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Updated: Sep 29, 2025

Fully Processed Recombinant KRAS4b: Isolating and Characterizing the Farnesylated and Methylated Protein
Published on: January 16, 2020
MET Exon 14 Splice-Site Mutations Preferentially Activate KRAS Signaling to Drive Tumourigenesis
Daniel Lu1,2, Amy Nagelberg1,3, Justine Lm Chow1
1Department of Integrative Oncology, BC Cancer Research Institute, Vancouver, BC V5Z 1L3, Canada.
Abstract:
Targeted therapies for MET exon 14-skipping (METΔex14)-driven lung cancers have generated some promising results but response rates remain below that seen for other kinase-driven cancers. One strategy for improving treatment outcomes is to employ rational combination therapies to enhance the suppression of tumour growth and delay or prevent the emergence of resistance. To this end, we profiled the transcriptomes of MET-addicted lung tumours and cell lines and identified the RAS-mitogen-activated protein kinase (MAPK) pathway as a critical effector required for METΔex14-dependent growth. Ectopic expression of MET in an isogenic cell line model showed that overexpression of the mutant MET receptor led to higher levels of MAPK phosphorylation and nuclear import, resulting in increased expression and phosphorylation of nuclear MAPK targets. In comparison, other known MET effectors were unaffected. Inhibition of this pathway by KRAS knockdown in MET-addicted cells in vitro led to decreased viability in only the METΔex14-mutant cells. Conversely, decoupling RAS-MAPK axis, but not other effector pathways, from MET activity via the introduction of constitutively active mutants conferred resistance to MET inhibitors in vitro. Our results suggest that aberrant hyperactivity of the MET receptor caused by the exon 14-skipping mutation does not uniformly upregulate all known downstream effectors, rather gaining a predilection for aberrantly activating and subsequently relying on the RAS-MAPK pathway. These findings provide a rationale for the co-targeting of the RAS-MAPK pathway alongside MET to prolong therapeutic response and circumvent resistance to improve patient survival.
Insights
Targeted therapies for MET exon 14-skipping lung cancer show promise. Combining MET inhibitors with RAS-mitogen-activated protein kinase (MAPK) pathway drugs may improve outcomes and overcome resistance.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Targeted therapies for MET exon 14-skipping (METΔex14) lung cancers show limited response rates.
- Combination therapies are a strategy to improve treatment efficacy and prevent resistance.
Purpose of the Study:
- To identify critical effector pathways driving METΔex14 lung cancer growth.
- To provide a rationale for combining MET and RAS-MAPK pathway inhibition.
Main Methods:
- Transcriptome profiling of MET-addicted lung tumors and cell lines.
- Investigated MET-RAS-MAPK signaling in isogenic cell line models.
- Assessed effects of KRAS knockdown and pathway decoupling on cell viability and drug response.
Main Results:
- The RAS-mitogen-activated protein kinase (MAPK) pathway is essential for METΔex14-driven tumor growth.
- METΔex14 overexpression specifically enhances RAS-MAPK signaling, not other effectors.
- Inhibition of RAS-MAPK signaling reduced viability in METΔex14 cells and conferred resistance to MET inhibitors.
Conclusions:
- METΔex14 lung cancers exhibit a specific reliance on the RAS-MAPK pathway.
- Co-targeting MET and RAS-MAPK pathways is a promising strategy to enhance therapeutic response and overcome resistance in METΔex14 lung cancer.
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