Oncogenic KRAS G12D mutation promotes dimerization through a second, phosphatidylserine-dependent interface: a model

Ki-Young Lee1, Masahiro Enomoto1, Teklab Gebregiworgis1

  • 1Princess Margaret Cancer Centre, University Health Network Toronto Ontario M5G 1L7 Canada mitsu.ikura@uhnresearch.ca chris.marshall@uhnresearch.ca.

Chemical Science
|October 27, 2021
PubMed

Insights

The KRAS G12D mutation promotes cancer by enhancing protein nanoclustering via new interfaces. A novel NMR method revealed these interactions and how BI-2852 inhibits KRAS assembly.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Structural Biology

Background:

  • KRAS protein forms dimers and nanoclusters on cell membranes, driving MAPK signaling and proliferation.
  • The KRAS G12D mutation, common in cancer, impairs GTP hydrolysis and enhances nanoclustering.
  • Studying dynamic KRAS membrane assemblies is challenging.

Purpose of the Study:

  • To elucidate the structural basis of KRAS G12D mutant self-association on membranes.
  • To investigate the role of specific lipid interactions in KRAS nanoclustering.
  • To characterize the mechanism of action for small molecule inhibitors targeting KRAS assembly.

Main Methods:

  • Refined NMR spectroscopy using nanodiscs to study membrane-associated KRAS.
  • Paramagnetic relaxation enhancement (PRE) titrations and interface mutagenesis.
  • Utilized engineered mutants and PRE probes to map KRAS interfaces and interactions.

Main Results:

  • Identified a novel asymmetric 'α-β' dimerization interface for KRAS G12D, dependent on phosphatidylserine lipids.
  • Proposed a model where 'α-α' dimerization facilitates the formation of 'α-β' interfaces, initiating nanoclustering.
  • Demonstrated that BI-2852 binds a β-β interface, stabilizing an inhibitory dimer configuration.

Conclusions:

  • KRAS self-association involves a dynamic equilibrium sensitive to mutations and inhibitors.
  • The G12D mutation alters KRAS assembly through distinct interfaces, promoting oncogenic signaling.
  • Developed methods applicable to studying other transient membrane protein interactions.

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