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Updated: May 24, 2026

Ultra-Fast Amplicon-Based Next-Generation Sequencing in Non-Squamous Non-Small Cell Lung Cancer
Published on: September 8, 2023
Comprehensive characterization of MET exon 14 skipping mutations in non-small cell lung cancer
Jie Lin1, Guojie Xia2, Yijuan Wu3
1Department of Pathology, Shengli Clinical Medical College of Fujian Medical University, Fujian Provincial Hospital, Fuzhou University Affiliated Provincial Hospital, Fuzhou, Fujian, China. sllinjie@163.com.
Background:
MET exon 14 skipping mutation (METΔex14) is a key driver event in non-small cell lung cancer (NSCLC) and can emerge as an acquired drug resistance mechanism to MET, EGFR or ALK inhibitors. The clinical and genomic features of METΔex14 in NSCLC require further characterization.
Methods:
Our study included a total of 585 patients with METΔex14 + NSCLC, comprising 556 baseline samples, 53 samples from patients exhibiting resistance to MET inhibitors, and 16 samples from patients resistant to EGFR/ALK inhibitors. Genomic data from targeted next-generation sequencing (NGS) of tissue and/or plasma samples using GeneseeqPrime™ (a 425 pan-cancer gene panel) were analyzed.
Results:
Overall, METΔex14 exhibited a prevalence of 1.02% (n = 585) in the screened NSCLC population, with a higher incidence in patients with a sarcomatoid histology. METΔex14 was predominantly detected at the splice donor site, though the non-coding region adjacent to the splice acceptor site contributed considerably to the complexity of METΔex14. Common concurrent alterations identified at baseline included those in TP53 (40.8%), CDK4 (16%) and EGFR (12.4%). Concurrent MET amplification and cell cycle pathway mutations were both associated with worse outcomes in patients treated with crizotinib, with significant co-occurrences observed also among these concurrent genomic variations. In addition, increased chromosomal instability and intra-tumoral heterogeneity correlated with a poorer response to crizotinib. Mechanisms of acquired resistance to MET inhibitors were primarily attributed to on-target MET D1228X/Y1230X mutations or off-target alterations within genes in the RTK/RAS/MAPK and PI3K/AKT/mTOR pathways. Intriguingly, our exploratory analysis also identified the FGFR3::TACC3 fusion as a potential resistance mechanism to savolitinib. Moreover, METΔex14 was identified in 16 patients following progression on EGFR and ALK inhibitors, highlighting the need for developing tailored therapeutic strategies to overcome resistance.
Conclusions:
This study provides a comprehensive characterization of METΔex14 in NSCLC, revealing its dual role as a primary driver of oncogenesis and a potential resistance mechanism to EGFR/ALK inhibitors. The identification of concurrent genetic alterations and potential resistance mechanisms enhances our molecular understanding of treatment responses. These findings highlight the need for further investigation into targeted therapies that consider the genomic complexity of METΔex14 to improve treatment efficacy and patient outcomes.
Insights
MET exon 14 skipping mutations drive non-small cell lung cancer and resistance to targeted therapies. Understanding these genomic complexities is crucial for developing effective treatments against MET-driven NSCLC.
Area of Science:
- Oncology
- Genomics
- Molecular Biology
Background:
- MET exon 14 skipping mutations (METΔex14) are key drivers in non-small cell lung cancer (NSCLC).
- METΔex14 can emerge as acquired resistance to MET, EGFR, or ALK inhibitors.
- Further characterization of METΔex14's clinical and genomic features in NSCLC is needed.
Purpose of the Study:
- To comprehensively characterize METΔex14 in NSCLC.
- To investigate the clinical and genomic features of METΔex14.
- To identify resistance mechanisms and concurrent alterations associated with METΔex14.
Main Methods:
- Analysis of genomic data from 585 patients with METΔex14+ NSCLC.
- Utilized targeted next-generation sequencing (NGS) on tissue and/or plasma samples.
- Included baseline samples and samples from patients resistant to MET, EGFR, or ALK inhibitors.
Main Results:
- METΔex14 prevalence of 1.02% in NSCLC, higher in sarcomatoid histology.
- Common concurrent alterations: TP53 (40.8%), CDK4 (16%), EGFR (12.4%).
- Acquired resistance mechanisms include MET mutations and RTK/RAS/MAPK pathway alterations; FGFR3::TACC3 fusion identified as a potential savolitinib resistance mechanism.
Conclusions:
- METΔex14 has a dual role: oncogenesis driver and resistance mechanism.
- Concurrent alterations and resistance mechanisms enhance understanding of treatment responses.
- Further investigation into targeted therapies for METΔex14 NSCLC is essential for improved outcomes.

