Mathematical model of Na-K-Cl homeostasis in ictal and interictal discharges

PLoS One. 2019 Mar 15;14(3):e0213904. doi: 10.1371/journal.pone.0213904. eCollection 2019.

Abstract

Despite big experimental data on the phenomena and mechanisms of the generation of ictal and interictal discharges (IDs and IIDs), mathematical models that can describe the synaptic interactions of neurons and the ionic dynamics in biophysical detail are not well-established. Based on experimental recordings of combined hippocampal-entorhinal cortex slices from rats in a high-potassium and a low-magnesium solution containing 4-aminopyridine as well as previous observations of similar experimental models, this type of mathematical model has been developed. The model describes neuronal excitation through the application of the conductance-based refractory density approach for three neuronal populations: two populations of glutamatergic neurons with hyperpolarizing and depolarizing GABAergic synapses and one GABAergic population. The ionic dynamics account for the contributions of voltage-gated and synaptic channels, active and passive transporters, and diffusion. The relatively slow dynamics of potassium, chloride, and sodium ion concentrations determine the transitions from pure GABAergic IIDs to IDs and GABA-glutamatergic IIDs. The model reproduces different types of IIDs, including those initiated by interneurons; repetitive IDs; tonic and bursting modes of an ID composed of clustered IID-like events. The simulations revealed contributions from different ionic channels to the ion concentration dynamics before and during ID generation. The proposed model is a step forward to an optimal mathematical description of the mechanisms of epileptic discharges.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Action Potentials / physiology
  • Animals
  • Chlorides / metabolism
  • Computer Simulation
  • Entorhinal Cortex / metabolism
  • Epilepsy / metabolism*
  • Hippocampus / metabolism*
  • Interneurons / metabolism
  • Ion Channels / metabolism*
  • Mathematical Concepts
  • Models, Neurological*
  • Neurons / metabolism*
  • Potassium / metabolism
  • Pyramidal Cells / metabolism
  • Rats
  • Rats, Wistar
  • Receptors, GABA-A / metabolism
  • Sodium / metabolism
  • Synapses / metabolism

Substances

  • Chlorides
  • Ion Channels
  • Receptors, GABA-A
  • Sodium
  • Potassium

Grants and funding

This work was supported by the Russian Science Foundation (project 16-15-10201).