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Published on: July 17, 2019
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;
Abstract:
K-RAS4B (Kirsten rat sarcoma viral oncogene homolog 4B) is a prenylated, membrane-associated GTPase protein that is a critical switch for the propagation of growth factor signaling pathways to diverse effector proteins, including rapidly accelerated fibrosarcoma (RAF) kinases and RAS-related protein guanine nucleotide dissociation stimulator (RALGDS) proteins. Gain-of-function KRAS mutations occur frequently in human cancers and predict poor clinical outcome, whereas germ-line mutations are associated with developmental syndromes. However, it is not known how these mutations affect K-RAS association with biological membranes or whether this impacts signal transduction. Here, we used solution NMR studies of K-RAS4B tethered to nanodiscs to investigate lipid bilayer-anchored K-RAS4B and its interactions with effector protein RAS-binding domains (RBDs). Unexpectedly, we found that the effector-binding region of activated K-RAS4B is occluded by interaction with the membrane in one of the NMR-observable, and thus highly populated, conformational states. Binding of the RAF isoform ARAF and RALGDS RBDs induced marked reorientation of K-RAS4B from the occluded state to RBD-specific effector-bound states. Importantly, we found that two Noonan syndrome-associated mutations, K5N and D153V, which do not affect the GTPase cycle, relieve the occluded orientation by directly altering the electrostatics of two membrane interaction surfaces. Similarly, the most frequent KRAS oncogenic mutation G12D also drives K-RAS4B toward an exposed configuration. Further, the D153V and G12D mutations increase the rate of association of ARAF-RBD with lipid bilayer-tethered K-RAS4B. We revealed a mechanism of K-RAS4B autoinhibition by membrane sequestration of its effector-binding site, which can be disrupted by disease-associated mutations. Stabilizing the autoinhibitory interactions between K-RAS4B and the membrane could be an attractive target for anticancer drug discovery.
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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