γ-Tocotrienol inhibits oxidative phosphorylation and triggers apoptosis by inhibiting mitochondrial complex I subunit

HaiXia Wang1, JunTao Luo2, WenXia Tian3

  • 1Department of Clinical Nutrition, International Peace Maternity and Child Health Hospital, School of Medicine, Shanghai Jiao Tong University, Shanghai, 200030, China; Shanghai Key Laboratory of Embryo Original Diseases, Shanghai, 200030, China.

Toxicology
|February 16, 2019
PubMed

Insights

Tocotrienols (T3s), a vitamin E subgroup, disrupt cancer cell energy by inhibiting mitochondrial respiration and ATP production. This study reveals γ-T3 targets key mitochondrial proteins, potentially offering a new cancer treatment strategy.

Area of Science:

  • Biochemistry
  • Cell Biology
  • Oncology

Background:

  • Tocotrienols (T3s), a vitamin E subgroup, are known to inhibit cancer cell growth via multiple cellular pathways.
  • The precise role of T3s in regulating cellular bioenergetics, particularly mitochondrial function, remains incompletely understood.

Purpose of the Study:

  • To investigate the effects of γ-tocotrienol (γ-T3) on cellular bioenergetic processes in cancer cells.
  • To elucidate the mechanisms by which γ-T3 influences mitochondrial respiration, reactive oxygen species (ROS) production, and ATP levels.

Main Methods:

  • Utilized western blotting and RT-PCR to assess the expression of mitochondrial electron transport chain (ETC) proteins.
  • Investigated the impact of γ-T3 on oxidative phosphorylation (OXPHOS) and cellular ATP generation.
  • Quantified ROS production in response to γ-T3 treatment.

Main Results:

  • γ-T3 directly interacts with mitochondrial complex I (NDUFB8) and complex II (SDHB) subunits, inhibiting OXPHOS and increasing ROS production.
  • While γ-T3 upregulates glycolysis, it paradoxically decreases cellular ATP levels.
  • γ-T3 specifically downregulates NDUFB8 and SDHB protein and mRNA levels, with minimal impact on complexes III, IV, and V.

Conclusions:

  • Inhibition of NDUFB8 and SDHB by γ-T3 leads to ROS overproduction and ATP depletion, which may induce cancer cell apoptosis.
  • Mitochondrial respiration emerges as a potential therapeutic target for γ-T3-based anticancer treatments.

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