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Updated: Oct 22, 2025

Characterize Disease-related Mutants of RAF Family Kinases by Using a Set of Practical and Feasible Methods
Published on: July 17, 2019
Blockade of mutant RAS oncogenic signaling with a special emphasis on KRAS
1Blue Ridge Institute for Medical Research, 3754 Brevard Road, Suite 106, Box 19, Horse Shoe, NC 28742-8814, United States.
Abstract:
RAS proteins (HRAS, KRAS, NRAS) participate in many physiological signal transduction processes related to cell growth, division, and survival. The RAS proteins are small (188/189 amino acid residues) and they function as GTPases. These proteins toggle between inactive and functional forms; the conversion of inactive RAS-GDP to active RAS-GTP as mediated by guanine nucleotide exchange factors (GEFs) turns the switch on and the intrinsic RAS-GTPase activity stimulated by the GTPase activating proteins (GAPs) turns the switch off. RAS is upstream to the RAS-RAF-MEK-ERK and the PI3-kinase-AKT signaling modules. Importantly, the overall incidence of RAS mutations in all cancers is about 19% and RAS mutants have been a pharmacological target for more than three decades. About 84% of all RAS mutations involve KRAS. Except for the GTP/GDP binding site, the RAS proteins lack other deep surface pockets thereby hindering efforts to identify high-affinity antagonists; thus, they have been considered to be undruggable. KRAS mutations frequently occur in lung, colorectal, and pancreatic cancers, the three most deadly cancers in the United States. Studies within the last decade demonstrated that the covalent modification of KRAS C12, which accounts for about 10% of all RAS mutations, led to the discovery of an adjacent pocket (called the switch II pocket) that accommodated a portion of the drug. This led to the development of sotorasib as a second-line treatment of KRASG12C-mutant non-small cell lung cancer. Considerable effort also has been expended to develop MAP kinase and PI3-kinase pathway inhibitors as indirect RAS antagonists.
Insights
RAS proteins are key regulators of cell signaling, but mutations drive cancer. Targeting KRAS mutations, particularly KRAS G12C, has yielded new cancer therapies by exploiting unique binding pockets.
Area of Science:
- Molecular Biology
- Oncology
- Drug Discovery
Background:
- RAS proteins (HRAS, KRAS, NRAS) are GTPases crucial for cell growth, division, and survival.
- RAS signaling pathways (e.g., RAF-MEK-ERK, PI3K-AKT) are frequently dysregulated in cancer.
- RAS mutations occur in ~19% of cancers, with KRAS mutations being the most common (~84% of RAS mutations).
Purpose of the Study:
- To review the role of RAS proteins in cancer.
- To discuss the challenges and progress in targeting RAS mutations pharmacologically.
- To highlight the development of KRAS G12C inhibitors.
Main Methods:
- Literature review of RAS protein function, mutations, and targeted therapies.
- Analysis of the structural basis for RAS-targeting drug development.
- Examination of clinical outcomes for KRAS-targeted agents.
Main Results:
- RAS proteins act as molecular switches, with mutations leading to constitutive activation and cancer.
- The lack of deep pockets on RAS proteins historically made them 'undruggable'.
- Targeting the KRAS G12C mutation led to the development of covalent inhibitors like sotorasib.
Conclusions:
- Targeting specific RAS mutations, like KRAS G12C, is a viable therapeutic strategy.
- Exploiting newly identified pockets, such as the switch II pocket, enables high-affinity antagonist development.
- Continued research into RAS signaling and inhibitors holds promise for improved cancer treatment.
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