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Updated: Dec 7, 2025

A Method for Screening and Validation of Resistant Mutations Against Kinase Inhibitors
Published on: December 7, 2014
TRK xDFG Mutations Trigger a Sensitivity Switch from Type I to II Kinase Inhibitors
Emiliano Cocco1,2, Ji Eun Lee3, Srinivasaraghavan Kannan4
1Human Oncology and Pathogenesis Program, Memorial Sloan Kettering Cancer Center, New York, New York. scaltrim@mskcc.org coccoe@mskcc.org chandra@bii.a-star.edu.sg venturaa@mskcc.org drilona@mskcc.org.
Abstract:
On-target resistance to next-generation TRK inhibitors in TRK fusion-positive cancers is largely uncharacterized. In patients with these tumors, we found that TRK xDFG mutations confer resistance to type I next-generation TRK inhibitors designed to maintain potency against several kinase domain mutations. Computational modeling and biochemical assays showed that TRKAG667 and TRKCG696 xDFG substitutions reduce drug binding by generating steric hindrance. Concurrently, these mutations stabilize the inactive (DFG-out) conformations of the kinases, thus sensitizing these kinases to type II TRK inhibitors. Consistently, type II inhibitors impede the growth and TRK-mediated signaling of xDFG-mutant isogenic and patient-derived models. Collectively, these data demonstrate that adaptive conformational resistance can be abrogated by shifting kinase engagement modes. Given the prior identification of paralogous xDFG resistance mutations in other oncogene-addicted cancers, these findings provide insights into rational type II drug design by leveraging inhibitor class affinity switching to address recalcitrant resistant alterations. SIGNIFICANCE: In TRK fusion-positive cancers, TRK xDFG substitutions represent a shared liability for type I TRK inhibitors. In contrast, they represent a potential biomarker of type II TRK inhibitor activity. As all currently available type II agents are multikinase inhibitors, rational drug design should focus on selective type II inhibitor creation.This article is highlighted in the In This Issue feature, p. 1.
Insights
New TRK xDFG mutations cause resistance to type I TRK inhibitors in cancers. Shifting to type II inhibitors can overcome this resistance by targeting altered kinase conformations.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- Next-generation TRK inhibitors are crucial for TRK fusion-positive cancers.
- On-target resistance mechanisms, particularly xDFG mutations, limit their efficacy.
- Understanding these resistance pathways is vital for developing durable therapies.
Purpose of the Study:
- To characterize on-target resistance mutations in TRK fusion-positive cancers.
- To investigate the impact of TRK xDFG mutations on inhibitor sensitivity.
- To explore therapeutic strategies to overcome resistance.
Main Methods:
- Computational modeling and biochemical assays were used to analyze TRK mutations.
- Isogenic and patient-derived models with xDFG mutations were employed.
- Sensitivity to type I and type II TRK inhibitors was assessed.
Main Results:
- TRK xDFG mutations confer resistance to type I next-generation TRK inhibitors.
- These mutations reduce drug binding through steric hindrance and stabilize inactive kinase conformations.
- Type II TRK inhibitors effectively inhibit xDFG-mutant TRK signaling and impede tumor growth.
Conclusions:
- Adaptive conformational resistance mediated by xDFG mutations can be overcome by switching inhibitor engagement modes.
- TRK xDFG mutations serve as a biomarker for type II TRK inhibitor activity.
- Future drug design should focus on developing selective type II TRK inhibitors to address resistant alterations.
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