Literature DB >> 28921695

Frequency-dependent regulation of intrinsic excitability by voltage-activated membrane conductances, computational modeling and dynamic clamp.

Attila Szűcs1,2,3, Anikó Rátkai2, Katalin Schlett2, Ramon Huerta1.   

Abstract

As one of the most unique properties of nerve cells, their intrinsic excitability allows them to transform synaptic inputs into action potentials. This process reflects a complex interplay between the synaptic inputs and the voltage-dependent membrane currents of the postsynaptic neuron. While neurons in natural conditions mostly fire under the action of intense synaptic bombardment and receive fluctuating patterns of excitation and inhibition, conventional techniques to characterize intrinsic excitability mainly utilize static means of stimulation. Recently, we have shown that voltage-gated membrane currents regulate the firing responses under current step stimulation and under physiologically more realistic inputs in a differential manner. At the same time, a multitude of neuron types have been shown to exhibit some form of subthreshold resonance that potentially allows them to respond to synaptic inputs in a frequency-selective manner. In this study, we performed virtual experiments in computational models of neurons to examine how specific voltage-gated currents regulate their excitability under simulated frequency-modulated synaptic inputs. The model simulations and subsequent dynamic clamp experiments on mouse hippocampal pyramidal neurons revealed that the impact of voltage-gated currents in regulating the firing output is strongly frequency-dependent and mostly affecting the synaptic integration at theta frequencies. Notably, robust frequency-dependent regulation of intrinsic excitability was observed even when conventional analysis of membrane impedance suggested no such tendency. Consequently, plastic or homeostatic regulation of intrinsic membrane properties can tune the frequency selectivity of neuron populations in a way that is not readily expected from subthreshold impedance measurements.
© 2017 Federation of European Neuroscience Societies and John Wiley & Sons Ltd.

Entities:  

Keywords:  computational model; firing; oscillation; physiological properties; resonance

Mesh:

Substances:

Year:  2017        PMID: 28921695      PMCID: PMC5673562          DOI: 10.1111/ejn.13708

Source DB:  PubMed          Journal:  Eur J Neurosci        ISSN: 0953-816X            Impact factor:   3.386


  39 in total

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5.  Differential expression of intrinsic membrane currents in defined cell types of the anterolateral bed nucleus of the stria terminalis.

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Authors:  B Hutcheon; R M Miura; E Puil
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7.  Interaction of Intrinsic and Synaptic Currents Mediate Network Resonance Driven by Layer V Pyramidal Cells.

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8.  A transcriptomic analysis of type I-III neurons in the bed nucleus of the stria terminalis.

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9.  Conditional transgenic suppression of M channels in mouse brain reveals functions in neuronal excitability, resonance and behavior.

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10.  Dorsoventral differences in Kv7/M-current and its impact on resonance, temporal summation and excitability in rat hippocampal pyramidal cells.

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Review 7.  A New Player in the Hippocampus: A Review on VGLUT3+ Neurons and Their Role in the Regulation of Hippocampal Activity and Behaviour.

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8.  Conventional measures of intrinsic excitability are poor estimators of neuronal activity under realistic synaptic inputs.

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