TR-57 Treatment of SUM159 Cells Induces Mitochondrial Dysfunction without Affecting Membrane Potential

Artem Mishukov1, Ekaterina Mndlyan2, Alexey V Berezhnov3

  • 1Center of Theoretical Problems of Physico-Chemical Pharmacology, Russian Academy of Sciences, 109029 Moscow, Russia.

Insights

Imipridone derivative TR-57 causes mitochondrial dysfunction in breast cancer cells by inhibiting respiratory complexes. Despite this, FOF1-ATPase activity maintains mitochondrial polarization by hydrolyzing cytoplasmic ATP.

Area of Science:

  • Biochemistry
  • Cell Biology
  • Cancer Research

Background:

  • Imipridones are a novel class of antitumor agents targeting ClpXP, a mitochondrial protease.
  • Understanding the precise mechanism of imipridone action is crucial for developing effective cancer therapies.

Purpose of the Study:

  • To investigate the molecular mechanisms underlying the action of imipridone derivative TR-57 in SUM159 human breast cancer cells.
  • To elucidate the effects of TR-57 on mitochondrial function, oxidative phosphorylation, and ATP hydrolysis.

Main Methods:

  • Treatment of SUM159 cells with TR-57.
  • Analysis of mitochondrial morphology, mtDNA content, and protein expression of respiratory chain complexes and FOF1-ATPase.
  • Assessment of mitochondrial membrane potential and ATP transfer proteins.

Main Results:

  • TR-57 induced mitochondrial fragmentation, mtDNA degradation, and significant inhibition of Complexes I-IV, leading to complete oxidative phosphorylation blockade.
  • FOF1-ATPase subunit content decreased, accompanied by the disappearance of its inhibitor ATPIF1.
  • Despite respiratory chain inhibition, TR-57-treated cells maintained mitochondrial polarization, supported by FOF1-ATPase-mediated cytoplasmic ATP hydrolysis.

Conclusions:

  • TR-57 effectively disrupts mitochondrial respiratory function in breast cancer cells.
  • The FOF1-ATPase plays a critical role in maintaining mitochondrial integrity under TR-57 treatment through ATP hydrolysis.