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Updated: Aug 19, 2025

A 3D Organotypic Melanoma Spheroid Skin Model
Published on: May 18, 2018
PI3K/AKT signaling allows for MAPK/ERK pathway independency mediating dedifferentiation-driven treatment resistance
Eyleen Corrales1,2,3, Ella Levit-Zerdoun1,2,4,5, Patrick Metzger1,2
1Institute of Molecular Medicine and Cell Research (IMMZ), University of Freiburg, Stefan-Meier-Str. 17, 79104, Freiburg, Germany.
Background:
Current therapeutic management of advanced melanoma patients largely depends on their BRAF mutation status. However, the vast heterogeneity of the tumors hampers the success of therapies targeting the MAPK/ERK pathway alone. Dissecting this heterogeneity will contribute to identifying key players in the oncogenic progression to tailor more effective therapies.
Methods:
We performed a comprehensive molecular and phenotypic characterization of a panel of patient-derived BRAFV600E-positive melanoma cell lines. Transcriptional profiling was used to identify groups of coregulated genes whose expression relates to an increased migratory potential and a higher resistance.
Results:
A decrease in sensitivity to MAPK/ERK pathway inhibition with vemurafenib or trametinib corresponded with an increasing quiescence and migratory properties of the cells. This was accompanied by the loss of transcriptional signatures of melanocytic differentiation, and the gain of stem cell features that conferred highly-resistant/mesenchymal-like cells with increased xenobiotic efflux capacity. Nevertheless, targeting of the implicated ABC transporters did not improve the response to vemurafenib, indicating that incomplete BRAF inhibition due to reduced drug uptake is not a main driver of resistance. Rather, indifference to MAPK/ERK pathway inhibition arose from the activation of compensatory signaling cascades. The PI3K/AKT pathway in particular showed a higher activity in mesenchymal-like cells, conferring a lower dependency on MAPK/ERK signaling and supporting stem-like properties that could be reverted by dual PI3K/mTOR inhibition with dactolisib.
Conclusions:
In case of MAPK/ERK independency, therapeutic focus may be shifted to the PI3K/AKT pathway to overcome late-stage resistance in melanoma tumors that have acquired a mesenchymal phenotype. Video Abstract.
Insights
Melanoma treatment resistance can arise from cells becoming migratory and stem-like, independent of BRAF mutations. Targeting the PI3K/AKT pathway may overcome this resistance in advanced melanoma.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- Advanced melanoma treatment relies on BRAF mutation status, but tumor heterogeneity limits MAPK/ERK pathway inhibitor efficacy.
- Understanding melanoma heterogeneity is crucial for developing more effective targeted therapies.
Discussion:
- BRAF-mutant melanoma cells develop resistance to MAPK/ERK inhibitors (vemurafenib, trametinib) by adopting quiescent, migratory, and stem-like phenotypes.
- This mesenchymal transition involves loss of melanocytic differentiation and gain of stem cell features, including xenobiotic efflux, but ABC transporter targeting did not restore sensitivity.
- Resistance is driven by compensatory signaling cascades, notably PI3K/AKT pathway activation, reducing MAPK/ERK dependency.
Key Insights:
- Mesenchymal-like melanoma cells exhibit reduced sensitivity to MAPK/ERK pathway inhibition.
- PI3K/AKT pathway activation confers resistance to MAPK/ERK inhibitors and promotes stem-like properties.
- Dual PI3K/mTOR inhibition with dactolisib can revert these stem-like properties.
Outlook:
- Therapeutic strategies for MAPK/ERK-independent melanoma should target the PI3K/AKT pathway.
- Overcoming late-stage resistance in mesenchymal melanoma may involve targeting compensatory signaling cascades.
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