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Updated: Dec 11, 2025

NMR-Based Fragment Screening in a Minimum Sample but Maximum Automation Mode
Published on: June 4, 2021
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.
Abstract:
Mutations in RAS oncogenes occur in ~ 30% of human cancers, with KRAS being the most frequently altered isoform. RAS proteins comprise a conserved GTPase domain and a C-terminal lipid-modified tail that is unique to each isoform. The GTPase domain is a 'switch' that regulates multiple signaling cascades that drive cell growth and proliferation when activated by binding GTP, and the signal is terminated by GTP hydrolysis. Oncogenic RAS mutations disrupt the GTPase cycle, leading to accumulation of the activated GTP-bound state and promoting proliferation. RAS is a key target in oncology, however it lacks classic druggable pockets and has been extremely challenging to target. RAS signaling has thus been targeted indirectly, by harnessing key downstream effectors as well as upstream regulators, or disrupting the proper membrane localization required for signaling, by inhibiting either lipid modification or 'carrier' proteins. As a small (20 kDa) protein with multiple conformers in dynamic equilibrium, RAS is an excellent candidate for NMR-driven characterization and screening for direct inhibitors. Several molecules have been discovered that bind RAS and stabilize shallow pockets through conformational selection, and recent compounds have achieved substantial improvements in affinity. NMR-derived insight into targeting the RAS-membrane interface has revealed a new strategy to enhance the potency of small molecules, while another approach has been development of peptidyl inhibitors that bind through large interfaces rather than deep pockets. Remarkable progress has been made with mutation-specific covalent inhibitors that target the thiol of a G12C mutant, and these are now in clinical trials. Here we review the history of RAS inhibitor development and highlight the utility of NMR and integrated biophysical approaches in RAS drug discovery.
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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