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Updated: Sep 18, 2025

A Robust Discovery Platform for the Identification of Novel Mediators of Melanoma Metastasis
Published on: March 8, 2022
Inter-Relationship Between Melanoma Vemurafenib Tolerance Thresholds and Metabolic Pathway Choice
Pratima Nangia-Makker1,2, Madison Ahrens1, Neeraja Purandare3
1Karmanos Cancer Institute, 421 E. Canfield Avenue, Detroit, MI 48201, USA.
Abstract:
Melanomas quickly acquire resistance to vemurafenib, an important therapeutic for BRAFV600 mutant melanomas. Although combating vemurafenib resistance (VemR) to counter mitochondrial metabolic shift using mitochondria-targeting therapies has promise, no studies have analyzed the relationship between vemurafenib tolerance levels and metabolic plasticity. To determine how vemurafenib endurance levels drive metabolic plasticity, we developed isogenic BRAFV600E VemR melanoma models with variant vemurafenib tolerances and performed an integrative analysis of metabolomic and transcriptome alterations using metabolome, Mitoplate-S1, Seahorse, and RNA-seq assays. Regardless of drug tolerance differences, both VemR models display resistance to MEK inhibitor and sensitivity to Wnt/β-catenin inhibitor, ICG-001. β-catenin, MITF, and ABCB5 levels are upregulated in both VemR models, and ICG-001 treatment restored vemurafenib sensitivity with reductions in MITF, ABCB5, phospho-ERK1/2, and mitochondrial respiration. Whereas β-catenin signaling induced TCA cycle and OXPHOS in highly drug tolerant A2058VemR cells, it activated pentose phosphate pathway in M14VemR cells with low vemurafenib tolerance, both of which are inhibited by ICG-001. These data implicate an important role for Wnt/β-catenin signaling in VemR-induced metabolic plasticity. Our data demonstrate that drug tolerance thresholds play a direct role in driving metabolic shifts towards specific routes, thus providing a new basis for delineating VemR melanomas for metabolism-targeting therapies.
Insights
Melanoma cells develop resistance to vemurafenib by altering their metabolism. Drug tolerance levels dictate specific metabolic pathways, offering new targets for melanoma treatment.
Area of Science:
- Oncology
- Metabolic Research
- Drug Resistance
Background:
- Melanoma rapidly develops resistance to vemurafenib, a key therapy for BRAFV600 mutant melanomas.
- Targeting metabolic shifts in resistant melanoma is promising, but the link between drug tolerance and metabolic plasticity is unexplored.
Purpose of the Study:
- To investigate how vemurafenib tolerance levels influence metabolic plasticity in BRAFV600E mutant melanoma.
- To identify distinct metabolic profiles associated with varying vemurafenib resistance levels.
Main Methods:
- Development of isogenic BRAFV600E vemurafenib-resistant (VemR) melanoma models with differential drug tolerances.
- Integrative analysis of metabolomic and transcriptomic data using metabolome, Mitoplate-S1, Seahorse, and RNA-seq.
Main Results:
- Both VemR models showed cross-resistance to MEK inhibitors but sensitivity to Wnt/β-catenin inhibitor ICG-001.
- ICG-001 treatment reversed vemurafenib sensitivity by reducing MITF, ABCB5, phospho-ERK1/2, and mitochondrial respiration.
- β-catenin signaling activated the TCA cycle/OXPHOS in high-tolerance cells and the pentose phosphate pathway in low-tolerance cells, both inhibited by ICG-001.
Conclusions:
- Wnt/β-catenin signaling plays a crucial role in vemurafenib resistance-induced metabolic plasticity.
- Drug tolerance thresholds directly drive specific metabolic pathway shifts in resistant melanoma, enabling targeted therapy selection.
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