Enhanced responses to somatostatin interneuron activation in developmentally malformed cortex

Summary Intractable epilepsy is commonly associated with developmental cortical malformations. Using the rodent freeze lesion model, we have sought the underlying circuit abnormalities contributing to the epileptiform activity that occurs in association with the structural pathology of four‐layered...

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Main Authors: Nicole B. Ekanem, Laura K. Reed, Nicole Weston, Kimberle M. Jacobs
Format: Article
Language:English
Published: Wiley 2019-06-01
Series:Epilepsia Open
Subjects:
Online Access:https://doi.org/10.1002/epi4.12316
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spelling doaj-016e929b16b74fe4a31e1cfab38615b12020-11-25T01:56:45ZengWileyEpilepsia Open2470-92392019-06-014233433810.1002/epi4.12316Enhanced responses to somatostatin interneuron activation in developmentally malformed cortexNicole B. Ekanem0Laura K. Reed1Nicole Weston2Kimberle M. Jacobs3Department of Anatomy and Neurobiology Virginia Commonwealth University Richmond VirginiaDepartment of Anatomy and Neurobiology Virginia Commonwealth University Richmond VirginiaDepartment of Anatomy and Neurobiology Virginia Commonwealth University Richmond VirginiaDepartment of Anatomy and Neurobiology Virginia Commonwealth University Richmond VirginiaSummary Intractable epilepsy is commonly associated with developmental cortical malformations. Using the rodent freeze lesion model, we have sought the underlying circuit abnormalities contributing to the epileptiform activity that occurs in association with the structural pathology of four‐layered microgyria. We showed previously that within the epileptogenic paramicrogyral region (PMR) surrounding the malformation, non–fast‐spiking neurons commonly containing somatostatin (SSt) exhibit alterations, including having a greater maximum firing rate. Here we examined the output of SSt interneurons with optogenetics, using SSt‐Cre mice mated to mice with floxed channelrhodopsin‐2. Voltage clamp recordings from layer V pyramidal neurons in ex vivo slices had significantly enhanced SSt‐evoked inhibitory postsynaptic currents in PMR cortex compared to control. In addition, under conditions of low‐Mg2+ artificial cerebral spinal fluid (aCSF), light activation of the SSt neurons evoked field potential epileptiform activity in the PMR cortex, but not in control. These data suggest that within the PMR cortex, SSts have a significantly larger effect on excitatory neurons. Surprisingly, the network effect of this enhanced inhibition is hyperexcitability with propagating epileptiform activity, perhaps due to disinhibition of other interneuron cell types or to enhanced synchrony of excitatory cortical elements. This identification creates a new locus for potential modulation of epileptiform activity associated with cortical malformation.https://doi.org/10.1002/epi4.12316cortical Inhibitionfreeze lesionmalformationmicrogyriaoptogenetics
collection DOAJ
language English
format Article
sources DOAJ
author Nicole B. Ekanem
Laura K. Reed
Nicole Weston
Kimberle M. Jacobs
spellingShingle Nicole B. Ekanem
Laura K. Reed
Nicole Weston
Kimberle M. Jacobs
Enhanced responses to somatostatin interneuron activation in developmentally malformed cortex
Epilepsia Open
cortical Inhibition
freeze lesion
malformation
microgyria
optogenetics
author_facet Nicole B. Ekanem
Laura K. Reed
Nicole Weston
Kimberle M. Jacobs
author_sort Nicole B. Ekanem
title Enhanced responses to somatostatin interneuron activation in developmentally malformed cortex
title_short Enhanced responses to somatostatin interneuron activation in developmentally malformed cortex
title_full Enhanced responses to somatostatin interneuron activation in developmentally malformed cortex
title_fullStr Enhanced responses to somatostatin interneuron activation in developmentally malformed cortex
title_full_unstemmed Enhanced responses to somatostatin interneuron activation in developmentally malformed cortex
title_sort enhanced responses to somatostatin interneuron activation in developmentally malformed cortex
publisher Wiley
series Epilepsia Open
issn 2470-9239
publishDate 2019-06-01
description Summary Intractable epilepsy is commonly associated with developmental cortical malformations. Using the rodent freeze lesion model, we have sought the underlying circuit abnormalities contributing to the epileptiform activity that occurs in association with the structural pathology of four‐layered microgyria. We showed previously that within the epileptogenic paramicrogyral region (PMR) surrounding the malformation, non–fast‐spiking neurons commonly containing somatostatin (SSt) exhibit alterations, including having a greater maximum firing rate. Here we examined the output of SSt interneurons with optogenetics, using SSt‐Cre mice mated to mice with floxed channelrhodopsin‐2. Voltage clamp recordings from layer V pyramidal neurons in ex vivo slices had significantly enhanced SSt‐evoked inhibitory postsynaptic currents in PMR cortex compared to control. In addition, under conditions of low‐Mg2+ artificial cerebral spinal fluid (aCSF), light activation of the SSt neurons evoked field potential epileptiform activity in the PMR cortex, but not in control. These data suggest that within the PMR cortex, SSts have a significantly larger effect on excitatory neurons. Surprisingly, the network effect of this enhanced inhibition is hyperexcitability with propagating epileptiform activity, perhaps due to disinhibition of other interneuron cell types or to enhanced synchrony of excitatory cortical elements. This identification creates a new locus for potential modulation of epileptiform activity associated with cortical malformation.
topic cortical Inhibition
freeze lesion
malformation
microgyria
optogenetics
url https://doi.org/10.1002/epi4.12316
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AT kimberlemjacobs enhancedresponsestosomatostatininterneuronactivationindevelopmentallymalformedcortex
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