Unitary IPSPs enhance hilar mossy cell gain in the rat hippocampus

Mechanisms that control neuronal gain allow for adaptive rescaling to synaptic inputs of varying strengths or frequencies. Here, we show that unitary IPSPs (uIPSPs) modulate gain and unitary EPSP (uEPSP)-action potential coupling in mossy cells (MCs) from rat hippocampal slices. Mossy fibre-evoked u...

Full description

Bibliographic Details
Main Authors: Kerr, A, Capogna, M
Format: Journal article
Language:English
Published: 2007
_version_ 1797059070161584128
author Kerr, A
Capogna, M
author_facet Kerr, A
Capogna, M
author_sort Kerr, A
collection OXFORD
description Mechanisms that control neuronal gain allow for adaptive rescaling to synaptic inputs of varying strengths or frequencies. Here, we show that unitary IPSPs (uIPSPs) modulate gain and unitary EPSP (uEPSP)-action potential coupling in mossy cells (MCs) from rat hippocampal slices. Mossy fibre-evoked uEPSCs were large, facilitated and were suppressed by the group II metabotropic glutamate agonist LY354740. Conversely, uIPSCs were smaller, depressed and were not affected by LY354740, but exerted strong inhibitory control over uEPSP-action potential coupling. The IPSC reversal potential was determined by gramicidin perforated patch recordings to be -65.3 ± 5.0 mV, lying between the resting membrane potential (-75.3 ± 1.1 mV) and the action potential threshold (-56.5 ± 2.4 mV). When applied at theta frequency (10 Hz), uIPSPs increased the offset of the MC input-output response to depolarizing current injection, but also increased gain, maximal firing rate and the slope of the depolarization preceding action potentials. These effects were unchanged by the Ca2+ and HCN channel blockers mibefradil and ZD7288, respectively. The height and maximal slope of MC action potentials during tonic depolarization were also increased by uIPSPs, and the decay of uIPSP conductances injected by dynamic clamp at subthreshold membrane potentials was prolonged by TTX. Application of the muscarinic agonist pilocarpine mimicked the effect of IPSPs on MC maximal firing rate, and action potential height and slope, and this was reversed by the GABAA antagonist gabazine. Thus, uIPSPs can increase neuronal gain under hyperexcitable conditions, and this effect is probably due to the de-inactivation of a TTX-sensitive voltage-dependent Na+ conductance. © 2007 The Authors. Journal compilation © 2007 The Physiological Society.
first_indexed 2024-03-06T19:59:03Z
format Journal article
id oxford-uuid:26a49e79-70c6-4279-a86a-d3d0f690d658
institution University of Oxford
language English
last_indexed 2024-03-06T19:59:03Z
publishDate 2007
record_format dspace
spelling oxford-uuid:26a49e79-70c6-4279-a86a-d3d0f690d6582022-03-26T12:02:07ZUnitary IPSPs enhance hilar mossy cell gain in the rat hippocampusJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:26a49e79-70c6-4279-a86a-d3d0f690d658EnglishSymplectic Elements at Oxford2007Kerr, ACapogna, MMechanisms that control neuronal gain allow for adaptive rescaling to synaptic inputs of varying strengths or frequencies. Here, we show that unitary IPSPs (uIPSPs) modulate gain and unitary EPSP (uEPSP)-action potential coupling in mossy cells (MCs) from rat hippocampal slices. Mossy fibre-evoked uEPSCs were large, facilitated and were suppressed by the group II metabotropic glutamate agonist LY354740. Conversely, uIPSCs were smaller, depressed and were not affected by LY354740, but exerted strong inhibitory control over uEPSP-action potential coupling. The IPSC reversal potential was determined by gramicidin perforated patch recordings to be -65.3 ± 5.0 mV, lying between the resting membrane potential (-75.3 ± 1.1 mV) and the action potential threshold (-56.5 ± 2.4 mV). When applied at theta frequency (10 Hz), uIPSPs increased the offset of the MC input-output response to depolarizing current injection, but also increased gain, maximal firing rate and the slope of the depolarization preceding action potentials. These effects were unchanged by the Ca2+ and HCN channel blockers mibefradil and ZD7288, respectively. The height and maximal slope of MC action potentials during tonic depolarization were also increased by uIPSPs, and the decay of uIPSP conductances injected by dynamic clamp at subthreshold membrane potentials was prolonged by TTX. Application of the muscarinic agonist pilocarpine mimicked the effect of IPSPs on MC maximal firing rate, and action potential height and slope, and this was reversed by the GABAA antagonist gabazine. Thus, uIPSPs can increase neuronal gain under hyperexcitable conditions, and this effect is probably due to the de-inactivation of a TTX-sensitive voltage-dependent Na+ conductance. © 2007 The Authors. Journal compilation © 2007 The Physiological Society.
spellingShingle Kerr, A
Capogna, M
Unitary IPSPs enhance hilar mossy cell gain in the rat hippocampus
title Unitary IPSPs enhance hilar mossy cell gain in the rat hippocampus
title_full Unitary IPSPs enhance hilar mossy cell gain in the rat hippocampus
title_fullStr Unitary IPSPs enhance hilar mossy cell gain in the rat hippocampus
title_full_unstemmed Unitary IPSPs enhance hilar mossy cell gain in the rat hippocampus
title_short Unitary IPSPs enhance hilar mossy cell gain in the rat hippocampus
title_sort unitary ipsps enhance hilar mossy cell gain in the rat hippocampus
work_keys_str_mv AT kerra unitaryipspsenhancehilarmossycellgainintherathippocampus
AT capognam unitaryipspsenhancehilarmossycellgainintherathippocampus