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Minnelide/Triptolide Impairs Mitochondrial Function by Regulating SIRT3 in P53-Dependent Manner in Non-Small Cell
Ajay Kumar1, Catherine Corey2, Iain Scott2
1Department of Cardiothoracic Surgery, University of Pittsburgh, Pittsburgh, Pennsylvania, United States of America.
Abstract:
Minnelide/Triptolide (TL) has recently emerged as a potent anticancer drug in non-small cell lung cancer (NSCLC). However, the precise mechanism of its action remains ambiguous. In this study, we elucidated the molecular basis for TL-induced cell death in context to p53 status. Cell death was attributed to dysfunction of mitochondrial bioenergetics in p53-deficient cells, which was characterized by decreased mitochondrial respiration, steady-state ATP level and membrane potential, but augmented reactive oxygen species (ROS). Increased ROS production resulted in oxidative stress in TL-treated cells. This was exhibited by elevated nuclear levels of a redox-sensitive transcriptional factor, NF-E2-related factor-2 (NRF2), along with diminished cellular glutathione (GSH) content. We further demonstrated that in the absence of p53, TL blunted the expression of mitochondrial SIRT3 triggering increased acetylation of NDUAF9 and succinate dehydrogenase, components of complexes I and II of the electron transport chain (ETC). TL-mediated hyperacetylation of complexes I and II proteins and these complexes displayed decreased enzymatic activities. We also provide the evidence that P53 regulate steady-state level of SIRT3 through Proteasome-Pathway. Finally, forced overexpression of Sirt3, but not deacetylase-deficient mutant of Sirt3 (H243Y), restored the deleterious effect of TL on p53-deficient cells by rescuing mitochondrial bioenergetics. On contrary, Sirt3 deficiency in the background of wild-type p53 triggered TL-induced mitochondrial impairment that echoed TL effect in p53-deficeint cells. These findings illustrate a novel mechanism by which TL exerts its potent effects on mitochondrial function and ultimately the viability of NSCLC tumor.
Insights
Triptolide (TL) induces non-small cell lung cancer cell death by impairing mitochondrial function, particularly in p53-deficient cells. This occurs via reduced SIRT3 expression, leading to oxidative stress and electron transport chain dysfunction.
Area of Science:
- Biochemistry
- Molecular Biology
- Oncology
Background:
- Triptolide (TL) shows promise as an anticancer agent for non-small cell lung cancer (NSCLC).
- The exact mechanism of TL's action, especially concerning p53's role, requires further elucidation.
Purpose of the Study:
- To investigate the molecular mechanisms of TL-induced cell death in NSCLC cells.
- To clarify the role of p53 status in mediating TL's effects on mitochondrial bioenergetics and cell viability.
Main Methods:
- Assessed mitochondrial respiration, ATP levels, membrane potential, and reactive oxygen species (ROS) production.
- Examined the expression and activity of mitochondrial deacetylase SIRT3 and its downstream targets.
- Utilized p53-deficient and wild-type NSCLC cell models, including overexpression and knockdown studies.
Main Results:
- TL induced cell death in p53-deficient NSCLC cells by disrupting mitochondrial bioenergetics, decreasing respiration and ATP, and increasing ROS.
- TL reduced SIRT3 expression, leading to hyperacetylation and impaired function of electron transport chain complexes I and II.
- SIRT3 overexpression rescued TL-induced mitochondrial dysfunction in p53-deficient cells, while SIRT3 deficiency in p53-wild-type cells mimicked TL's effects.
Conclusions:
- TL exerts its anticancer effects in NSCLC by targeting mitochondrial function in a p53-dependent manner.
- SIRT3 is a key mediator of TL's mitochondrial toxicity, linking p53 status to cellular energy metabolism and oxidative stress.
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