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Muscular effects of orexin A on the mouse duodenum: mechanical and electrophysiological studies
Roberta Squecco1, Rachele Garella, Giorgia Luciani
1Dipartimento di Scienze Fisiologiche, Università di Firenze, Firenze, Italy.
Abstract:
Orexin A (OXA) has been reported to influence gastrointestinal motility, acting at both central and peripheral neural levels. The aim of the present study was to evaluate whether OXA also exerts direct effects on the duodenal smooth muscle. The possible mechanism of action involved was investigated by employing a combined mechanical and electrophysiological approach. Duodenal segments were mounted in organ baths for isometric recording of the mechanical activity. Ionic channel activity was recorded in current- and voltage-clamp conditions by a single microelectrode inserted in a duodenal longitudinal muscle cell. In the duodenal preparations, OXA (0.3 μM) caused a TTX-insensitive transient contraction. Nifedipine (1 μM), as well as 2-aminoethyl diphenyl borate (10 μM), reduced the amplitude and shortened the duration of the response to OXA, which was abolished by Ni(2+) (50 μM) or TEA (1 mM). Electrophysiological studies in current-clamp conditions showed that OXA caused an early depolarization, which paralleled in time the contractile response, followed by a long-lasting depolarization. Such a depolarization was triggered by activation of receptor-operated Ca(2+) channels and enhanced by activation of T- and L-type Ca(2+) channels and store-operated Ca(2+) channels and by inhibition of K(+) channels. Experiments in voltage-clamp conditions demonstrated that OXA affects not only receptor-operated Ca(2+) channels, but also the maximal conductance and kinetics of activation and inactivation of Na(+), T- and L-type Ca(2+) voltage-gated channels. The results demonstrate, for the first time, that OXA exerts direct excitatory effects on the mouse duodenal smooth muscle. Finally, this work demonstrates new findings related to the expression and kinetics of the voltage-gated channel types, as well as store-operated Ca(2+) channels.
Insights
Orexin A (OXA) directly stimulates mouse duodenal smooth muscle contraction by affecting various calcium and potassium channels. This study reveals OXA
Area of Science:
- Gastroenterology
- Neuroscience
- Pharmacology
Background:
- Orexin A (OXA) is known to modulate gastrointestinal motility via central and peripheral neural pathways.
- The direct impact of OXA on duodenal smooth muscle has not been previously elucidated.
Purpose of the Study:
- To investigate the direct effects of Orexin A on duodenal smooth muscle.
- To explore the underlying mechanisms of OXA-mediated duodenal smooth muscle activity.
Main Methods:
- Isometric recording of duodenal smooth muscle mechanical activity in organ baths.
- Electrophysiological recordings (current-clamp and voltage-clamp) of duodenal longitudinal muscle cells.
- Pharmacological manipulation using channel blockers (Nifedipine, Ni(2+), TEA) and TTX.
Main Results:
- Orexin A induced a Tetrodotoxin-insensitive contraction in duodenal segments.
- OXA caused both transient and long-lasting depolarization in muscle cells.
- OXA modulated receptor-operated, store-operated, and voltage-gated (Na+, T-type Ca2+, L-type Ca2+) ion channels.
Conclusions:
- Orexin A exerts direct excitatory effects on mouse duodenal smooth muscle.
- OXA's action involves the activation of specific calcium channels and inhibition of potassium channels.
- This study provides novel insights into ion channel kinetics and regulation in duodenal smooth muscle.
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