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Resistance to ROS1 inhibition mediated by EGFR pathway activation in non-small cell lung cancer
Kurtis D Davies1, Sakshi Mahale1, David P Astling1
1Department of Medicine, Division of Medical Oncology, University of Colorado - Anschutz Medical Campus, Aurora, Colorado, United States of America.
Abstract:
The targeting of oncogenic 'driver' kinases with small molecule inhibitors has proven to be a highly effective therapeutic strategy in selected non-small cell lung cancer (NSCLC) patients. However, acquired resistance to targeted therapies invariably arises and is a major limitation to patient care. ROS1 fusion proteins are a recently described class of oncogenic driver, and NSCLC patients that express these fusions generally respond well to ROS1-targeted therapy. In this study, we sought to determine mechanisms of acquired resistance to ROS1 inhibition. To accomplish this, we analyzed tumor samples from a patient who initially responded to the ROS1 inhibitor crizotinib but eventually developed acquired resistance. In addition, we generated a ROS1 inhibition-resistant derivative of the initially sensitive NSCLC cell line HCC78. Previously described mechanisms of acquired resistance to tyrosine kinase inhibitors including target kinase-domain mutation, target copy number gain, epithelial-mesenchymal transition, and conversion to small cell lung cancer histology were found to not underlie resistance in the patient sample or resistant cell line. However, we did observe a switch in the control of growth and survival signaling pathways from ROS1 to EGFR in the resistant cell line. As a result of this switch, ROS1 inhibition-resistant HCC78 cells became sensitive to EGFR inhibition, an effect that was enhanced by co-treatment with a ROS1 inhibitor. Our results suggest that co-inhibition of ROS1 and EGFR may be an effective strategy to combat resistance to targeted therapy in some ROS1 fusion-positive NSCLC patients.
Insights
Acquired resistance to ROS1 inhibitors in non-small cell lung cancer (NSCLC) can occur through pathway switching from ROS1 to EGFR. This suggests combining ROS1 and EGFR inhibitors may overcome resistance in NSCLC patients.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Targeted therapies using small molecule inhibitors against oncogenic 'driver' kinases are effective for select non-small cell lung cancer (NSCLC) patients.
- Acquired resistance to these targeted therapies is a significant clinical challenge.
- ROS1 fusion proteins represent a class of oncogenic drivers in NSCLC, with patients often responding well to ROS1-targeted therapy.
Purpose of the Study:
- To investigate the mechanisms of acquired resistance to ROS1 inhibition in NSCLC.
- To analyze resistance mechanisms in both a patient sample and a resistant cell line model.
Main Methods:
- Analysis of tumor samples from a patient with acquired resistance to crizotinib (a ROS1 inhibitor).
- Generation of a ROS1 inhibition-resistant derivative of the HCC78 NSCLC cell line.
- Evaluation of known resistance mechanisms, including kinase-domain mutation, copy number gain, epithelial-mesenchymal transition, and histological conversion.
Main Results:
- Common resistance mechanisms were not identified in the patient sample or resistant cell line.
- A switch in signaling pathway control from ROS1 to EGFR was observed in the resistant cell line.
- The resistant cell line demonstrated sensitivity to EGFR inhibition, which was enhanced by co-treatment with a ROS1 inhibitor.
Conclusions:
- The findings suggest that pathway switching to EGFR is a mechanism of acquired resistance to ROS1 inhibition in NSCLC.
- Co-inhibition of ROS1 and EGFR may represent a viable therapeutic strategy for overcoming resistance in certain ROS1 fusion-positive NSCLC patients.
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