4.7 Article

Persistent Discharges in Dentate Gyrus Perisoma-Inhibiting Interneurons Require Hyperpolarization-Activated Cyclic Nucleotide-Gated Channel Activation

期刊

JOURNAL OF NEUROSCIENCE
卷 35, 期 10, 页码 4131-4139

出版社

SOC NEUROSCIENCE
DOI: 10.1523/JNEUROSCI.3671-14.2015

关键词

basket cell; dentate gyrus; GABA; HCN; interneuron; persistent firing

资金

  1. Schram Foundation
  2. Lichtenberg Professorship Award (Volkswagen Foundation)
  3. German Research Foundation [BA1582/2-1, FOR2143]
  4. Molecular and Translational Research in Freiburg (MOTI-VATE) Program of the Medical Faculty, University of Freiburg (Else Kroner-Fresenius Foundation)
  5. BrainLinks-BrainTools, Cluster of Excellence - German Research Foundation [EXC 1086]

向作者/读者索取更多资源

Parvalbumin (PV)-expressing perisoma-inhibiting interneurons (PIIs) of the dentate gyrus integrate rapidly correlated synaptic inputs and generate short-duration action potentials that propagate along the axon to their output synapses, supporting fast inhibitory signaling onto their target cells. Here we show that PV-PIIs in rat and mouse dentate gyrus (DG) integrate their intrinsic activity over time and can turn into a persistent firing mode characterized by the ability to generate long-lasting trains of action potentials at similar to 50 Hz in the absence of additional inputs. Persistent firing emerges in the axons remote from the axon initial segment and markedly depends on hyperpolarization-activated cyclic nucleotide-gated channel (HCNC) activation. Persistent firing properties are modulated by intracellular Ca2+ levels and somatic membrane potential. Detailed computational single-cell PIIs models reveal that HCNC-mediated conductances can contribute to persistent firing during conditions of a shift in their voltage activation curve to more depolarized potentials. Paired recordings from PIIs and their target granule cells show that persistent firing supports strong inhibitory output signaling. Thus, persistent firing may emerge during conditions of intense activation of the network, thereby providing silencing to the circuitry and the maintenance of sparse activity in the dentate gyrus.

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