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Updated: Mar 7, 2026

Spatial and Temporal Control of Murine Melanoma Initiation from Mutant Melanocyte Stem Cells
Published on: June 7, 2019
Dependence On Glycolysis Sensitizes BRAF-mutated Melanomas For Increased Response To Targeted BRAF Inhibition
Keisha N Hardeman1,2, Chengwei Peng1,2, Bishal B Paudel2,3
1Department of Cancer Biology, Vanderbilt University School of Medicine, 2220 Pierce Avenue, Nashville, TN 37232, USA.
Abstract:
Dysregulated metabolism can broadly affect therapy resistance by influencing compensatory signaling and expanding proliferation. Given many BRAF-mutated melanoma patients experience disease progression with targeted BRAF inhibitors, we hypothesized therapeutic response is related to tumor metabolic phenotype, and that altering tumor metabolism could change therapeutic outcome. We demonstrated the proliferative kinetics of BRAF-mutated melanoma cells treated with the BRAF inhibitor PLX4720 fall along a spectrum of sensitivity, providing a model system to study the interplay of metabolism and drug sensitivity. We discovered an inverse relationship between glucose availability and sensitivity to BRAF inhibition through characterization of metabolic phenotypes using nearly a dozen metabolic parameters in Principle Component Analysis. Subsequently, we generated rho0 variants that lacked functional mitochondrial respiration and increased glycolytic metabolism. The rho0 cell lines exhibited increased sensitivity to PLX4720 compared to the respiration-competent parental lines. Finally, we utilized the FDA-approved antiretroviral drug zalcitabine to suppress mitochondrial respiration and to force glycolysis in our cell line panel, resulting in increased PLX4720 sensitivity via shifts in EC50 and Hill slope metrics. Our data suggest that forcing tumor glycolysis in melanoma using zalcitabine or other similar approaches may be an adjunct to increase the efficacy of targeted BRAF therapy.
Insights
Altering tumor metabolism by increasing glycolysis enhances sensitivity to BRAF inhibitors in melanoma. This metabolic reprogramming may improve targeted therapy outcomes for patients with BRAF-mutated melanoma.
Area of Science:
- Oncology
- Metabolic pathways
- Cancer therapy
Background:
- Dysregulated tumor metabolism contributes to therapy resistance in BRAF-mutated melanoma.
- Targeted BRAF inhibitors often lead to disease progression, necessitating novel therapeutic strategies.
Purpose of the Study:
- To investigate the relationship between tumor metabolic phenotype and sensitivity to BRAF inhibition.
- To determine if altering tumor metabolism can enhance the efficacy of BRAF-targeted therapy.
Main Methods:
- Characterized metabolic phenotypes of BRAF-mutated melanoma cells using multiple metabolic parameters.
- Generated rho0 variants with suppressed mitochondrial respiration and increased glycolysis.
- Assessed sensitivity to BRAF inhibitor PLX4720 in parental and rho0 cell lines.
- Utilized zalcitabine to induce glycolysis and evaluated its impact on PLX4720 sensitivity.
Main Results:
- An inverse relationship was observed between glucose availability and sensitivity to BRAF inhibition.
- Rho0 melanoma cell lines exhibited increased sensitivity to PLX4720.
- Zalcitabine-induced glycolysis enhanced PLX4720 sensitivity, indicated by shifts in EC50 and Hill slope.
Conclusions:
- Forcing tumor glycolysis in melanoma may serve as an adjunct therapy to improve the efficacy of BRAF inhibitors.
- Targeting tumor metabolism represents a promising strategy to overcome resistance to targeted therapies in melanoma.
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