Rapanone, a naturally occurring benzoquinone, inhibits mitochondrial respiration and induces HepG2 cell death
Gilberto L Pardo Andreu1, Felipe Zuccolotto Dos Reis2, Michael González-Durruthy3
1Center for Research and Biological Evaluations, Institute of Pharmaceutical and Foods Sciences, University of Havana (UH), Av. 23 # 2317 b/ 214 and 222, La Coronela, La Lisa, PO 13600 Havana, Cuba.
Abstract:
Rapanone is a natural occurring benzoquinone with several biological effects including unclear cytotoxic mechanisms. Here we addressed if mitochondria are involved in the cytotoxicity of rapanone towards cancer cells by employing hepatic carcinoma (HepG2) cells and isolated rat liver mitochondria. In the HepG2, rapanone (20-40 μM) induced a concentration-dependent mitochondrial membrane potential dissipation, ATP depletion, hydrogen peroxide generation and, phosphatidyl serine externalization; the latter being indicative of apoptosis induction. Rapanone toxicity towards primary rats hepatocytes (IC50 = 35.58 ± 1.50 μM) was lower than that found for HepG2 cells (IC50 = 27.89 ± 0.75 μM). Loading of isolated mitochondria with rapanone (5-20 μM) caused a concentration-dependent inhibition of phosphorylating and uncoupled respirations supported by complex I (glutamate and malate) or the complex II (succinate) substrates, being the latter eliminated by complex IV substrate (TMPD/ascorbate). Rapanone also dissipated mitochondrial membrane potential, depleted ATP content, released Ca2+ from Ca2+-loaded mitochondria, increased ROS generation, cytochrome c release and membrane fluidity. Further analysis demonstrated that rapanone prevented the cytochrome c reduction in the presence of decylbenzilquinol, identifying complex III as the site of its inhibitory action. Computational docking results of rapanone to cytochrome bc1 (Cyt bc1) complex from the human sources found spontaneous thermodynamic processes for the quinone-Qo and Qi binding interactions, supporting the experimental in vitro assays. Collectively, these observations suggest that rapanone impairs mitochondrial respiration by inhibiting electron transport chain at Complex III and promotes mitochondrial dysfunction. This property is potentially involved in rapanone toxicity on cancer cells.
Insights
Rapanone, a natural benzoquinone, induces cancer cell death by disrupting mitochondrial function. It inhibits the electron transport chain at Complex III, leading to apoptosis and potential therapeutic applications.
Area of Science:
- Biochemistry
- Cell Biology
- Pharmacology
Background:
- Rapanone is a natural benzoquinone with known biological effects but unclear cytotoxic mechanisms.
- Mitochondrial dysfunction is implicated in various diseases, including cancer.
Purpose of the Study:
- To investigate the role of mitochondria in rapanone-induced cytotoxicity in cancer cells.
- To elucidate the specific mechanisms by which rapanone affects mitochondrial function.
Main Methods:
- Experiments were conducted using hepatic carcinoma (HepG2) cells and isolated rat liver mitochondria.
- Assays included measurement of mitochondrial membrane potential, ATP levels, hydrogen peroxide generation, phosphatidylserine externalization, and cellular respiration.
- Computational docking was used to study rapanone interactions with the cytochrome bc1 complex.
Main Results:
- Rapanone induced concentration-dependent mitochondrial membrane potential dissipation, ATP depletion, and apoptosis in HepG2 cells.
- Rapanone inhibited mitochondrial respiration at Complex III of the electron transport chain.
- Rapanone increased reactive oxygen species (ROS) generation, cytochrome c release, and altered mitochondrial membrane fluidity.
Conclusions:
- Rapanone impairs mitochondrial respiration by inhibiting the electron transport chain at Complex III.
- Rapanone promotes mitochondrial dysfunction, which is likely involved in its cytotoxic effects on cancer cells.
- These findings suggest rapanone's potential as an anticancer agent targeting mitochondrial pathways.
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