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Updated: Jan 29, 2026

Assessment of Resistance to Tyrosine Kinase Inhibitors by an Interrogation of Signal Transduction Pathways by Antibody Arrays
Published on: September 19, 2018
Novel Third-Generation EGFR Tyrosine Kinase Inhibitors and Strategies to Overcome Therapeutic Resistance in Lung
Ayesha Murtuza1, Ajaz Bulbul1, John Paul Shen1
1University of California San Diego, Moores Cancer Center, La Jolla, California.
Abstract:
EGFR-activating mutations are observed in approximately 15% to 20% of patients with non-small cell lung cancer. Tyrosine kinase inhibitors have provided an illustrative example of the successes in targeting oncogene addiction in cancer and the role of tumor-specific adaptations conferring therapeutic resistance. The compound osimertinib is a third-generation tyrosine kinase inhibitor, which was granted full FDA approval in March 2017 based on targeting EGFR T790M resistance. The compound has received additional FDA approval as first-line therapy with improvement in progression-free survival by suppressing the activating mutation and preventing the rise of the dominant resistance clone. Drug development has been breathtaking in this space with other third-generation compounds at various stages of development: rociletinib (CO-1686), olmutinib (HM61713), nazartinib (EGF816), naquotinib (ASP8273), mavelertinib (PF-0647775), and AC0010. However, therapeutic resistance after the administration of third-generation inhibitors is complex and not fully understood, with significant intertumoral and intratumoral heterogeneity. Repeat tissue and plasma analyses on therapy have revealed insights into multiple mechanisms of resistance, including novel second site EGFR mutations, activated bypass pathways such as MET amplification, HER2 amplification, RAS mutations, BRAF mutations, PIK3CA mutations, and novel fusion events. Strategies to understand and predict patterns of mutagenesis are still in their infancy; however, technologies to understand synthetically lethal dependencies and track cancer evolution through therapy are being explored. The expansion of combinatorial therapies is a direction forward targeting minimal residual disease and bypass pathways early based on projected resistance.
Insights
Third-generation tyrosine kinase inhibitors like osimertinib show promise for non-small cell lung cancer. However, complex resistance mechanisms necessitate further research into combinatorial therapies to overcome treatment challenges.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- EGFR-activating mutations occur in 15-20% of non-small cell lung cancer (NSCLC) patients.
- Tyrosine kinase inhibitors (TKIs) target oncogene addiction but face therapeutic resistance.
- Osimertinib, a third-generation TKI, is FDA-approved for EGFR T790M resistance and as first-line therapy in NSCLC.
Purpose of the Study:
- To review the efficacy of third-generation TKIs in NSCLC.
- To explore the complex mechanisms of therapeutic resistance to these inhibitors.
- To discuss future strategies for overcoming resistance and improving patient outcomes.
Main Methods:
- Literature review of clinical trials and resistance studies.
- Analysis of molecular mechanisms underlying TKI resistance.
- Exploration of emerging therapeutic strategies and technologies.
Main Results:
- Third-generation TKIs, including osimertinib, have improved progression-free survival in NSCLC.
- Therapeutic resistance is complex, involving inter- and intratumoral heterogeneity.
- Identified resistance mechanisms include secondary EGFR mutations, bypass pathway activation (MET, HER2, RAS, BRAF, PIK3CA), and novel fusions.
Conclusions:
- Understanding and predicting mutagenesis patterns is crucial for effective NSCLC treatment.
- Combinatorial therapies are a promising direction to target minimal residual disease and bypass pathways.
- Further research into resistance mechanisms and novel therapeutic approaches is essential.
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