Modeling Spontaneous Activity in the Developing Spinal Cord Using Activity-Dependent Variations of Intracellular Chloride
Open Access
- 6 April 2005
- journal article
- research article
- Published by Society for Neuroscience in Journal of Neuroscience
- Vol. 25 (14) , 3601-3612
- https://doi.org/10.1523/jneurosci.4290-04.2005
Abstract
We investigated how spontaneous activity is generated in developing, hyperexcitable networks. We focused our study on the embryonic chick spinal cord, a preparation that exhibits rhythmic discharge on multiple timescales: slow episodes (lasting minutes) and faster intraepisode cycling (∼1 Hz frequency). For this purpose, we developed a mean field model of a recurrent network with slow chloride dynamics and a fast depression variable. We showed that the model, in addition to providing a biophysical mechanism for the slow dynamics, was able to account for the experimentally observed activity. The model made predictions on how interval and duration of episodes are affected when changing chloride-mediated synaptic transmission or chloride flux across cell membrane. These predictions guided experiments, and the model results were compared with experimental data obtained with electrophysiological recordings. We found agreement when transmission was affected through changes in synaptic conductance and good qualitative agreement when chloride flux was varied through changes in external chloride concentration or in the rate of the Na+-K+-2Cl-cotransporter. Furthermore, the model made predictions about the time course of intracellular chloride concentration and chloride reversal potential and how these are affected by changes in synaptic conductance. Based on the comparison between modeling and experimental results, we propose that chloride dynamics could be an important mechanism in rhythm generation in the developing chick spinal cord.Keywords
This publication has 34 references indexed in Scilit:
- Activity-dependent homeostatic specification of transmitter expression in embryonic neuronsNature, 2004
- Mesial temporal lobe epilepsy: A pathological replay of developmental mechanisms?Biology of the Cell, 2003
- Developmental Changes in Short-Term Synaptic Depression in the Neonatal Mouse Spinal CordJournal of Neurophysiology, 2002
- On the Origin of Interictal Activity in Human Temporal Lobe Epilepsy in VitroScience, 2002
- Spontaneous Development of Synchronous Oscillatory Activity During Maturation of Cortical Networks In VitroJournal of Neurophysiology, 2002
- Excitatory actions of gaba during development: the nature of the nurtureNature Reviews Neuroscience, 2002
- Pregnenolone sulfate and dehydroepiandrosterone sulfate inhibit GABA-gated chloride currents in Xenopus oocytes expressing picrotoxin-insensitive GABAA receptorsNeuropharmacology, 1999
- Synaptic Activity and the Construction of Cortical CircuitsScience, 1996
- Distinct aspects of neuronal differentiation encoded by frequency of spontaneous Ca2+ transientsNature, 1995
- Bursting oscillations in an excitable membrane modelPublished by Springer Nature ,1985