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Allosteric Regulation of Switch-II Domain Controls KRAS Oncogenicity
Moon Hee Yang1,2, Timothy H Tran3, Bethany Hunt1
1Department of Cancer Biology, Dana-Farber Cancer Institute, Boston, Massachusetts.
Abstract:
RAS proteins are GTPases that regulate a wide range of cellular processes. RAS activity is dependent on its nucleotide-binding status, which is modulated by guanine nucleotide exchange factors (GEF) and GTPase-activating proteins (GAP). KRAS can be acetylated at lysine 104 (K104), and an acetylation-mimetic mutation of K104 to glutamine (K104Q) attenuates the in vitro-transforming capacity of oncogenic KRAS by interrupting GEF-induced nucleotide exchange. To assess the effect of this mutation in vivo, we used CRISPR-Cas9 to generate mouse models carrying the K104Q point mutation in wild-type and conditional KrasLSL-G12D alleles. Homozygous animals for K104Q were viable, fertile, and arose at the expected Mendelian frequency, indicating that K104Q is not a complete loss-of-function mutation. Consistent with our previous findings from in vitro studies, however, the oncogenic activity of KRASG12D was significantly attenuated by mutation at K104. Biochemical and structural analysis indicated that the G12D and K104Q mutations cooperate to suppress GEF-mediated nucleotide exchange, explaining the preferential effect of K104Q on oncogenic KRAS. Furthermore, K104 functioned in an allosteric network with M72, R73, and G75 on the α2 helix of the switch-II region. Intriguingly, point mutation of glycine 75 to alanine (G75A) also showed a strong negative regulatory effect on KRASG12D. These data demonstrate that lysine at position 104 is critical for the full oncogenic activity of mutant KRAS and suggest that modulating the sites in its allosteric network may provide a unique therapeutic approach in cancers expressing mutant KRAS.
Significance:
An allosteric network formed by interaction between lysine 104 and residues in the switch-II domain is required for KRAS oncogenicity, which could be exploited for developing inhibitors of the activated oncoprotein.
Insights
Lysine 104 acetylation is critical for KRAS oncogenic activity. Targeting this site and its allosteric network offers a novel therapeutic strategy for KRAS-driven cancers.
Area of Science:
- Molecular Biology
- Oncology
- Biochemistry
Background:
- RAS proteins, including KRAS, are key regulators of cellular processes.
- KRAS activity relies on nucleotide binding, modulated by GEFs and GAPs.
- Acetylation of KRAS at lysine 104 (K104) impacts its transforming capacity.
Purpose of the Study:
- To investigate the in vivo effect of the K104Q mutation on KRAS oncogenic activity.
- To elucidate the allosteric network involving K104 and its role in KRAS function.
- To explore therapeutic strategies targeting the KRAS allosteric network.
Main Methods:
- CRISPR-Cas9 gene editing to create mouse models with K104Q mutation.
- Biochemical and structural analyses of KRAS mutations.
- Assessment of oncogenic activity in vivo and in vitro.
Main Results:
- The K104Q mutation alone did not cause loss of function but significantly attenuated KRASG12D oncogenic activity.
- K104Q and G12D mutations cooperate to suppress GEF-mediated nucleotide exchange.
- K104 is part of an allosteric network with switch-II residues (M72, R73, G75).
- Mutation at G75 also demonstrated a negative regulatory effect on KRASG12D.
Conclusions:
- Lysine 104 is essential for the full oncogenic potential of mutant KRAS.
- The allosteric network involving K104 is crucial for KRAS oncogenicity.
- Targeting this allosteric network presents a promising therapeutic avenue for KRAS-mutant cancers.
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