NMR in integrated biophysical drug discovery for RAS: past, present, and future

Christopher B Marshall1, Fenneke KleinJan2, Teklab Gebregiworgis2

  • 1Princess Margaret Cancer Centre, University Health Network, Toronto, ON, M5G 1L7, Canada. Chris.Marshall@uhnresearch.ca.

Insights

RAS oncogenes are mutated in ~30% of human cancers, driving proliferation. This review highlights NMR and biophysical methods for developing novel RAS inhibitors, including covalent and peptidyl drugs, to overcome targeting challenges.

Area of Science:

  • Oncology
  • Molecular Biology
  • Drug Discovery

Background:

  • RAS oncogenes, particularly KRAS, are frequently mutated in human cancers (~30%).
  • Oncogenic RAS mutations lead to constitutive GTP-bound states, promoting uncontrolled cell proliferation.
  • RAS proteins are challenging drug targets due to their lack of classic druggable pockets.

Purpose of the Study:

  • To review the history and progress of RAS inhibitor development.
  • To highlight the utility of Nuclear Magnetic Resonance (NMR) and integrated biophysical approaches in RAS drug discovery.
  • To discuss various strategies for targeting RAS, including indirect inhibition and direct targeting of shallow pockets or the RAS-membrane interface.

Main Methods:

  • Utilizing NMR for characterization and screening of RAS inhibitors.
  • Employing integrated biophysical approaches to assess inhibitor binding and efficacy.
  • Developing mutation-specific covalent inhibitors and peptidyl inhibitors.

Main Results:

  • Discovery of molecules that bind RAS by stabilizing shallow pockets via conformational selection.
  • Identification of strategies to enhance small molecule potency by targeting the RAS-membrane interface.
  • Advancement of mutation-specific covalent inhibitors (e.g., targeting G12C) into clinical trials.

Conclusions:

  • Significant progress has been made in developing direct RAS inhibitors, overcoming previous challenges.
  • NMR and biophysical techniques are crucial for advancing RAS-targeted therapies.
  • Future research holds promise for more effective cancer treatments by targeting RAS signaling pathways.

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