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A Method for Screening and Validation of Resistant Mutations Against Kinase Inhibitors
Published on: December 7, 2014
Molecular Characteristics of Repotrectinib That Enable Potent Inhibition of TRK Fusion Proteins and Resistant
Brion W Murray1, Evan Rogers2, Dayong Zhai2
1Turning Point Therapeutics, San Diego, California. brion.murray@tptherapeutics.com.
Abstract:
NTRK chromosomal rearrangements yield oncogenic TRK fusion proteins that are sensitive to TRK inhibitors (larotrectinib and entrectinib) but often mutate, limiting the durability of response for NTRK + patients. Next-generation inhibitors with compact macrocyclic structures (repotrectinib and selitrectinib) were designed to avoid resistance mutations. Head-to-head potency comparisons of TRK inhibitors and molecular characterization of binding interactions are incomplete, obscuring a detailed understanding of how molecular characteristics translate to potency. Larotrectinib, entrectinib, selitrectinib, and repotrectinib were characterized using cellular models of wild-type TRKA/B/C fusions and resistance mutant variants with a subset evaluated in xenograft tumor models. Crystal structures were determined for repotrectinib bound to TRKA (wild-type, solvent-front mutant). TKI-naïve and pretreated case studies are presented. Repotrectinib was the most potent inhibitor of wild-type TRKA/B/C fusions and was more potent than selitrectinib against all tested resistance mutations, underscoring the importance of distinct features of the macrocycle structures. Cocrystal structures of repotrectinib with wild-type TRKA and the TRKAG595R SFM variant elucidated how differences in macrocyclic inhibitor structure, binding orientation, and conformational flexibility affect potency and mutant selectivity. The SFM crystal structure revealed an unexpected intramolecular arginine sidechain interaction. Repotrectinib caused tumor regression in LMNA-NTRK1 xenograft models harboring GKM, SFM, xDFG, and GKM + SFM compound mutations. Durable responses were observed in TKI-naïve and -pretreated patients with NTRK + cancers treated with repotrectinib (NCT03093116). This comprehensive analysis of first- and second-generation TRK inhibitors informs the clinical utility, structural determinants of inhibitor potency, and design of new generations of macrocyclic inhibitors.
Insights
Repotrectinib, a next-generation TRK inhibitor, shows superior potency against NTRK fusions and resistance mutations compared to earlier drugs. Its unique macrocyclic structure enhances efficacy in TRK fusion-positive cancers, improving patient outcomes.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- NTRK gene fusions drive oncogenesis, leading to TRK fusions sensitive to TRK inhibitors like larotrectinib and entrectinib.
- Resistance mutations in TRK fusions limit the durability of response to first-generation TRK inhibitors.
- Next-generation macrocyclic TRK inhibitors, repotrectinib and selitrectinib, were developed to overcome resistance mechanisms.
Purpose of the Study:
- To compare the potency of TRK inhibitors (larotrectinib, entrectinib, selitrectinib, repotrectinib) against wild-type and resistant TRK fusions.
- To elucidate the molecular basis of inhibitor potency and selectivity through structural characterization.
- To evaluate the clinical efficacy of repotrectinib in patients with NTRK-fusion-positive cancers.
Main Methods:
- Cellular assays using wild-type and mutant TRK fusions.
- In vivo evaluation in xenograft tumor models.
- Cocrystal structure determination of repotrectinib bound to TRKA (wild-type and mutant variants).
- Analysis of clinical case studies in TKI-naïve and pretreated patients.
Main Results:
- Repotrectinib demonstrated superior potency against wild-type TRKA/B/C fusions and all tested resistance mutations compared to selitrectinib.
- Cocrystal structures revealed how repotrectinib's macrocyclic structure, binding orientation, and flexibility confer enhanced potency and selectivity.
- Repotrectinib induced tumor regression in xenograft models and showed durable responses in patients with NTRK+ cancers.
Conclusions:
- Repotrectinib's distinct macrocyclic structure is crucial for its high potency against TRK fusions and resistance mutations.
- Structural insights explain repotrectinib's improved efficacy and selectivity.
- Repotrectinib represents a promising therapeutic option for patients with NTRK-fusion-positive cancers, including those with prior TKI exposure.
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