Decrease in Synaptic Transmission Can Reverse the Propagation Direction of Epileptiform Activity in Hippocampus In Vivo
- 1 March 2005
- journal article
- research article
- Published by American Physiological Society in Journal of Neurophysiology
- Vol. 93 (3) , 1158-1164
- https://doi.org/10.1152/jn.00593.2004
Abstract
Most types of epileptiform activity with synaptic transmission have been shown to propagate from the CA3 to CA1 region in hippocampus. However, nonsynaptic epileptiform activity induced in vitro is known to propagate slowly from the caudal end of CA1 toward CA2/CA3. Understanding the propagation modes of epileptiform activity, and their causality is important to revealing the underlying mechanisms of epilepsy and developing new treatments. In this paper, the effect of the synaptic transmission suppression on the propagation of epilepsy in vivo was investigated by using multiple-channel recording probes in CA1. Nonsynaptic epileptiform activity was induced by calcium chelator EGTA with varied concentrations of potassium. For comparison, disinhibition synaptic epileptiform activity was induced by picrotoxin (PTX) with or without partial suppression of excitatory synaptic transmission. The propagation velocity was calculated by measuring the time delay between two electrodes separated by a known distance. The results show that in vivo nonsynaptic epileptiform activity propagates with a direction and velocity comparable to those observed in in vitro preparations. The direction of propagation for nonsynaptic activity is reversed from the PTX-induced synaptic activity. A reversal in propagation direction and change in velocity were also observed dynamically during the process of synaptic transmission suppression. Even a partial suppression of synaptic transmission was sufficient to significantly change the propagation direction and velocity of epileptiform activity. These results suggest the possibility that the measurement of propagation can provide important information about the synaptic mechanism underlying epileptic activity.Keywords
This publication has 36 references indexed in Scilit:
- Low-Calcium Epileptiform Activity in the Hippocampus In VivoJournal of Neurophysiology, 2003
- Transition from Interictal to Ictal Activity in Limbic NetworksIn VitroJournal of Neuroscience, 2003
- Conditions Sufficient for Nonsynaptic Epileptogenesis in the CA1 Region of Hippocampal SlicesJournal of Neurophysiology, 2002
- Propagation of synchronous epileptiform events from subiculum backward into area CA1 of rat brain slicesBrain Research, 2001
- Modulation of Burst Frequency, Duration, and Amplitude in the Zero-Ca2+ Model of Epileptiform ActivityJournal of Neurophysiology, 1999
- ‘NON‐SYNAPTIC’ MECHANISMS IN SEIZURES AND EPILEPTOGENESISCell Biology International, 1998
- CA3-Driven Hippocampal-Entorhinal Loop Controls Rather than SustainsIn VitroLimbic SeizuresJournal of Neuroscience, 1997
- Propagating Neuronal Discharges in Neocortical Slices: Computational and Experimental StudyJournal of Neurophysiology, 1997
- Low Mg2+ induced epileptiform activity in the subiculum before and after disconnection from rat hippocampal and entorhinal cortex slicesNeuroscience Letters, 1996
- Low‐calcium field burst discharges of CA1 pyramidal neurones in rat hippocampal slices.The Journal of Physiology, 1984