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In Silico to In Cerebro-Development of the Orexin Receptor Antagonist "Photorexant" for Photomodulation In Vitro and
Marcus Angermann1, Marie H Deventer2, Vicente Ledesma-Martin1,3
1Pharmazeutische und Medizinische Chemie, Institut für Pharmazie und Lebensmittelchemie, Julius-Maximilians-Universität (JMU) Würzburg, Würzburg, Germany.
Abstract:
In this study, we report the first photoswitchable small molecule dual ligands for the orexin receptor subtypes 1 (OX1R) and 2 (OX2R) as molecular tools for optical control of orexin signaling. The orexin system is critical for several physiological processes and has been increasingly implicated in the pathogenesis of various psychiatric disorders. We implemented a prospective structure-based design approach, generating azobenzene-containing derivatives of the FDA-approved dual orexin receptor antagonist suvorexant with a computational workflow that featured a novel fragmentation and azobenzene-fusion strategy. The derivatives were subsequently evaluated by molecular docking to ensure preservation of the characteristic binding mode of suvorexant. Top candidates were synthesized and characterized by photophysical and pharmacological methods, namely our recently developed β-arrestin 2 and miniGαq recruitment assays for both receptor subtypes. Optimization of the photoswitchable moiety yielded the highly potent antagonist "photorexant," exhibiting an up to 11-fold activity difference between photoisomers. A newly optimized assay protocol for the characterization of photoswitchable GPCR antagonists demonstrated dynamic, reversible photomodulation of orexin receptors by photorexant in vitro. Electrophysiological studies in hypothalamic and locus coeruleus neurons in mice demonstrated photomodulation of its antagonistic properties in vivo, positioning photorexant as an excellent tool for further investigation of orexin signaling.
Insights
Researchers developed "photorexant," the first photoswitchable dual orexin receptor antagonist. This molecular tool allows optical control of orexin signaling, crucial for physiological processes and psychiatric disorders.
Area of Science:
- Neuroscience
- Pharmacology
- Chemical Biology
Background:
- The orexin system regulates critical physiological processes.
- Dysregulation of orexin signaling is linked to psychiatric disorders.
- Novel molecular tools are needed to optically control orexin signaling.
Purpose of the Study:
- To design and synthesize photoswitchable small molecule dual ligands for orexin receptor subtypes 1 (OX1R) and 2 (OX2R).
- To develop molecular tools for optical control of orexin signaling.
- To investigate the therapeutic potential of photoswitchable orexin receptor antagonists.
Main Methods:
- Structure-based drug design and computational workflow.
- Synthesis and photophysical characterization of azobenzene-containing derivatives.
- Pharmacological evaluation using β-arrestin 2 and miniGαq recruitment assays.
- In vitro and in vivo photomodulation studies in neurons.
Main Results:
- Developed "photorexant," a potent photoswitchable dual antagonist for OX1R and OX2R.
- Photorexant exhibits an up to 11-fold activity difference between photoisomers.
- Demonstrated dynamic, reversible photomodulation of orexin receptors in vitro and in vivo.
- Photorexant effectively modulated orexin receptor activity in hypothalamic and locus coeruleus neurons.
Conclusions:
- Photorexant is the first photoswitchable small molecule dual ligand for orexin receptors.
- Photorexant serves as a valuable molecular tool for optical control of orexin signaling.
- This study opens new avenues for investigating orexin system roles in health and disease.
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