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Updated: Dec 1, 2025

A Method for Screening and Validation of Resistant Mutations Against Kinase Inhibitors
Published on: December 7, 2014
Structural basis of acquired resistance to selpercatinib and pralsetinib mediated by non-gatekeeper RET mutations
V Subbiah1, T Shen2, S S Terzyan3
1Department of Investigational Cancer Therapeutics, Division of Cancer Medicine, the University of Texas MD Anderson Cancer Center, Houston, USA.
Background:
Selpercatinib (LOXO-292) and pralsetinib (BLU-667) are highly potent RET-selective protein tyrosine kinase inhibitors (TKIs) for treating advanced RET-altered thyroid cancers and non-small-cell lung cancer (NSCLC). It is critical to analyze RET mutants resistant to these drugs and unravel the molecular basis to improve patient outcomes.
Patients And Methods:
Cell-free DNAs (cfDNAs) were analyzed in a RET-mutant medullary thyroid cancer (MTC) patient and a CCDC6-RET fusion NSCLC patient who had dramatic response to selpercatinib and later developed resistance. Selpercatinib-resistant RET mutants were identified and cross-profiled with pralsetinib in cell cultures. Crystal structures of RET-selpercatinib and RET-pralsetinib complexes were determined based on high-resolution diffraction data collected with synchrotron radiation.
Results:
RETG810C/S mutations at the solvent front and RETY806C/N mutation at the hinge region were found in cfDNAs of an MTC patient with RETM918T/V804M/L, who initially responded to selpercatinib and developed resistance. RETG810C mutant was detected in cfDNAs of a CCDC6-RET-fusion NSCLC patient who developed acquired resistance to selpercatinib. Five RET kinase domain mutations at three non-gatekeeper residues were identified from 39 selpercatinib-resistant cell lines. All five selpercatinib-resistant RET mutants were cross-resistant to pralsetinib. X-ray crystal structures of the RET-selpercatinib and RET-pralsetinib complexes reveal that, unlike other TKIs, these two RET TKIs anchor one end in the front cleft and wrap around the gate wall to access the back cleft.
Conclusions:
RET mutations at the solvent front and the hinge are resistant to both drugs. Selpercatinib and pralsetinib use an unconventional mode to bind RET that avoids the interference from gatekeeper mutations but is vulnerable to non-gatekeeper mutations.
Insights
New RET kinase inhibitors selpercatinib and pralsetinib show resistance due to non-gatekeeper mutations. Understanding these RET mutations is key to overcoming treatment resistance in advanced cancers.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- Selpercatinib and pralsetinib are potent RET-selective kinase inhibitors for advanced RET-altered thyroid cancer and non-small-cell lung cancer (NSCLC).
- Developing resistance to these targeted therapies necessitates analysis of emergent RET mutations and their molecular underpinnings.
Purpose of the Study:
- To identify and characterize RET mutations conferring resistance to selpercatinib and pralsetinib.
- To elucidate the structural basis of resistance to these RET inhibitors.
Main Methods:
- Analysis of cell-free DNAs (cfDNAs) from patients with RET-mutant cancers who developed resistance.
- Cross-profiling of identified selpercatinib-resistant RET mutants with pralsetinib in cell cultures.
- Determination of crystal structures of RET-selpercatinib and RET-pralsetinib complexes.
Main Results:
- RET mutations at the solvent front (e.g., G810C/S) and hinge region (e.g., Y806C/N) were identified in resistant MTC and NSCLC patients.
- Five novel RET kinase domain mutations conferring cross-resistance to both selpercatinib and pralsetinib were identified in resistant cell lines.
- Structural analysis revealed an unconventional binding mode of selpercatinib and pralsetinib to RET, vulnerable to non-gatekeeper mutations.
Conclusions:
- RET mutations in the solvent front and hinge regions confer resistance to both selpercatinib and pralsetinib.
- The unique binding mechanism of these RET inhibitors, while avoiding gatekeeper mutations, is susceptible to non-gatekeeper resistance mutations.
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