| Literature DB >> 25246509 |
Ying Huang1, Kristopher Yoon2, Ho Ko3, Song Jiao4, Wataru Ito5, Jian-Young Wu6, Wing-Ho Yung3, Bai Lu7, Alexei Morozov5.
Abstract
Gamma-frequency oscillatory activity plays an important role in information integration across brain areas. Disruption in gamma oscillations is implicated in cognitive impairments in psychiatric disorders, and 5-HT3 receptors (5-HT3Rs) are suggested as therapeutic targets for cognitive dysfunction in psychiatric disorders. Using a 5-HT3aR-EGFP transgenic mouse line and inducing gamma oscillations by carbachol in hippocampal slices, we show that activation of 5-HT3aRs, which are exclusively expressed in cholecystokinin (CCK)-containing interneurons, selectively suppressed and desynchronized firings in these interneurons by enhancing spike-frequency accommodation in a small conductance potassium (SK)-channel-dependent manner. Parvalbumin-positive interneurons therefore received diminished inhibitory input leading to increased but desynchronized firings of PV cells. As a consequence, the firing of pyramidal neurons was desynchronized and gamma oscillations were impaired. These effects were independent of 5-HT3aR-mediated CCK release. Our results therefore revealed an important role of 5-HT3aRs in gamma oscillations and identified a novel crosstalk among different types of interneurons for regulation of network oscillations. The functional link between 5-HT3aR and gamma oscillations may have implications for understanding the cognitive impairments in psychiatric disorders.Entities:
Keywords: 5-HT3a receptors; CCK interneurons; PV interneurons; gamma oscillations; hippocampus
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Year: 2014 PMID: 25246509 PMCID: PMC4712794 DOI: 10.1093/cercor/bhu209
Source DB: PubMed Journal: Cereb Cortex ISSN: 1047-3211 Impact factor: 5.357