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Updated: May 7, 2026

Characterize Disease-related Mutants of RAF Family Kinases by Using a Set of Practical and Feasible Methods
Published on: July 17, 2019
COT drives resistance to RAF inhibition through MAP kinase pathway reactivation
Cory M Johannessen1, Jesse S Boehm, So Young Kim
1Broad Institute of Harvard and Massachusetts Institute of Technology, 7 Cambridge Center, Cambridge, Massachusetts 02142, USA.
Abstract:
Oncogenic mutations in the serine/threonine kinase B-RAF (also known as BRAF) are found in 50-70% of malignant melanomas. Pre-clinical studies have demonstrated that the B-RAF(V600E) mutation predicts a dependency on the mitogen-activated protein kinase (MAPK) signalling cascade in melanoma-an observation that has been validated by the success of RAF and MEK inhibitors in clinical trials. However, clinical responses to targeted anticancer therapeutics are frequently confounded by de novo or acquired resistance. Identification of resistance mechanisms in a manner that elucidates alternative 'druggable' targets may inform effective long-term treatment strategies. Here we expressed ∼600 kinase and kinase-related open reading frames (ORFs) in parallel to interrogate resistance to a selective RAF kinase inhibitor. We identified MAP3K8 (the gene encoding COT/Tpl2) as a MAPK pathway agonist that drives resistance to RAF inhibition in B-RAF(V600E) cell lines. COT activates ERK primarily through MEK-dependent mechanisms that do not require RAF signalling. Moreover, COT expression is associated with de novo resistance in B-RAF(V600E) cultured cell lines and acquired resistance in melanoma cells and tissue obtained from relapsing patients following treatment with MEK or RAF inhibitors. We further identify combinatorial MAPK pathway inhibition or targeting of COT kinase activity as possible therapeutic strategies for reducing MAPK pathway activation in this setting. Together, these results provide new insights into resistance mechanisms involving the MAPK pathway and articulate an integrative approach through which high-throughput functional screens may inform the development of novel therapeutic strategies.
Insights
Melanoma resistance to RAF inhibitors can be overcome by targeting MAP3K8 (COT/Tpl2). This kinase activates the MAPK pathway independently of RAF, offering new therapeutic strategies for BRAF-mutant melanoma patients.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- BRAF mutations drive 50-70% of melanomas, creating a dependency on the MAPK pathway.
- RAF and MEK inhibitors show clinical success but are limited by resistance.
- Identifying resistance mechanisms is crucial for developing durable treatment strategies.
Purpose of the Study:
- To identify novel targets and mechanisms driving resistance to RAF kinase inhibitors in BRAF-mutant melanoma.
- To explore therapeutic strategies for overcoming resistance to targeted melanoma therapies.
Main Methods:
- Expressed approximately 600 kinase and related open reading frames (ORFs) to screen for resistance mechanisms.
- Utilized BRAF(V600E) melanoma cell lines and patient-derived samples.
- Investigated the role of identified targets in MAPK pathway activation and drug resistance.
Main Results:
- Identified MAP3K8 (COT/Tpl2) as a key MAPK pathway agonist conferring resistance to RAF inhibition.
- COT activates ERK via MEK-dependent, RAF-independent signaling.
- COT expression correlated with both de novo and acquired resistance in melanoma cells and patient tissues.
Conclusions:
- MAP3K8 (COT/Tpl2) is a critical mediator of resistance to RAF inhibitors in BRAF-mutant melanoma.
- Targeting COT kinase activity or employing combinatorial MAPK pathway inhibition are potential therapeutic strategies.
- High-throughput functional screens can effectively identify resistance mechanisms and inform novel treatment approaches.
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