induces reversible growth arrest with short exposure but irreversible senescence with prolonged exposure in breast cancer cells. Combining ONC201 with Natural Killer (NK) cells shows synergistic anti-cancer effects.

Area of Science:

  • Mitochondrial biology
  • Cancer therapy
  • Immunology

Background:

  • ONC201 is an anticancer drug targeting mitochondrial ClpP.
  • Breast ductal carcinoma (BT474) cells are a relevant model for evaluating drug efficacy.
  • Natural Killer (NK) cells are emerging as a key component in cellular anti-cancer therapies.

Purpose of the Study:

  • To evaluate the effects of ONC201 on BT474 breast cancer cells.
  • To investigate the impact of ONC201 exposure duration on cellular response.
  • To assess the combined efficacy of ONC201 and NK cells in cancer treatment.

Main Methods:

  • Treatment of BT474 cells with ONC201 at 10 µM for varying durations (<48h and >48h).
  • Analysis of integrated stress response markers (CHOP, ATF4, GDF-15), mtDNA nucleoids, cell cycle, proliferation, and apoptosis.
  • Evaluation of BT474 cell sensitivity to peripheral blood-derived NK cell-mediated killing post-ONC201 exposure.

Main Results:

  • Short-term ONC201 exposure (<48h) induced reversible growth arrest and transient integrated stress response.
  • Prolonged ONC201 exposure (>48h) led to irreversible mtDNA loss, persistent stress response, cell cycle arrest, and suppressed apoptosis.
  • ONC201-treated BT474 cells showed enhanced sensitivity to NK cell-mediated killing, indicating a synergistic anti-cancer effect.

Conclusions:

  • The effects of ONC201 are dose- and duration-dependent, with long-term exposure inducing a senescent phenotype.
  • ONC201 enhances the efficacy of NK cell-based immunotherapies, suggesting its potential in combination cancer treatments.

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