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Genetic predictors of MEK dependence in non-small cell lung cancer
Christine A Pratilas1, Aphrothiti J Hanrahan, Ensar Halilovic
1Department of Pediatrics, Memorial Sloan-Kettering Cancer Center, New York, NY 10065, USA.
Abstract:
Hyperactivated extracellular signal-regulated kinase (ERK) signaling is common in human cancer and is often the result of activating mutations in BRAF, RAS, and upstream receptor tyrosine kinases. To characterize the mitogen-activated protein kinase/ERK kinase (MEK)/ERK dependence of lung cancers harboring BRAF kinase domain mutations, we screened a large panel of human lung cancer cell lines (n = 87) and tumors (n = 916) for BRAF mutations. We found that non-small cell lung cancers (NSCLC) cells with both V600E and non-V600E BRAF mutations were selectively sensitive to MEK inhibition compared with those harboring mutations in epidermal growth factor receptor (EGFR), KRAS, or ALK and ROS kinase fusions. Supporting its classification as a "driver" mutation in the cells in which it is expressed, MEK inhibition in (V600E)BRAF NSCLC cells led to substantial induction of apoptosis, comparable with that seen with EGFR kinase inhibition in EGFR mutant NSCLC models. Despite high basal ERK phosphorylation, EGFR mutant cells were uniformly resistant to MEK inhibition. Conversely, BRAF mutant cell lines were resistant to EGFR inhibition. These data, together with the nonoverlapping pattern of EGFR and BRAF mutations in human lung cancer, suggest that these lesions define distinct clinical entities whose treatment should be guided by prospective real-time genotyping. To facilitate such an effort, we developed a mass spectrometry-based genotyping method for the detection of hotspot mutations in BRAF, KRAS, and EGFR. Using this assay, we confirmed that BRAF mutations can be identified in a minority of NSCLC tumors and that patients whose tumors harbor BRAF mutations have a distinct clinical profile compared with those whose tumors harbor kinase domain mutations in EGFR.
Insights
Lung cancers with BRAF mutations are sensitive to MEK inhibitors, unlike those with EGFR mutations. Real-time genotyping can guide distinct treatment strategies for these lung cancer subtypes.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Hyperactivated extracellular signal-regulated kinase (ERK) signaling is a hallmark of many cancers, often driven by mutations in BRAF, RAS, or receptor tyrosine kinases.
- Non-small cell lung cancer (NSCLC) frequently exhibits activating mutations in key signaling pathways, including BRAF and epidermal growth factor receptor (EGFR).
Purpose of the Study:
- To investigate the dependence of lung cancers with BRAF kinase domain mutations on the mitogen-activated protein kinase/ERK kinase (MEK)/ERK pathway.
- To determine the sensitivity of BRAF-mutated NSCLC to MEK inhibition and compare it with other common driver mutations.
Main Methods:
- Screening of 87 human lung cancer cell lines and 916 tumors for BRAF mutations.
- Assessing the sensitivity of NSCLC cells with various mutations (BRAF, EGFR, KRAS, ALK, ROS) to MEK and EGFR inhibitors.
- Development of a mass spectrometry-based genotyping assay for hotspot mutations in BRAF, KRAS, and EGFR.
Main Results:
- NSCLC cells with BRAF mutations (V600E and non-V600E) showed selective sensitivity to MEK inhibition.
- MEK inhibition induced apoptosis in BRAF-mutant NSCLC, similar to EGFR inhibition in EGFR-mutant NSCLC.
- EGFR-mutant cells were resistant to MEK inhibition, and BRAF-mutant cells were resistant to EGFR inhibition, indicating distinct clinical entities.
Conclusions:
- BRAF mutations in NSCLC define a distinct clinical entity that is sensitive to MEK inhibition.
- EGFR and BRAF mutations represent non-overlapping lesions in lung cancer, necessitating genotype-guided treatment.
- A mass spectrometry-based assay facilitates the identification of BRAF mutations, supporting personalized treatment approaches for NSCLC patients.