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Updated: Jan 9, 2026

Screening for Melanoma Modifiers using a Zebrafish Autochthonous Tumor Model
Published on: November 13, 2012
Exploiting metabolic adaptations to overcome dabrafenib treatment resistance in melanoma cells
Silvia Eller1, Susanne Ebner1, Carmen Haselrieder1
1Daniel Swarovski Research Laboratory, Department of Visceral, Transplant and Thoracic Surgery, Medical University of Innsbruck, Austria.
Abstract:
The emergence of resistance to mutant BRAF-specific inhibitors (BRAFi) requires novel strategies for melanoma treatment. The progression of these tumors involves metabolic adaptations, which also affect the cellular redox status. Previous studies have linked RAF kinase signaling, a key component of the MAPK/ERK pathway involved in cell division and survival, to the suppression of mitochondrial reactive oxygen species (ROS) production, resulting in protection against cell death. In BRAF-transformed cells, we have identified impaired JNK1/2-dependent activation of the mitochondrial prooxidant protein p66Shc as a potential cause. In the present study, we dissected signaling and mitochondrial alterations that characterize the transition from BRAFi responsiveness to resistance in A375 melanoma cells. Insensitivity to BRAFi dabrafenib exposure was associated with reactivation of ERK1/2 phosphorylation, increased JNK1/2 kinase activity, p66ShcS36 phosphorylation, and elevated ROS production. Utilizing high-resolution respirometry (HRR) and transmission electron microscopy (TEM), we show that dabrafenib-resistant cells displayed mitochondrial damage, compensated by increased respiration, leading to high ROS levels. Moreover, dabrafenib-resistant cells (A375D) have more efficient antioxidant systems, which may explain why despite ongoing cell death, net cell growth was observed. Treatment of both parental and resistant cells with phenethyl isothiocyanate (PEITC) increased ROS production but caused substantial cell death only in A375D melanoma cells. This PEITC effect could be demonstrated in two further dabrafenib-resistant cell lines, WM164D and 451LuP. These results suggest that the altered redox status is linked to compromised mitochondria and is associated with the development of BRAFi resistance, rendering cells exquisitely sensitive to the actions of selective ROS-inducing therapeutics.
Insights
BRAF inhibitor resistance in melanoma involves metabolic shifts and impaired p66Shc signaling, leading to mitochondrial damage and increased reactive oxygen species (ROS). Resistant cells are sensitive to ROS-inducing drugs like PEITC.
Area of Science:
- Oncology
- Cell Biology
- Biochemistry
Background:
- Melanoma treatment resistance to BRAF inhibitors (BRAFi) necessitates new strategies.
- Tumor progression involves metabolic changes impacting cellular redox status.
- RAF kinase signaling normally suppresses mitochondrial reactive oxygen species (ROS) production.
Purpose of the Study:
- To investigate signaling and mitochondrial alterations during the transition to BRAFi resistance in melanoma.
- To identify the role of JNK1/2 and p66Shc in BRAFi resistance.
- To evaluate therapeutic strategies targeting altered redox status in resistant melanoma.
Main Methods:
- Utilized A375 melanoma cells and dabrafenib (BRAFi).
- Assessed signaling pathways (ERK, JNK) and p66Shc phosphorylation.
- Employed high-resolution respirometry (HRR) and transmission electron microscopy (TEM).
- Treated cells with phenethyl isothiocyanate (PEITC).
Main Results:
- BRAFi resistance correlated with ERK/JNK reactivation, p66Shc phosphorylation, and elevated ROS.
- Resistant cells showed mitochondrial damage compensated by increased respiration, leading to high ROS.
- Resistant cells possessed enhanced antioxidant systems, contributing to net cell growth despite cell death.
- PEITC induced cell death specifically in dabrafenib-resistant melanoma cells.
Conclusions:
- Altered redox status and compromised mitochondria are linked to BRAFi resistance.
- Targeting ROS production with agents like PEITC shows promise for treating resistant melanoma.
- Understanding these mechanisms can guide the development of novel therapeutic approaches.
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