Oncogenic and RASopathy-associated K-RAS mutations relieve membrane-dependent occlusion of the effector-binding site

Mohammad T Mazhab-Jafari1, Christopher B Marshall1, Matthew J Smith1

  • 1Department of Medical Biophysics, Campbell Family Cancer Research Institute, Princess Margaret Cancer Centre, University of Toronto, Toronto, ON, Canada M5G 2M9;

Insights

Kirsten rat sarcoma viral oncogene homolog 4B (K-RAS4B) is autoinhibited by membrane binding, but cancer and Noonan syndrome mutations disrupt this, promoting signaling. This membrane interaction is a potential anticancer drug target.

Area of Science:

  • Molecular Biology
  • Biochemistry
  • Structural Biology

Background:

  • Kirsten rat sarcoma viral oncogene homolog 4B (K-RAS4B) is a GTPase crucial for growth factor signaling.
  • Gain-of-function KRAS mutations are common in cancers and linked to developmental syndromes.
  • The effect of these mutations on K-RAS4B membrane association and signal transduction remains unclear.

Purpose of the Study:

  • To investigate lipid bilayer-anchored K-RAS4B and its interactions with effector proteins.
  • To understand how disease-associated mutations affect K-RAS4B membrane association and effector binding.

Main Methods:

  • Solution Nuclear Magnetic Resonance (NMR) studies of K-RAS4B tethered to nanodiscs.
  • Investigated interactions with RAS-binding domains (RBDs) of effector proteins like ARAF and RALGDS.

Main Results:

  • Activated K-RAS4B's effector-binding region is occluded by membrane interaction in a highly populated conformational state.
  • Binding of ARAF and RALGDS RBDs reorients K-RAS4B to effector-bound states.
  • Noonan syndrome (K5N, D153V) and oncogenic (G12D) mutations disrupt this occlusion, altering membrane interaction electrostatics and promoting effector binding.

Conclusions:

  • K-RAS4B exhibits autoinhibition via membrane sequestration of its effector-binding site.
  • Disease-associated mutations disrupt this autoinhibition, potentially driving aberrant signaling.
  • Targeting K-RAS4B-membrane interactions offers a promising strategy for anticancer drug development.

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