Mutations of CB1 T210 produce active and inactive receptor forms: correlations with ligand affinity, receptor
Aaron M D'Antona1, Kwang H Ahn, Debra A Kendall
1Department of Molecular and Cell Biology, University of Connecticut, Storrs, Connecticut 06269-3125, USA.
Abstract:
Human cannabinoid receptor 1 (CB(1)) has attracted substantial interest as a potential therapeutic target for treating obesity and other obsessive disorders. An understanding of the mechanism governing the transition of the CB(1) receptor between its inactive and active states is critical for understanding how therapeutics can selectively regulate receptor activity. We have examined the importance of the Thr at position 210 in CB(1) in this transition, a residue predicted to be on the same face of the helix as the Arg of the DRY motif highly conserved in the G protein-coupled receptor superfamily. This Thr was substituted with Ile and Ala via mutagenesis, and the receptors, T210I and T210A, were expressed in HEK 293 cells. The T210I receptor exhibited enhanced agonist and diminished inverse agonist affinity relative to the wild type, consistent with a shift toward the active form. However, treatment with GTPgammaS to inhibit G protein coupling diminished the affinity change for the inverse agonist SR141716A. The decreased thermal stability of the T210I receptor and increased level of internalization of a T210I receptor-GFP chimera were also observed, consistent with constitutive activity. In contrast, the T210A receptor exhibited the opposite profile: diminished agonist and enhanced inverse agonist affinity. The T210A receptor was found to be more thermally stable than the wild type, and high levels of a T210A receptor-GFP chimera were localized to the cell surface as predicted for an inactive receptor form. These results suggest that T210 plays a key role in governing the transition between inactive and active CB(1) receptor states.
Insights
The Thr210 residue in the human cannabinoid receptor 1 (CB1) is crucial for regulating its transition between inactive and active states. Mutations at this site alter receptor activity, offering insights into therapeutic targeting for obesity and obsessive disorders.
Area of Science:
- Pharmacology
- Molecular Biology
- Biochemistry
Background:
- The human cannabinoid receptor 1 (CB1) is a key target for treating obesity and obsessive disorders.
- Understanding CB1 receptor's inactive-to-active state transition is vital for developing selective therapeutics.
Purpose of the Study:
- To investigate the role of Threonine at position 210 (T210) in the CB1 receptor's conformational changes.
- To elucidate how T210 influences receptor activity and G protein coupling.
Main Methods:
- Site-directed mutagenesis was used to create T210I and T210A CB1 receptor variants.
- Receptor activity was assessed by measuring agonist and inverse agonist affinities.
- G protein coupling was evaluated using GTPgammaS.
- Thermal stability and receptor internalization were analyzed using receptor-GFP chimeras.
Main Results:
- The T210I mutation shifted the CB1 receptor towards an active state, increasing agonist affinity and decreasing inverse agonist affinity.
- The T210A mutation resulted in the opposite effect, favoring an inactive state with diminished agonist affinity and enhanced inverse agonist affinity.
- T210I showed decreased thermal stability and increased internalization, indicative of constitutive activity.
- T210A exhibited increased thermal stability and cell surface localization, consistent with an inactive conformation.
Conclusions:
- T210 is a critical residue that governs the conformational transition between inactive and active states of the CB1 receptor.
- Modulating T210 function could provide a strategy for developing selective CB1 receptor modulators.
- These findings advance the understanding of G protein-coupled receptor (GPCR) activation mechanisms.
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