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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.
Abstract:
Tocotrienols (T3s) are a subgroup of vitamin E and they have been widely tested to inhibit cell growth in various tumor types. Previous studies have shown that T3s inhibit cancer cell growth by targeting multiple signaling transduction and cellular processes. However, the role of T3s in the regulation of cellular bioenergetic processes remains unclear. In this study, we found that γ-T3 interacts with mitochondrial electron transfer chain NDUFB8 (a subunit of complex I) and SDHB (a subunit of complex II) and inhibits oxidative phosphorylation (OXPHOS), and triggers the production of reactive oxygen species (ROS). In addition, we observed that γ-T3 upregulates the glycolytic capacity in cells, but it did not compensate for cellular ATP generation and decreased the ATP levels in cells. Furthermore, we performed western blots and RT-PCR to measure the mRNA and protein levels of mitochondrial electron transfer chain (ETC) proteins and complex V (ATP synthase), where the results indicated that γ-T3 specifically inhibited the levels of NDUFB8 and SDHB, whereas it had little effect on UQCRC2 (a subunit of complex III), COX4I1 (a subunit of complex IV), and ATP5F1A (a subunit of complex V). The inhibition of NDUFB8 and SDHB by γ-T3 led to the overproduction of ROS and the depletion of ATP, which may be responsible for inducing apoptosis in cancer cells. Our results suggest that mitochondrial respiration may be an effective target for anticancer treatments based on γ-T3.
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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