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Single-compartment model of a pyramidal neuron, fitted to recordings with current and conductance injection.
Chizhov, Anton V; Amakhin, Dmitry V; Sagtekin, A Erdem; Desroches, Mathieu.
Affiliation
  • Chizhov AV; MathNeuro Team, Inria Centre at Universite Cote d'Azur, Sophia Antipolis, France. anton.chizhov@inria.fr.
  • Amakhin DV; Computational Physics Laboratory, Ioffe Institute, Saint Petersburg, Russia. anton.chizhov@inria.fr.
  • Sagtekin AE; Laboratory of Molecular Mechanisms of Neural Interactions, Sechenov Institute of Evolutionary Physiology and Biochemistry of the Russian Academy of Sciences, Saint Petersburg, Russia.
  • Desroches M; Istanbul Technical University, Istanbul, Turkey.
Biol Cybern ; 117(6): 433-451, 2023 12.
Article in En | MEDLINE | ID: mdl-37755465
ABSTRACT
For single neuron models, reproducing characteristics of neuronal activity such as the firing rate, amplitude of spikes, and threshold potentials as functions of both synaptic current and conductance is a challenging task. In the present work, we measure these characteristics of regular spiking cortical neurons using the dynamic patch-clamp technique, compare the data with predictions from the standard Hodgkin-Huxley and Izhikevich models, and propose a relatively simple five-dimensional dynamical system model, based on threshold criteria. The model contains a single sodium channel with slow inactivation, fast activation and moderate deactivation, as well as, two fast repolarizing and slow shunting potassium channels. The model quantitatively reproduces characteristics of steady-state activity that are typical for a cortical pyramidal neuron, namely firing rate not exceeding 30 Hz; critical values of the stimulating current and conductance which induce the depolarization block not exceeding 80 mV and 3, respectively (both values are scaled by the resting input conductance); extremum of hyperpolarization close to the midpoint between spikes. The analysis of the model reveals that the spiking regime appears through a saddle-node-on-invariant-circle bifurcation, and the depolarization block is reached through a saddle-node bifurcation of cycles. The model can be used for realistic network simulations, and it can also be implemented within the so-called mean-field, refractory density framework.
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Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Pyramidal Cells / Neurons Type of study: Prognostic_studies Language: En Journal: Biol Cybern Year: 2023 Document type: Article Affiliation country: France

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Pyramidal Cells / Neurons Type of study: Prognostic_studies Language: En Journal: Biol Cybern Year: 2023 Document type: Article Affiliation country: France
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