Feedforward Inhibition Contributes to the Control of Epileptiform Propagation Speed
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Open Access
- 28 March 2007
- journal article
- Published by Society for Neuroscience in Journal of Neuroscience
- Vol. 27 (13), 3383-3387
- https://doi.org/10.1523/jneurosci.0145-07.2007
Abstract
It is still poorly understood how epileptiform events can recruit cortical circuits. Moreover, the speed of propagation of epileptiform discharges in vivo and in vitro can vary over several orders of magnitude (0.1–100 mm/s), a range difficult to explain by a single mechanism. We previously showed how epileptiform spread in neocortical slices is opposed by a powerful feedforward inhibition ahead of the ictal wave. When this feedforward inhibition is intact, epileptiform spreads very slowly (∼100 μm/s). We now investigate whether changes in this inhibitory restraint can also explain much faster propagation velocities. We made use of a very characteristic pattern of evolution of ictal activity in the zero magnesium (0 Mg2+) model of epilepsy. With each successive ictal event, the number of preictal inhibitory barrages dropped, and in parallel with this change, the propagation velocity increased. There was a highly significant correlation (p < 0.001) between the two measures over a 1000-fold range of velocities, indicating that feedforward inhibition was the prime determinant of the speed of epileptiform propagation. We propose that the speed of propagation is set by the extent of the recruitment steps, which in turn is set by how successfully the feedforward inhibitory restraint contains the excitatory drive. Thus, a single mechanism could account for the wide range of propagation velocities of epileptiform events observed in vitro and in vivo.Keywords
This publication has 31 references indexed in Scilit:
- Modular Propagation of Epileptiform Activity: Evidence for an Inhibitory Veto in NeocortexJournal of Neuroscience, 2006
- Epileptogenic Actions of GABA and Fast Oscillations in the Developing HippocampusNeuron, 2005
- Initiation, Propagation, and Termination of Epileptiform Activity in Rodent NeocortexIn VitroInvolve Distinct MechanismsJournal of Neuroscience, 2005
- Seizure spread through the life cycle: Optical imaging in combined brain slices from immature, adult, and senile rats in vitroNeurobiology of Disease, 2005
- Attractor dynamics of network UP states in the neocortexNature, 2003
- Intracellular recordings in thalamic neurones during spontaneous spike and wave discharges in rats with absence epilepsyThe Journal of Physiology, 1998
- Epileptiform Activity in the Guinea‐pig Neocortical Slice Spreads Preferentially along Supragranular Layers—Recordings with Voltage‐sensitive DyesEuropean Journal of Neuroscience, 1995
- Epileptiform activity in combined slices of the hippocampus, subiculum and entorhinal cortex during perfusion with low magnesium mediumNeuroscience Letters, 1986
- Topographical evolution of spike-wave complexesBrain Research, 1986
- Slow transmission of neural activity in hippocampal area CA1 in absence of active chemical synapsesNature, 1984