In situ modeling of acquired resistance to RTK/RAS pathway targeted therapies

Insights

A new in situ resistance assay (ISRA) models acquired resistance to targeted cancer therapies. This assay shows SHP2 inhibition can overcome osimertinib resistance and prevent its development in EGFR-mutated lung cancer.

Area of Science:

  • Oncology
  • Molecular Biology
  • Drug Discovery

Background:

  • Intrinsic and acquired resistance limit the effectiveness of oncogene-targeted cancer therapies.
  • Preclinical models for studying acquired resistance to targeted therapies in cell culture are needed.
  • Understanding resistance mechanisms is crucial for improving cancer treatment efficacy.

Approach:

  • Developed a novel in situ resistance assay (ISRA) in a 96-well format to model acquired resistance to RTK/RAS pathway targeted therapies.
  • Utilized osimertinib resistance in EGFR-mutated lung adenocarcinoma (LUAD) as a model system.
  • Applied objectively defined drug doses to reliably model resistance across cell lines.

Key Points:

  • Acquired resistance in LUAD models involved enhanced activation of parallel RTKs, rendering single RTK inhibitors ineffective.
  • The SHP2 inhibitor RMC-4550 re-sensitized resistant cells to osimertinib and prevented resistance development.
  • The ISRA was validated for modeling resistance to other RTK/RAS pathway inhibitors, including KRASG12C inhibitors, MEK inhibitors, and farnesyl transferase inhibitors.

Conclusions:

  • The in situ resistance assay (ISRA) is a tractable method for modeling acquired resistance to targeted cancer therapies.
  • This assay provides a framework for evaluating synergistic drug combinations against acquired resistance.
  • Targeting proximal RTK signaling, such as with SHP2 inhibitors, shows promise for overcoming and preventing resistance to targeted therapies.