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Updated: Jul 17, 2025

Fully Processed Recombinant KRAS4b: Isolating and Characterizing the Farnesylated and Methylated Protein
Published on: January 16, 2020
Small-Molecule Inhibition of KRAS through Conformational Selection
Cynthia V Pagba1, Amit K Gupta1, Alemayehu A Gorfe1
1Department of Integrative Biology and Pharmacology, McGovern Medical School, University of Texas Health Science Center at Houston, 6431 Fannin Street, Houston, Texas 77030, United States.
Abstract:
Mutations in KRAS account for about 20% of human cancers. Despite the major progress in recent years toward the development of KRAS inhibitors, including the discovery of covalent inhibitors of the G12C KRAS variant for the treatment of non-small-cell lung cancer, much work remains to be done to discover broad-acting inhibitors to treat many other KRAS-driven cancers. In a previous report, we showed that a 308.4 Da small-molecule ligand [(2R)-2-(N'-(1H-indole-3-carbonyl)hydrazino)-2-phenyl-acetamide] binds to KRAS with low micro-molar affinity [Chem. Biol. Drug Des.2019; 94(2):1441-1456]. Binding of this ligand, which we call ACA22, to the p1 pocket of KRAS and its interactions with residues at beta-strand 1 and the switch loops have been supported by data from nuclear magnetic resonance spectroscopy and microscale thermophoresis experiments. However, the inhibitory potential of the compound was not demonstrated. Here, we show that ACA22 inhibits KRAS-mediated signal transduction in cells expressing wild type (WT) and G12D mutant KRAS and reduces levels of guanosine triphosphate-loaded WT KRAS more effectively than G12D KRAS. We ruled out the direct effect on nucleotide exchange or effector binding as possible mechanisms of inhibition using a variety of biophysical assays. Combining these observations with binding data that show comparable affinities of the compound for the active and inactive forms of the mutant but not the WT, we propose conformational selection as a possible mechanism of action of ACA22.
Insights
ACA22, a small molecule, inhibits KRAS-mediated signaling in cancer cells. It targets both wild-type and mutant KRAS, offering potential for broader cancer therapies beyond specific KRAS mutations.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- KRAS mutations drive approximately 20% of human cancers.
- Targeted KRAS inhibitors exist for specific mutations like G12C in non-small-cell lung cancer.
- Broader KRAS inhibitors are needed for diverse KRAS-driven cancers.
Purpose of the Study:
- To investigate the inhibitory potential of the small-molecule ligand ACA22 on KRAS.
- To elucidate the mechanism of action for ACA22 in KRAS-mediated signaling.
- To assess ACA22's efficacy against wild-type and mutant KRAS.
Main Methods:
- Nuclear magnetic resonance (NMR) spectroscopy and microscale thermophoresis (MST) to confirm binding.
- Cell-based assays to evaluate inhibition of KRAS-mediated signal transduction.
- Biophysical assays to rule out direct effects on nucleotide exchange or effector binding.
Main Results:
- ACA22 inhibits KRAS-mediated signal transduction in cells with wild-type (WT) and G12D mutant KRAS.
- ACA22 reduces GTP-loaded WT KRAS levels more effectively than G12D KRAS.
- Binding data suggests ACA22 interacts with both active and inactive forms of mutant KRAS, but not WT KRAS.
Conclusions:
- ACA22 demonstrates inhibitory potential against KRAS signaling.
- The mechanism of action is proposed to be conformational selection.
- ACA22 shows promise as a broad-acting KRAS inhibitor for various cancers.
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