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Updated: Feb 5, 2026

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Published on: July 17, 2019
Hyperactivation of MAPK Signaling Is Deleterious to RAS/RAF-mutant Melanoma
Grace P Leung1, Tianshu Feng1, Frederic D Sigoillot2
1Oncology, Novartis Institutes for BioMedical Research, Cambridge, Massachusetts.
Abstract:
The most frequent genetic alterations in melanoma are gain-of-function (GOF) mutations in BRAF, which result in RAF-MEK-ERK signaling pathway addiction. Despite therapeutic success of RAF and MEK inhibitors in treating BRAFV600-mutant tumors, a major challenge is the inevitable emergence of drug resistance, which often involves reactivation of the MAPK pathway. Interestingly, resistant tumors are often sensitive to drug withdrawal, suggesting that hyperactivation of the MAPK pathway is not tolerated. To further characterize this phenomenon, isogenic models of inducible MAPK hyperactivation in BRAFV600E melanoma cells were generated by overexpression of ERK2. Using this model system, supraphysiologic levels of MAPK signaling led to cell death, which was reversed by MAPK inhibition. Furthermore, complete tumor regression was observed in an ERK2-overexpressing xenograft model. To identify mediators of MAPK hyperactivation-induced cell death, a large-scale pooled shRNA screen was conducted, which revealed that only shRNAs against BRAF and MAP2K1 rescued loss of cell viability. This suggested that no single downstream ERK2 effector was required, consistent with pleiotropic effects on multiple cellular stress pathways. Intriguingly, the detrimental effect of MAPK hyperactivation could be partially attributed to secreted factors, and more than 100 differentially secreted proteins were identified. The effect of ERK2 overexpression was highly context dependent, as RAS/RAF mutant but not RAS/RAF wild-type melanoma were sensitive to this perturbation. IMPLICATIONS: This vulnerability to MAPK hyperactivation raises the possibility of novel therapeutic approaches for RAS/RAF-mutant cancers.
Insights
Melanoma cells with hyperactivated MAPK signaling, driven by BRAF mutations, undergo cell death. This vulnerability in RAS/RAF-mutant cancers suggests new therapeutic strategies targeting MAPK pathway hyperactivation.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genetics
Background:
- Gain-of-function BRAF mutations are common in melanoma, leading to dependence on the RAF-MEK-ERK signaling pathway.
- While RAF and MEK inhibitors are effective, drug resistance frequently arises due to MAPK pathway reactivation.
Purpose of the Study:
- To investigate the consequences of MAPK pathway hyperactivation in melanoma.
- To identify mechanisms and mediators involved in MAPK hyperactivation-induced cell death.
Main Methods:
- Generated isogenic models of inducible MAPK hyperactivation via ERK2 overexpression in BRAFV600E melanoma cells.
- Conducted a pooled shRNA screen to identify genes mediating cell death.
- Analyzed secreted proteins in response to MAPK hyperactivation.
Main Results:
- Supraphysiologic MAPK signaling induced cell death, reversed by MAPK inhibition.
- ERK2 overexpression led to complete tumor regression in a xenograft model.
- shRNA screening identified BRAF and MAP2K1 as essential for viability, indicating pleiotropic effects.
- Over 100 differentially secreted proteins were identified.
- Sensitivity to MAPK hyperactivation was context-dependent, observed in RAS/RAF-mutant but not wild-type melanoma.
Conclusions:
- MAPK pathway hyperactivation triggers cell death in specific melanoma contexts.
- This vulnerability presents a potential therapeutic target for RAS/RAF-mutant cancers.
- The findings suggest complex downstream effects and secreted factors mediate the response to MAPK hyperactivation.
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