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The Mutant KRAS G12V genomic locus refers to the specific chromosomal site of a missense mutation in the KRAS gene, where glycine is substituted by valine at codon 12. This genetic alteration results in the production of the KRAS G12V protein, a member of the small GTPase family that plays a pivotal role in intracellular signal transduction [1]. The G12V mutation impairs the protein's ability to hydrolyze GTP, locking it in a constitutively active state that drives oncogenic signaling through the MAPK and PI3K pathways [2]. This mutation is a hallmark of several aggressive cancers, particularly pancreatic ductal adenocarcinoma and colorectal cancer, where it promotes uncontrolled cell growth and survival [3]. Historically considered undruggable, the KRAS G12V protein is now the focus of intense therapeutic development, with non-covalent inhibitors like MRTX1133 designed to bind the switch II pocket and inhibit its activity [4]. Beyond protein inhibition, the genomic locus itself is a potential target for gene-editing technologies such as CRISPR/Cas9, which aim to permanently disrupt the oncogenic driver [5]. Understanding the interplay between the genomic mutation and the resulting protein function is essential for developing effective precision medicines for patients harboring this specific mutation.
Non-covalent inhibition of the KRAS G12V protein by binding to the switch II pocket, stabilizing the inactive state or preventing effector binding in the active state.
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