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The orexin system as a pharmacological target in inflammation: peripheral mechanisms and safety implications
Daniel Stránský1, Michal Barabas1,2, Martin Šíma1
1Department of Pharmacology, First Faculty of Medicine, Charles University and General University Hospital, Prague, Czechia.
Abstract:
The orexin (hypocretin) system, composed of the neuropeptides orexin A and orexin B and their receptors OX1R and OX2R, is primarily known for its role in sleep-wake regulation and energy homeostasis. Increasing evidence indicates that orexin signaling also participates in the regulation of inflammatory processes. This review examines the pharmacological relevance of the orexin system in immune modulation, with particular emphasis on potential peripheral mechanisms that may represent novel therapeutic targets. Current evidence suggests that orexins may influence inflammatory responses through both central and peripheral pathways, including modulation of the hypothalamic-pituitary-adrenal axis, autonomic nervous system activity, regulation of adrenal corticosteroid secretion, reduction of oxidative stress, and potential direct effects on immune cells expressing orexin receptors. A major unresolved question is the origin and function of circulating orexin peptides detected in human plasma despite their predominantly central production. We also review the limited pharmacokinetic data available for orexin peptides and evaluate reported plasma concentrations, highlighting substantial methodological variability that complicates interpretation of circulating levels and their potential peripheral sources. Distinguishing between central and peripheral orexin actions is pharmacologically important. While orexin receptor antagonists are already approved for insomnia and agonists are being developed for narcolepsy, their potential effects on immune function warrant further consideration. Conversely, peripheral or immune-specific variants of orexin signaling could represent promising therapeutic targets with reduced central nervous system effects.
Insights
The orexin system regulates sleep and energy, but also influences inflammation. Targeting peripheral orexin signaling may offer new therapeutic strategies with fewer central nervous system side effects.
Area of Science:
- Neuroimmunology
- Endocrinology
- Pharmacology
Background:
- The orexin (hypocretin) system, comprising orexin A/B peptides and OX1R/OX2R receptors, is crucial for sleep-wake cycles and energy balance.
- Emerging research highlights the orexin system's involvement in modulating inflammatory processes.
Purpose of the Study:
- To review the pharmacological significance of the orexin system in immune modulation.
- To explore potential peripheral mechanisms of orexin signaling as novel therapeutic targets for inflammatory conditions.
Main Methods:
- Literature review of existing studies on orexin signaling and immune function.
- Analysis of evidence for both central and peripheral orexin pathways influencing inflammation.
- Evaluation of pharmacokinetic data and plasma concentrations of orexin peptides.
Main Results:
- Orexin signaling impacts inflammatory responses via central and peripheral routes, including HPA axis modulation, autonomic activity, and direct immune cell effects.
- The origin and function of circulating orexin peptides remain unclear, with significant variability in reported plasma concentrations.
- Distinguishing central from peripheral orexin actions is critical for therapeutic development.
Conclusions:
- The orexin system's role extends beyond sleep and energy homeostasis to immune modulation.
- Peripheral orexin signaling pathways present promising therapeutic targets for inflammatory diseases with potentially reduced CNS side effects.
- Further research is needed to clarify circulating orexin dynamics and their immune implications.
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