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.

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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