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Updated: May 31, 2026

HSV-Mediated Transgene Expression of Chimeric Constructs to Study Behavioral Function of GPCR Heteromers in Mice
Published on: July 9, 2016
Chimeric, mutant orexin receptors show key interactions between orexin receptors, peptides and antagonists
Da-Thao Tran1, Pascal Bonaventure, Michael Hack
1Neuroscience Drug Discovery, Johnson & Johnson Pharmaceutical Research & Development, LLC, 3210 Merryfield Row, San Diego, CA 92121, USA. DTran2@its.jnj.com
Abstract:
Orexin receptor antagonists are being investigated as therapeutic agents for insomnia and addictive disorders. In this study the interactions between the orexin receptors (orexin 1 receptor and orexin 2 receptor), orexin peptides, and small molecule orexin antagonists were explored. To study these phenomena, a variety of mutant orexin receptors was made and tested using receptor binding and functional assays. Domains of the two orexin receptors were exchanged to show the critical ligand binding domains for orexin peptides and representative selective orexin receptor antagonists. Results from domain exchanges between the orexin receptors suggest that transmembrane domain 3 is crucially important for receptor interactions with small molecule antagonists. These data also suggest that the orexin peptides occupy a larger footprint, interacting with transmembrane domain 1, the amino terminus and transmembrane domain 5 as well as transmembrane domain 3. Transmembrane domain 3 has been shown to be an important part of the small molecule binding pocket common to rhodopsin and β2-adrenergic receptors. Additional orexin receptor 2 point mutations were made based on the common arrangement of receptor transmembrane domains shown in the G-protein coupled receptor crystal structure literature and the impact of orexin 2 receptor residue threonine 135 on the ligand selectivity of the 2 orexin receptors. These data support a model of the orexin receptor binding pocket in which transmembrane domains 3 and 5 are prominent contributors to ligand binding and functional activity. The data also illustrate key contact points for ligand interactions in the consensus small molecule pocket of these receptors.
Insights
Orexin receptor antagonists are key for treating insomnia and addiction. This study reveals how orexin peptides and antagonists bind to orexin receptors, identifying critical transmembrane domains for drug development.
Area of Science:
- Pharmacology and Neuroscience
- G-protein coupled receptor (GPCR) research
Background:
- Orexin receptor antagonists are investigated for insomnia and addiction.
- Understanding orexin receptor binding is crucial for therapeutic development.
Purpose of the Study:
- To explore interactions between orexin receptors, orexin peptides, and small molecule antagonists.
- To identify critical domains within orexin receptors responsible for ligand binding.
Main Methods:
- Creation and testing of mutant orexin receptors using binding and functional assays.
- Domain exchange experiments between orexin 1 and orexin 2 receptors.
- Site-directed mutagenesis of orexin receptor 2 based on GPCR structural data.
Main Results:
- Transmembrane domain 3 is critical for small molecule antagonist binding.
- Orexin peptides interact with a larger binding site, including transmembrane domains 1, 3, and 5, and the amino terminus.
- Residue threonine 135 in orexin receptor 2 influences ligand selectivity.
Conclusions:
- A model of the orexin receptor binding pocket highlights the importance of transmembrane domains 3 and 5 for ligand interactions.
- Identified key contact points provide insights for designing selective orexin receptor antagonists.
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