RET Solvent Front Mutations Mediate Acquired Resistance to Selective RET Inhibition in RET-Driven Malignancies

Benjamin J Solomon1, Lavinia Tan1, Jessica J Lin2

  • 1Peter MacCallum Cancer Centre and the University of Melbourne, Melbourne, Australia.

Abstract

Insights

New RET G810 mutations cause resistance to selpercatinib in lung and thyroid cancers. These solvent front mutations hinder drug binding, representing a novel resistance mechanism requiring targeted therapies.

Area of Science:

  • Oncology
  • Molecular Biology
  • Pharmacology

Background:

  • Novel rearranged in transfection (RET) specific tyrosine kinase inhibitors (TKIs), such as selpercatinib, show significant efficacy in RET fusion-positive non-small cell lung cancer (NSCLC) and RET-mutant medullary thyroid cancer (MTC).
  • Mechanisms of acquired resistance to these targeted therapies have not been fully elucidated.

Purpose of the Study:

  • To identify and characterize the mechanisms of acquired resistance to selpercatinib in patients with RET-altered cancers.
  • To investigate the preclinical implications of identified resistance mutations on RET TKI efficacy.

Main Methods:

  • Analysis of circulating tumor DNA and tissue from patients with RET fusion-positive NSCLC and RET-mutant MTC who progressed on selpercatinib.
  • Preclinical modeling of acquired resistance using a CCDC6-RET fusion-positive NSCLC patient-derived xenograft.
  • Evaluation of anti-RET multikinase inhibitors and selective RET TKIs using enzyme and cell-based assays.

Main Results:

  • Emergence of RET G810R, G810S, and G810C mutations at the RET solvent front was identified in patients and a preclinical model.
  • These mutations were associated with clinical resistance and demonstrated convergent evolution across different RET alterations (KIF5B-RET, CCDC6-RET).
  • Structural modeling and in vitro assays confirmed that RET G810 mutations sterically hinder selpercatinib binding, leading to loss of TKI activity.

Conclusions:

  • RET G810 solvent front mutations represent the first described recurrent mechanism of acquired resistance to selective RET inhibition.
  • Targeting these specific mutations, while maintaining activity against gatekeeper mutations, is a potential strategy to overcome selpercatinib resistance.

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