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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.
Abstract:
KRAS forms transient dimers and higher-order multimers (nanoclusters) on the plasma membrane, which drive MAPK signaling and cell proliferation. KRAS is a frequently mutated oncogene, and while it is well known that the most prevalent mutation, G12D, impairs GTP hydrolysis, thereby increasing KRAS activation, G12D has also been shown to enhance nanoclustering. Elucidating structures of dynamic KRAS assemblies on a membrane has been challenging, thus we have refined our NMR approach that uses nanodiscs to study KRAS associated with membranes. We incorporated paramagnetic relaxation enhancement (PRE) titrations and interface mutagenesis, which revealed that, in addition to the symmetric 'α-α' dimerization interface shared with wild-type KRAS, the G12D mutant also self-associates through an asymmetric 'α-β' interface. The 'α-β' association is dependent on the presence of phosphatidylserine lipids, consistent with previous reports that this lipid promotes KRAS self-assembly on the plasma membrane in cells. Experiments using engineered mutants to spoil each interface, together with PRE probes attached to the membrane or free in solvent, suggest that dimerization through the primary 'α-α' interface releases β interfaces from the membrane promoting formation of the secondary 'α-β' interaction, potentially initiating nanoclustering. In addition, the small molecule BI-2852 binds at a β-β interface, stabilizing a new dimer configuration that outcompetes native dimerization and blocks the effector-binding site. Our data indicate that KRAS self-association involves a delicately balanced conformational equilibrium between transient states, which is sensitive to disease-associated mutation and small molecule inhibitors. The methods developed here are applicable to biologically important transient interactions involving other membrane-associated proteins.
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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