Capsaicin exerts therapeutic effects by targeting tNOX-SIRT1 axis and augmenting ROS-dependent autophagy in melanoma
Atikul Islam1, Pei-Fang Hsieh1,2, Pei-Fen Liu3
1Institute of Biomedical Sciences, National Chung Hsing University Taichung 40227, Taiwan.
Abstract:
Although considered a sporadic type of skin cancer, malignant melanoma has regularly increased internationally and is a major cause of cancer-associated death worldwide. The treatment options for malignant melanoma are very limited. Accumulating data suggest that the natural compound, capsaicin, exhibits preferential anticancer properties to act as a nutraceutical agent. Here, we explored the underlying molecular events involved in the inhibitory effect of capsaicin on melanoma growth. The cellular thermal shift assay (CETSA), isothermal dose-response fingerprint curves (ITDRFCETSA), and CETSA-pulse proteolysis were utilized to confirm the direct binding of capsaicin with the tumor-associated NADH oxidase, tNOX (ENOX2) in melanoma cells. We also assessed the cellular impact of capsaicin-targeting of tNOX on A375 cells by flow cytometry and protein analysis. The essential role of tNOX in tumor- and melanoma-growth limiting abilities of capsaicin was evaluated in C57BL/6 mice. Our data show that capsaicin directly engaged with cellular tNOX to inhibit its enzymatic activity and enhance protein degradation capacity. The inhibition of tNOX by capsaicin was accompanied by the attenuation of SIRT1, a NAD+-dependent deacetylase. The suppression of tNOX and SIRT1 then enhanced ULK1 acetylation and induced ROS-dependent autophagy in melanoma cells. Capsaicin treatment of mice implanted with melanoma cancer cells suppressed tumor growth by down-regulating tNOX and SIRT1, which was also seen in an in vivo xenograft study with tNOX-depleted melanoma cells. Taken together, our findings suggest that tNOX expression is important for the growth of melanoma cancer cells both in vitro and in vivo, and that inhibition of the tNOX-SIRT1 axis contributes to inducting ROS-dependent autophagy in melanoma cells.
Insights
Capsaicin, a natural compound, directly inhibits tumor-associated NADH oxidase (tNOX) and SIRT1, suppressing melanoma growth. This action induces ROS-dependent autophagy, offering a potential nutraceutical approach for melanoma treatment.
Area of Science:
- Oncology
- Molecular Biology
- Natural Products Chemistry
Background:
- Malignant melanoma incidence and mortality are increasing globally, with limited treatment options.
- Capsaicin, a natural compound, shows potential anticancer properties as a nutraceutical agent.
- Understanding the molecular mechanisms of capsaicin's anti-melanoma effects is crucial.
Purpose of the Study:
- To investigate the molecular mechanisms underlying capsaicin's inhibitory effects on melanoma cell growth.
- To confirm the direct interaction between capsaicin and tumor-associated NADH oxidase (tNOX).
- To evaluate the role of tNOX inhibition in capsaicin's anti-melanoma activity.
Main Methods:
- Cellular thermal shift assay (CETSA), isothermal dose-response fingerprint curves (ITDRFCETSA), and CETSA-pulse proteolysis were used to confirm capsaicin-tNOX binding.
- Flow cytometry and protein analysis assessed the cellular impact of capsaicin on tNOX in A375 melanoma cells.
- In vivo studies in C57BL/6 mice evaluated the role of tNOX in capsaicin's tumor-limiting effects.
Main Results:
- Capsaicin directly binds to tNOX, inhibiting its enzymatic activity and promoting protein degradation.
- Capsaicin treatment led to decreased levels of SIRT1, enhanced ULK1 acetylation, and induced ROS-dependent autophagy.
- In vivo, capsaicin suppressed melanoma tumor growth by down-regulating tNOX and SIRT1.
Conclusions:
- tNOX is essential for melanoma cell growth both in vitro and in vivo.
- Inhibition of the tNOX-SIRT1 pathway by capsaicin induces ROS-dependent autophagy in melanoma cells.
- Capsaicin's direct engagement with tNOX presents a promising nutraceutical strategy for melanoma treatment.
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