5-HT1A, SST1, and SST2receptors mediate inhibitory postsynaptic potentials in the submucous plexus of the guinea pig ileum

Author:

Foong Jaime Pei Pei1,Parry Laura J.2,Gwynne Rachel M.1,Bornstein Joel C.1

Affiliation:

1. Departments of Physiology and

2. Zoology, University of Melbourne, Parkville, Victoria, Australia

Abstract

Vasoactive intestinal peptide (VIP) immunoreactive neurons are important secretomotor neurons in the submucous plexus. They are the only submucosal neurons to receive inhibitory inputs and exhibit both noradrenergic and nonadrenergic inhibitory synaptic potentials (IPSPs). The former are mediated by α2-adrenoceptors, but the receptors mediating the latter have not been identified. We used standard intracellular recording, RT-PCR, and confocal microscopy to test whether 5-HT1A, SST1, and/or SST2receptors mediate nonadrenergic IPSPs in VIP submucosal neurons in guinea pig ileum in vitro. The specific 5-HT1Areceptor antagonist WAY 100135 (1 μM) reduced the amplitude of IPSPs, an effect that persisted in the presence of the α2-adrenoceptor antagonist idazoxan (2 μM), suggesting that 5-HT might mediate a component of the IPSPs. Confocal microscopy revealed that there were many 5-HT-immunoreactive varicosities in close contact with VIP neurons. The specific SSTR2antagonist CYN 154806 (100 nM) and a specific SSTR1antagonist SRA 880 (3 μM) each reduced the amplitude of nonadrenergic IPSPs and hyperpolarizations evoked by somatostatin. In contrast with the other antagonists, CYN 154806 also reduced the durations of nonadrenergic IPSPs. Effects of WAY 100135 and CYN 154806 were additive. RT-PCR revealed gene transcripts for 5-HT1A, SST1, and SST2receptors in stripped submucous plexus preparations consistent with the pharmacological data. Although the involvement of other neurotransmitters or receptors cannot be excluded, we conclude that 5-HT1A, SST1, and SST2receptors mediate nonadrenergic IPSPs in the noncholinergic (VIP) secretomotor neurons. This study thus provides the tools to identify functions of enteric neural pathways that inhibit secretomotor reflexes.

Publisher

American Physiological Society

Subject

Physiology (medical),Gastroenterology,Hepatology,Physiology

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