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.

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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