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Catalytic site mutations confer multiple states of G protein activation
Natalie Hewitt1, Ning Ma2, Nadia Arang3,4
1Department of Pharmacology, University of North Carolina at Chapel Hill, Chapel Hill, NC 27599, USA.
Abstract:
Heterotrimeric guanine nucleotide-binding proteins (G proteins) that function as molecular switches for cellular growth and metabolism are activated by GTP and inactivated by GTP hydrolysis. In uveal melanoma, a conserved glutamine residue critical for GTP hydrolysis in the G protein α subunit is often mutated in Gαq or Gα11 to either leucine or proline. In contrast, other glutamine mutations or mutations in other Gα subtypes are rare. To uncover the mechanism of the genetic selection and the functional role of this glutamine residue, we analyzed all possible substitutions of this residue in multiple Gα isoforms. Through cell-based measurements of activity, we showed that some mutants were further activated and inactivated by G protein-coupled receptors. Through biochemical, molecular dynamics, and nuclear magnetic resonance-based structural studies, we showed that the Gα mutants were functionally distinct and conformationally diverse, despite their shared inability to hydrolyze GTP. Thus, the catalytic glutamine residue contributes to functions beyond GTP hydrolysis, and these functions include subtype-specific, allosteric modulation of receptor-mediated subunit dissociation. We conclude that G proteins do not function as simple on-off switches. Rather, signaling emerges from an ensemble of active states, a subset of which are favored in disease and may be uniquely responsive to receptor-directed ligands.
Insights
Mutations in G protein alpha subunits, common in uveal melanoma, reveal these proteins are not simple on-off switches. Signaling involves diverse active states, some favored in disease, offering new therapeutic targets.
Area of Science:
- Molecular Biology
- Biochemistry
- Cellular Signaling
Background:
- Heterotrimeric guanine nucleotide-binding proteins (G proteins) regulate cellular processes.
- Specific mutations in Gαq or Gα11 subunits are prevalent in uveal melanoma.
- A conserved glutamine residue is critical for G protein inactivation via GTP hydrolysis.
Purpose of the Study:
- Investigate the mechanism of genetic selection for specific G protein mutations.
- Determine the functional role of the conserved glutamine residue in G protein activity.
- Explore the conformational and functional diversity of G protein alpha subunit mutants.
Main Methods:
- Analysis of all possible substitutions for the critical glutamine residue in Gα isoforms.
- Cell-based assays to measure G protein activity.
- Biochemical, molecular dynamics, and nuclear magnetic resonance (NMR) studies.
Main Results:
- Mutant Gα proteins exhibit diverse functional and conformational properties despite impaired GTP hydrolysis.
- Some mutants show altered activation and inactivation by G protein-coupled receptors.
- The catalytic glutamine residue influences allosteric modulation of receptor-mediated subunit dissociation.
Conclusions:
- G proteins operate as a dynamic ensemble of active states, not simple on-off switches.
- Specific G protein active states are favored in uveal melanoma.
- Understanding these disease-associated states may lead to novel receptor-targeted therapies.
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