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Oncogenic KRAS G12C: Kinetic and redox characterization of covalent inhibition
Minh V Huynh1, Derek Parsonage2, Tom E Forshaw3
1Department of Biochemistry & Biophysics, University of North Carolina at Chapel Hill, Chapel Hill, North Carolina, USA.
Abstract:
The recent development of mutant-selective inhibitors for the oncogenic KRASG12C allele has generated considerable excitement. These inhibitors covalently engage the mutant C12 thiol located within the phosphoryl binding loop of RAS, locking the KRASG12C protein in an inactive state. While clinical trials of these inhibitors have been promising, mechanistic questions regarding the reactivity of this thiol remain. Here, we show by NMR and an independent biochemical assay that the pKa of the C12 thiol is depressed (pKa ∼7.6), consistent with susceptibility to chemical ligation. Using a validated fluorescent KRASY137W variant amenable to stopped-flow spectroscopy, we characterized the kinetics of KRASG12C fluorescence changes upon addition of ARS-853 or AMG 510, noting that at low temperatures, ARS-853 addition elicited both a rapid first phase of fluorescence change (attributed to binding, Kd = 36.0 ± 0.7 μM) and a second, slower pH-dependent phase, taken to represent covalent ligation. Consistent with the lower pKa of the C12 thiol, we found that reversible and irreversible oxidation of KRASG12C occurred readily both in vitro and in the cellular environment, preventing the covalent binding of ARS-853. Moreover, we found that oxidation of the KRASG12C Cys12 to a sulfinate altered RAS conformation and dynamics to be more similar to KRASG12D in comparison to the unmodified protein, as assessed by molecular dynamics simulations. Taken together, these findings provide insight for future KRASG12C drug discovery efforts, and identify the occurrence of G12C oxidation with currently unknown biological ramifications.
Insights
KRAS G12C inhibitors target a reactive thiol, but its low pKa leads to oxidation, hindering drug binding. This oxidation alters RAS conformation, impacting future drug discovery for KRAS G12C mutations.
Area of Science:
- Molecular Biology
- Oncology
- Biochemistry
Background:
- Mutant-selective inhibitors targeting the KRAS G12C allele are a promising therapeutic strategy.
- These inhibitors function by covalently binding to the C12 thiol of KRAS G12C, rendering it inactive.
Purpose of the Study:
- To investigate the reactivity and pKa of the C12 thiol in KRAS G12C.
- To characterize the kinetics of inhibitor binding and covalent ligation.
- To explore the impact of KRAS G12C oxidation on protein conformation and dynamics.
Main Methods:
- Nuclear Magnetic Resonance (NMR) spectroscopy
- Biochemical assays
- Stopped-flow spectroscopy using a fluorescent KRAS Y137W variant
- Molecular dynamics simulations
Main Results:
- The pKa of the C12 thiol in KRAS G12C was found to be depressed (approximately 7.6), indicating susceptibility to chemical ligation.
- Kinetics studies revealed distinct phases for ARS-853 binding and pH-dependent covalent ligation.
- KRAS G12C readily undergoes oxidation in vitro and in cells, preventing inhibitor binding.
- Oxidation of Cys12 to a sulfinate alters RAS conformation and dynamics, mimicking KRAS G12D.
Conclusions:
- The depressed pKa and susceptibility to oxidation of the KRAS G12C thiol present challenges for covalent inhibitor development.
- Oxidation of KRAS G12C has significant conformational and dynamic consequences.
- These findings offer crucial insights for optimizing future KRAS G12C drug discovery strategies.
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