Literature DB >> 22378874

A candidate mechanism underlying the variance of interictal spike propagation.

Helen R Sabolek1, Waldemar B Swiercz, Kyle P Lillis, Sydney S Cash, Gilles Huberfeld, Grace Zhao, Linda Ste Marie, Stéphane Clemenceau, Greg Barsh, Richard Miles, Kevin J Staley.   

Abstract

Synchronous activation of neural networks is an important physiological mechanism, and dysregulation of synchrony forms the basis of epilepsy. We analyzed the propagation of synchronous activity through chronically epileptic neural networks. Electrocorticographic recordings from epileptic patients demonstrate remarkable variance in the pathways of propagation between sequential interictal spikes (IISs). Calcium imaging in chronically epileptic slice cultures demonstrates that pathway variance depends on the presence of GABAergic inhibition and that spike propagation becomes stereotyped following GABA receptor blockade. Computer modeling suggests that GABAergic quenching of local network activations leaves behind regions of refractory neurons, whose late recruitment forms the anatomical basis of variability during subsequent network activation. Targeted path scanning of slice cultures confirmed local activations, while ex vivo recordings of human epileptic tissue confirmed the dependence of interspike variance on GABA-mediated inhibition. These data support the hypothesis that the paths by which synchronous activity spreads through an epileptic network change with each activation, based on the recent history of localized activity that has been successfully inhibited.

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Year:  2012        PMID: 22378874      PMCID: PMC3319688          DOI: 10.1523/JNEUROSCI.5853-11.2012

Source DB:  PubMed          Journal:  J Neurosci        ISSN: 0270-6474            Impact factor:   6.167


  73 in total

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Authors:  J O McNamara
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  30 in total

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Review 2.  Resolving the Micro-Macro Disconnect to Address Core Features of Seizure Networks.

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3.  AMPAR-mediated Interictal Discharges in Neurons of Entorhinal Cortex: Experiment and Model.

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4.  Interneurons and the Ictal Orchestra.

Authors:  Jamie Maguire
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5.  Negative effects of interictal spikes on theta rhythm in human temporal lobe epilepsy.

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6.  Network oscillations modulate interictal epileptiform spike rate during human memory.

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Review 7.  Multiscale recordings reveal the dynamic spatial structure of human seizures.

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8.  Reactivation of seizure-related changes to interictal spike shape and synchrony during postseizure sleep in patients.

Authors:  Mark R Bower; Michal T Kucewicz; Erik K St Louis; Fredric B Meyer; W Richard Marsh; Matt Stead; Gregory A Worrell
Journal:  Epilepsia       Date:  2016-11-18       Impact factor: 5.864

Review 9.  Optogenetic dissection of ictogenesis: in search of a targeted anti-epileptic therapy.

Authors:  K P Lillis; K J Staley
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10.  A Proposed Mechanism for Spontaneous Transitions between Interictal and Ictal Activity.

Authors:  Theju Jacob; Kyle P Lillis; Zemin Wang; Waldemar Swiercz; Negah Rahmati; Kevin J Staley
Journal:  J Neurosci       Date:  2018-11-16       Impact factor: 6.167

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