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Screening for Melanoma Modifiers using a Zebrafish Autochthonous Tumor Model
Published on: November 13, 2012
Phenotype characterization of human melanoma cells resistant to dabrafenib
Fabiola Gilda Cordaro1, Anna Lisa De Presbiteris1, Rosa Camerlingo2
1Institute of Genetics and Biophysics (IGB), A. Buzzati-Traverso, CNR, I-80131 Naples, Italy.
Abstract:
In the present study, the phenotype of melanoma cells resistant to dabrafenib (a B-RAF inhibitor) was investigated, to shed more light on melanoma resistance to B-RAF inhibition. Melanoma cells resistant to dabrafenib were generated using 3 different cell lines, A375, 397 and 624.38, all carrying B-RAFV600E, and they were characterized by cytofluorometric analysis, Ion Torrent technology, immunofluorescence and biochemistry. All dabrafenib-resistant cells showed, in addition to a re-activation of MAPK signaling, morphological changes compared to their sensitive counterparts, accompanied by an increase in CD90 (mesenchymal marker) expression and a decrease in E-cadherin (epithelial marker) expression, suggesting an epithelial-to-mesenchymal-like phenotypic transition. However, melanoma cells with TGF-β1-induced epithelial-to-mesenchymal transition (EMT) were more sensitive to dabrafenib treatment compared to the sensitivity noted in the non-TGF‑β1‑induced EMT melanoma cells, suggesting that TGF-β1-induced EMT was not associated with dabrafenib resistance. Although dabrafenib-resistant cells exhibited increased cell motility and E-cadherin/vimentin reorganization, as expected in EMT, all of them showed unvaried E-cadherin mRNA and unchanged Snail protein levels, while Twist1 protein expression was decreased with the exception of A375 dabrafenib-resistant melanoma cells, where it was unaffected. These findings suggest a distinct active EMT-like process adopted by melanoma cells under drug exposure. Furthermore, dabrafenib-resistant cells exhibited stem cell-like features, with Oct4 translocation from the cytoplasm to peri-nuclear sites and nuclei, and increased CD20 expression. In conclusion, our data, in addition to confirming that resistance to dabrafenib is dependent on re-activation of MAPK signaling, suggest that this resistance is linked to a distinct active EMT-like process as well as stem-cell features adopted by melanoma cells.
Insights
Melanoma cells resistant to dabrafenib exhibit an epithelial-to-mesenchymal-like transition and stem cell features. This resistance is linked to MAPK signaling reactivation and a distinct EMT-like process, not TGF-β1-induced EMT.
Area of Science:
- Oncology
- Molecular Biology
- Cell Biology
Background:
- Melanoma resistance to targeted therapies like dabrafenib (a B-RAF inhibitor) remains a significant clinical challenge.
- Understanding the mechanisms underlying this resistance is crucial for developing more effective treatment strategies.
Purpose of the Study:
- To investigate the phenotypic changes in melanoma cells that confer resistance to dabrafenib.
- To elucidate the role of epithelial-to-mesenchymal transition (EMT) and stem cell-like features in acquired dabrafenib resistance.
Main Methods:
- Generation of dabrafenib-resistant melanoma cell lines (A375, 397, 624.38) harboring B-RAFV600E.
- Characterization using cytofluorometric analysis, Ion Torrent technology, immunofluorescence, and biochemistry.
- Assessment of MAPK signaling, EMT markers (CD90, E-cadherin, vimentin, Snail, Twist1), and stem cell markers (Oct4, CD20).
Main Results:
- Dabrafenib-resistant cells displayed MAPK signaling reactivation and morphological changes consistent with an EMT-like phenotype, including increased CD90 and decreased E-cadherin.
- TGF-β1-induced EMT did not correlate with dabrafenib resistance; resistant cells showed distinct EMT-like features without altered E-cadherin mRNA or Snail levels.
- Resistant cells exhibited increased motility, stem cell-like properties (Oct4 translocation, increased CD20), and decreased Twist1 expression (except in A375 cells).
Conclusions:
- Dabrafenib resistance in melanoma is dependent on MAPK signaling reactivation.
- A distinct EMT-like process and acquisition of stem cell-like features contribute to acquired resistance to dabrafenib.
- These findings highlight potential therapeutic targets for overcoming resistance in melanoma treatment.

