Structure-based development of new RAS-effector inhibitors from a combination of active and inactive RAS-binding

Abimael Cruz-Migoni1,2, Peter Canning1, Camilo E Quevedo1

  • 1Weatherall Institute of Molecular Medicine, MRC Molecular Haematology Unit, John Radcliffe Hospital, University of Oxford, OX3 9DS Oxford, United Kingdom.

Insights

Researchers developed novel RAS-binding compounds by combining two chemical series. These new compounds inhibit RAS-effector interactions, offering a promising strategy for cancer drug development.

Area of Science:

  • Oncology
  • Medicinal Chemistry
  • Molecular Biology

Background:

  • The RAS gene family is frequently mutated in human cancers.
  • Developing compounds that bind to mutant RAS and inhibit protein-protein interactions is a critical goal in cancer research.

Purpose of the Study:

  • To identify and develop novel RAS-binding compounds.
  • To create potent inhibitors of RAS-effector interactions by combining chemical series.

Main Methods:

  • Refined crystallization conditions for KRASQ61H.
  • Screened a protein-protein interaction-focused compound library using surface plasmon resonance.
  • Developed fused compounds by combining structural elements from different RAS-binding series.

Main Results:

  • Identified two RAS-binding compounds (PPIN-1 and PPIN-2).
  • Developed fused compounds that inhibit RAS-effector interactions with increased potency.
  • Demonstrated a strategy for creating RAS-binding small molecules by crossing chemical series.

Conclusions:

  • Novel RAS-binding compounds were successfully developed.
  • Fused compounds represent a promising new class of RAS-protein-protein inhibitors.
  • Combining chemical series is an effective strategy for developing targeted cancer therapeutics.

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