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Selective Inhibition of Oncogenic KRAS Output with Small Molecules Targeting the Inactive State
Matthew P Patricelli1, Matthew R Janes1, Lian-Sheng Li1
1Wellspring Biosciences, La Jolla, California.
Unlabelled:
KRAS gain-of-function mutations occur in approximately 30% of all human cancers. Despite more than 30 years of KRAS-focused research and development efforts, no targeted therapy has been discovered for cancers with KRAS mutations. Here, we describe ARS-853, a selective, covalent inhibitor of KRAS(G12C) that inhibits mutant KRAS-driven signaling by binding to the GDP-bound oncoprotein and preventing activation. Based on the rates of engagement and inhibition observed for ARS-853, along with a mutant-specific mass spectrometry-based assay for assessing KRAS activation status, we show that the nucleotide state of KRAS(G12C) is in a state of dynamic flux that can be modulated by upstream signaling factors. These studies provide convincing evidence that the KRAS(G12C) mutation generates a "hyperexcitable" rather than a "statically active" state and that targeting the inactive, GDP-bound form is a promising approach for generating novel anti-RAS therapeutics.
Significance:
A cell-active, mutant-specific, covalent inhibitor of KRAS(G12C) is described that targets the GDP-bound, inactive state and prevents subsequent activation. Using this novel compound, we demonstrate that KRAS(G12C) oncoprotein rapidly cycles bound nucleotide and responds to upstream signaling inputs to maintain a highly active state.
Insights
Researchers developed ARS-853, a novel covalent inhibitor targeting the KRAS(G12C) mutation in cancer. This drug targets the inactive form, offering a promising new therapeutic strategy for KRAS-mutant cancers.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- KRAS mutations drive approximately 30% of human cancers.
- Despite extensive research, targeted therapies for KRAS-mutant cancers remain elusive.
Purpose of the Study:
- To develop and characterize a novel inhibitor targeting the KRAS(G12C) mutation.
- To investigate the activation dynamics of KRAS(G12C) and validate a new therapeutic approach.
Main Methods:
- Development of ARS-853, a selective, covalent inhibitor of KRAS(G12C).
- Utilized a mutant-specific mass spectrometry assay to assess KRAS activation status.
- Studied the nucleotide-bound state and dynamic flux of KRAS(G12C).
Main Results:
- ARS-853 effectively inhibits KRAS(G12C) signaling by binding to the GDP-bound form.
- Demonstrated that KRAS(G12C) exists in a state of dynamic flux, modulated by upstream signaling.
- Established that KRAS(G12C) mutations create a "hyperexcitable" state rather than a constitutively active one.
Conclusions:
- A novel, cell-active, mutant-specific covalent inhibitor of KRAS(G12C) has been developed.
- Targeting the inactive, GDP-bound state of KRAS(G12C) is a viable therapeutic strategy.
- KRAS(G12C) oncoprotein exhibits rapid nucleotide cycling and maintains high activity through upstream signaling modulation.
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