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Establishing Dual Resistance to EGFR-TKI and MET-TKI in Lung Adenocarcinoma Cells In Vitro with a 2-step Dose-escalation Procedure
Published on: August 11, 2017
The molecular evolution of acquired resistance to targeted EGFR blockade in colorectal cancers
Luis A Diaz1, Richard T Williams, Jian Wu
1Ludwig Center for Cancer Genetics and Therapeutics, Howard Hughes Medical Institute at Johns Hopkins Kimmel Cancer Center, Baltimore, Maryland 21287, USA. ldiaz1@jhmi.edu
Abstract:
Colorectal tumours that are wild type for KRAS are often sensitive to EGFR blockade, but almost always develop resistance within several months of initiating therapy. The mechanisms underlying this acquired resistance to anti-EGFR antibodies are largely unknown. This situation is in marked contrast to that of small-molecule targeted agents, such as inhibitors of ABL, EGFR, BRAF and MEK, in which mutations in the genes encoding the protein targets render the tumours resistant to the effects of the drugs. The simplest hypothesis to account for the development of resistance to EGFR blockade is that rare cells with KRAS mutations pre-exist at low levels in tumours with ostensibly wild-type KRAS genes. Although this hypothesis would seem readily testable, there is no evidence in pre-clinical models to support it, nor is there data from patients. To test this hypothesis, we determined whether mutant KRAS DNA could be detected in the circulation of 28 patients receiving monotherapy with panitumumab, a therapeutic anti-EGFR antibody. We found that 9 out of 24 (38%) patients whose tumours were initially KRAS wild type developed detectable mutations in KRAS in their sera, three of which developed multiple different KRAS mutations. The appearance of these mutations was very consistent, generally occurring between 5 and 6 months following treatment. Mathematical modelling indicated that the mutations were present in expanded subclones before the initiation of panitumumab treatment. These results suggest that the emergence of KRAS mutations is a mediator of acquired resistance to EGFR blockade and that these mutations can be detected in a non-invasive manner. They explain why solid tumours develop resistance to targeted therapies in a highly reproducible fashion.
Insights
Rare KRAS mutations pre-exist in colorectal tumors and emerge during EGFR blockade therapy. Detecting these KRAS mutations in blood predicts acquired resistance to anti-EGFR antibodies.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Colorectal tumors initially sensitive to EGFR blockade often develop resistance.
- Mechanisms of acquired resistance to anti-EGFR antibodies are poorly understood.
- Unlike small-molecule inhibitors, resistance to antibody-based EGFR blockade lacks clear genetic targets.
Purpose of the Study:
- To investigate the hypothesis that pre-existing KRAS mutations drive acquired resistance to EGFR blockade.
- To determine if mutant KRAS DNA can be detected in the circulation of patients treated with anti-EGFR antibodies.
- To explore the clinical utility of non-invasive detection of KRAS mutations for predicting resistance.
Main Methods:
- Analysis of circulating tumor DNA (ctDNA) for KRAS mutations in patients receiving panitumumab.
- Detection of KRAS mutations in serum using molecular techniques.
- Mathematical modeling to assess the timing and clonal expansion of mutations.
Main Results:
- Mutant KRAS DNA was detected in the serum of 38% of patients with initially KRAS wild-type tumors.
- Multiple distinct KRAS mutations were identified in some patients.
- Mutation emergence typically occurred between 5-6 months of treatment, suggesting pre-existing subclones.
Conclusions:
- Emergence of KRAS mutations is a key mediator of acquired resistance to EGFR blockade in colorectal cancer.
- Non-invasive detection of KRAS mutations in serum is feasible and can predict resistance.
- These findings explain the reproducible development of resistance to targeted therapies.
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