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Updated: Aug 22, 2025

Identification of Orexin and Endocannabinoid Receptors in Adult Zebrafish Using Immunoperoxidase and Immunofluorescence Methods
Published on: June 25, 2019
Modulation of sleep behavior in zebrafish larvae by pharmacological targeting of the orexin receptor
Marie Pardon1, Pieter Claes2, Sarah Druwé2
1Laboratory for Molecular Biodiscovery, Department of Pharmaceutical and Pharmacological Sciences, KU Leuven, Leuven, Belgium.
Abstract:
New pharmacological approaches that target orexin receptors (OXRs) are being developed to treat sleep disorders such as insomnia and narcolepsy, with fewer side effects than existing treatments. Orexins are neuropeptides that exert excitatory effects on postsynaptic neurons via the OXRs, and are important in regulating sleep/wake states. To date, there are three FDA-approved dual orexin receptor antagonists for the treatment of insomnia, and several small molecule oral OX2R (OXR type 2) agonists are in the pipeline for addressing the orexin deficiency in narcolepsy. To find new hypnotics and psychostimulants, rodents have been the model of choice, but they are costly and have substantially different sleep patterns to humans. As an alternative model, zebrafish larvae that like humans are diurnal and show peak daytime activity and rest at night offer several potential advantages including the ability for high throughput screening. To pharmacologically validate the use of a zebrafish model in the discovery of new compounds, we aimed in this study to evaluate the functionality of a set of known small molecule OX2R agonists and antagonists on human and zebrafish OXRs and to probe their effects on the behavior of zebrafish larvae. To this end, we developed an in vitro IP-One Homogeneous Time Resolved Fluorescence (HTRF) immunoassay, and in vivo locomotor assays that record the locomotor activity of zebrafish larvae under physiological light conditions as well as under dark-light triggers. We demonstrate that the functional IP-One test is a good predictor of biological activity in vivo. Moreover, the behavioral data show that a high-throughput assay that records the locomotor activity of zebrafish throughout the evening, night and morning is able to distinguish between OXR agonists and antagonists active on the zebrafish OXR. Conversely, a locomotor assay with alternating 30 min dark-light transitions throughout the day is not able to distinguish between the two sets of compounds, indicating the importance of circadian rhythm to their pharmacological activity. Overall, the results show that a functional IP-one test in combination with a behavioral assay using zebrafish is well-suited as a discovery platform to find novel compounds that target OXRs for the treatment of sleep disorders.
Insights
Zebrafish larvae offer a promising alternative to rodents for discovering new sleep disorder treatments targeting orexin receptors (OXRs). A functional IP-One test and locomotor assays effectively identify OXR agonists and antagonists for drug development.
Area of Science:
- Neuroscience and Pharmacology
- Drug Discovery and Development
Background:
- Orexin receptors (OXRs) are crucial for regulating sleep-wake states, and targeting them offers a new approach for treating sleep disorders like insomnia and narcolepsy.
- Current treatments include dual orexin receptor antagonists, with OX2R agonists in development for narcolepsy.
- Rodent models, while common, are costly and have differing sleep patterns compared to humans, necessitating alternative models.
Purpose of the Study:
- To pharmacologically validate the zebrafish larvae model for discovering novel compounds targeting orexin receptors (OXRs).
- To evaluate the functionality of known OX2R agonists and antagonists on human and zebrafish OXRs.
- To assess the effects of these compounds on zebrafish larvae behavior.
Main Methods:
- Development of an in vitro IP-One Homogeneous Time Resolved Fluorescence (HTRF) immunoassay to test compound functionality on OXRs.
- In vivo locomotor assays recording zebrafish larvae activity under physiological light and dark-light triggered conditions.
- Comparison of compound effects on zebrafish behavior across different light/dark cycle durations and timings.
Main Results:
- The in vitro IP-One test effectively predicted the in vivo biological activity of OXR agonists and antagonists.
- High-throughput locomotor assays monitoring zebrafish activity over extended periods (evening, night, morning) distinguished between OXR agonists and antagonists.
- Locomotor assays with short, alternating dark-light transitions throughout the day failed to differentiate compound activities, highlighting the role of circadian rhythms.
Conclusions:
- The zebrafish larvae model, combined with functional IP-One and behavioral assays, is a suitable platform for discovering novel orexin receptor (OXR) targeting compounds.
- This approach can aid in developing new treatments for sleep disorders with potentially fewer side effects.
- The study underscores the importance of circadian rhythm in assessing the pharmacological activity of OXR modulators.

