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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
Epidermal growth factor receptor mutants from human lung cancers exhibit enhanced catalytic activity and increased
Roseann Mulloy1, Audrey Ferrand, Youngjoo Kim
1Center for Molecular Therapeutics, Massachusetts General Hospital Cancer Center and Harvard Medical School, Charlestown, MA 02129, USA.
Abstract:
Somatic mutations within the epidermal growth factor receptor (EGFR) kinase domain are detected in 10% to 30% of human non-small cell lung cancers and are correlated with striking clinical responses in a subset of patients treated with EGFR kinase inhibitors, such as gefitinib and erlotinib. Cell-based studies suggest that these mutant EGFRs promote increased autophosphorylating activity on a subset of EGFR COOH-terminal tyrosines and the consequent engagement of a subset of downstream effectors. Because EGFR function is regulated at multiple levels in vivo, and it is therefore difficult to assess the direct consequences of these mutations on EGFR enzyme function, we measured EGFR catalytic activity in in vitro kinase assays using purified recombinant proteins corresponding to the cytoplasmic domain of wild-type and two frequently detected EGFR mutants (DelL747-P753insS and L858R). Both mutants exhibit substantially increased autophosphorylating activity relative to wild-type EGFR, and they exhibit distinct reaction kinetics. In addition, the mutant kinases are more sensitive to kinase inhibition by gefitinib, which seems to reflect their increased drug affinity. These findings suggest that the altered signaling properties and drug sensitivity of these EGFR mutants that have been observed in vivo largely result from differences in the catalytic properties of the kinase. In addition, we find that the T790M secondary "drug resistance mutation" of EGFR, which frequently arises in relapsed patients that initially responded to treatment, confers enhanced kinase activity to primary activating EGFR alleles and may, therefore, be oncogenic in some contexts.
Insights
Somatic mutations in epidermal growth factor receptor (EGFR) increase its kinase activity, enhancing sensitivity to inhibitors like gefitinib. A secondary mutation, T790M, also boosts activity and may be oncogenic.
Area of Science:
- Molecular Biology
- Oncology
- Biochemistry
Background:
- Somatic mutations in the epidermal growth factor receptor (EGFR) kinase domain are common in non-small cell lung cancer (10-30%).
- These mutations correlate with significant clinical responses to EGFR kinase inhibitors (e.g., gefitinib, erlotinib).
- In vitro studies suggest mutant EGFRs have increased autophosphorylation and downstream signaling.
Purpose of the Study:
- To directly assess the catalytic activity of wild-type and mutant EGFR in vitro.
- To investigate the impact of specific EGFR mutations (DelL747-P753insS, L858R) on enzyme function.
- To evaluate the effect of the T790M resistance mutation on EGFR activity.
Main Methods:
- Purified recombinant proteins of the EGFR cytoplasmic domain (wild-type and mutants) were used.
- In vitro kinase assays were performed to measure EGFR catalytic activity.
- Kinetic analysis and drug sensitivity assays with gefitinib were conducted.
Main Results:
- Both DelL747-P753insS and L858R EGFR mutants showed significantly increased autophosphorylating activity compared to wild-type.
- Mutant EGFRs exhibited distinct reaction kinetics and enhanced sensitivity to gefitinib, suggesting increased drug affinity.
- The T790M secondary mutation enhanced the kinase activity of primary activating EGFR alleles.
Conclusions:
- Altered signaling and drug sensitivity of EGFR mutants in vivo are largely due to changes in kinase catalytic properties.
- The T790M mutation may be oncogenic by conferring enhanced kinase activity.
- These findings provide insights into EGFR-driven cancers and drug resistance mechanisms.
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