Structure-guided identification and biological evaluation of reversible EGFR C797S inhibitors

Glen J Weiss1,2, Joseph C Loftus3, David W Mallery4

  • 1International Genomics Consortium, Phoenix, AZ, USA. glen.weiss@umassmed.edu.

Scientific Reports
|May 4, 2026
PubMed

Insights

New reversible EGFR inhibitors target C797S mutations, a key resistance mechanism in EGFR-mutant cancers. This structure-guided approach yielded potent compounds, including BLU-945, showing significant tumor growth inhibition in vivo.

Area of Science:

  • Oncology
  • Medicinal Chemistry
  • Molecular Biology

Background:

  • Resistance to epidermal growth factor receptor (EGFR) tyrosine kinase inhibitors (TKIs) is a significant challenge in treating EGFR-mutant cancers.
  • The C797S substitution is a primary mechanism of acquired resistance, rendering covalent inhibitors ineffective.

Purpose of the Study:

  • To discover novel, reversible, ATP-competitive EGFR inhibitors targeting C797S mutations.
  • To validate these inhibitors using structure-guided drug design and experimental models.

Main Methods:

  • Integrated virtual screening, molecular docking, and molecular dynamics for lead identification.
  • Experimental validation in engineered Ba/F3 cell models and an EGFR T790M/C797S/L858R xenograft model.
  • In vitro biochemical assays and in vivo efficacy studies.

Main Results:

  • Identified lead candidates with potent inhibition of C797S-mutant EGFR signaling in vitro, comparable to advanced fourth-generation inhibitors.
  • Demonstrated significant tumor growth inhibition in vivo with the reversible inhibitor BLU-945 in a relevant xenograft model.
  • Observed limited efficacy with a related tool compound, suggesting pharmacokinetic limitations rather than intrinsic activity.

Conclusions:

  • Structure-guided screening is effective for identifying novel EGFR C797S-active scaffolds.
  • Reversible EGFR inhibitors show promise for overcoming C797S-mediated resistance.
  • Findings provide translational insights for developing next-generation EGFR inhibitors.