Javascript must be enabled to continue!
Functional distinction between ionic and electric ephaptic effects on neuronal firing dynamics
View through CrossRef
Abstract
Neuronal activity alters extracellular ion concentrations and electric potentials. Ephaptic effects refer to the feedback influence that these extracellular changes can have on neuronal activity. While electric ephaptic effects occur on a fast timescale due to extracellular potential perturbations, ionic ephaptic effects are driven by slower, accumulative changes in ion concentrations. Among the previous computational studies of ephaptic effects, the vast majority have focused exclusively on electric effects, while ionic ephaptic effects have largely been neglected. In this work, we present an electrodiffusive computational framework consisting of two-compartment neurons that interact via a shared extracellular space. By accounting for both electric potentials and ion-concentration dynamics in a self-consistent manner, our framework enables us to explore the relative roles of electric and ionic ephaptic effects. Through numerical experiments, we demonstrate that ionic and electric ephaptic interactions play very different roles. While ionic ephaptic interactions increase population firing rates, electric ephaptic interactions primarily drive subtle shifts in spike timing. Furthermore, we show that these spike shifts cause the phase difference (the distance in spike times between a small collection of neurons) to converge to a stable, unique phase difference, which we coin the
ephaptic intrinsic phase preference
.
Author summary
Neurons predominantly communicate through synapses: specialized contact points where a brief electrical signal, known as a spike or action potential, in one neuron influences another. Neurons generate these spikes by exchanging ions with the surrounding extracellular space. This way, spiking neurons alter extracellular ion concentrations and electric potentials. Since neurons are sensitive to such changes in their environment, they can also influence one another indirectly through the shared extracellular medium. This form of non-synaptic interaction is known as
ephaptic coupling
. Most computational models of neuronal activity neglect ephaptic interactions, and those that include them typically consider only electric effects while ignoring ionic contributions. As a result, the relative roles of electric and ionic ephaptic effects remain poorly understood. Here, we introduce a computational framework that accounts for both mechanisms in a self-consistent way. Our results show a functional distinction: ionic ephaptic effects act slowly, regulating population firing rates, whereas electric ephaptic effects act on millisecond timescales and subtly shift spike timing. These shifts cause spike-time differences between neurons to converge to a stable value, a phenomenon we call
ephaptic intrinsic phase preference
.
Title: Functional distinction between ionic and electric ephaptic effects on neuronal firing dynamics
Description:
Abstract
Neuronal activity alters extracellular ion concentrations and electric potentials.
Ephaptic effects refer to the feedback influence that these extracellular changes can have on neuronal activity.
While electric ephaptic effects occur on a fast timescale due to extracellular potential perturbations, ionic ephaptic effects are driven by slower, accumulative changes in ion concentrations.
Among the previous computational studies of ephaptic effects, the vast majority have focused exclusively on electric effects, while ionic ephaptic effects have largely been neglected.
In this work, we present an electrodiffusive computational framework consisting of two-compartment neurons that interact via a shared extracellular space.
By accounting for both electric potentials and ion-concentration dynamics in a self-consistent manner, our framework enables us to explore the relative roles of electric and ionic ephaptic effects.
Through numerical experiments, we demonstrate that ionic and electric ephaptic interactions play very different roles.
While ionic ephaptic interactions increase population firing rates, electric ephaptic interactions primarily drive subtle shifts in spike timing.
Furthermore, we show that these spike shifts cause the phase difference (the distance in spike times between a small collection of neurons) to converge to a stable, unique phase difference, which we coin the
ephaptic intrinsic phase preference
.
Author summary
Neurons predominantly communicate through synapses: specialized contact points where a brief electrical signal, known as a spike or action potential, in one neuron influences another.
Neurons generate these spikes by exchanging ions with the surrounding extracellular space.
This way, spiking neurons alter extracellular ion concentrations and electric potentials.
Since neurons are sensitive to such changes in their environment, they can also influence one another indirectly through the shared extracellular medium.
This form of non-synaptic interaction is known as
ephaptic coupling
.
Most computational models of neuronal activity neglect ephaptic interactions, and those that include them typically consider only electric effects while ignoring ionic contributions.
As a result, the relative roles of electric and ionic ephaptic effects remain poorly understood.
Here, we introduce a computational framework that accounts for both mechanisms in a self-consistent way.
Our results show a functional distinction: ionic ephaptic effects act slowly, regulating population firing rates, whereas electric ephaptic effects act on millisecond timescales and subtly shift spike timing.
These shifts cause spike-time differences between neurons to converge to a stable value, a phenomenon we call
ephaptic intrinsic phase preference
.
Related Results
Realistic modeling of ephaptic fields in the human brain
Realistic modeling of ephaptic fields in the human brain
Abstract
Several decades of research suggest that weak electric fields may influence neural processing, including those induced by neuronal activity and recently pr...
Exploring the in vivo subthreshold membrane activity of phasic firing in midbrain dopamine neurons
Exploring the in vivo subthreshold membrane activity of phasic firing in midbrain dopamine neurons
Dopamine is a key neurotransmitter that serves several essential functions in daily behaviors such as locomotion, motivation, stimulus coding, and learning. Disrupted dopamine circ...
Metabolically induced neuronal differentiation
Metabolically induced neuronal differentiation
In recent years, several neuronal differentiation protocols were published that circumvent the requirement of embryoid body (EB) formation under serum-deprivation and simplified me...
Experimental Ceramics Firing in Archaeology: Current Studies
Experimental Ceramics Firing in Archaeology: Current Studies
Purpose. The article presents a survey of current tendencies in experimental ceramics firing. This research method is used for studying and explaining archaeological information co...
Extraction of aromatic solvents from reformates and paint solvent wastes during ionic liquids
Extraction of aromatic solvents from reformates and paint solvent wastes during ionic liquids
The work conducted in this study comprised three aspects: syntheses, characterizations, and multi-component liquid-liquid extractions. The main objectives of the project were: (1) ...
Diurnal properties of voltage‐gated Ca2+ currents in suprachiasmatic nucleus and roles in action potential firing
Diurnal properties of voltage‐gated Ca2+ currents in suprachiasmatic nucleus and roles in action potential firing
Key points
Circadian oscillations in spontaneous action potential firing in the suprachiasmatic nucleus (SCN) translate time‐of‐day throughout the mammalian brain.
The ion channels...
Astrocytes improve neuronal health after cisplatin treatment through mitochondrial transfer
Astrocytes improve neuronal health after cisplatin treatment through mitochondrial transfer
AbstractNeurodegenerative disorders, including chemotherapy-induced cognitive impairment, are associated with neuronal mitochondrial dysfunction. Cisplatin, a commonly used chemoth...
[RETRACTED] Keanu Reeves CBD Gummies v1
[RETRACTED] Keanu Reeves CBD Gummies v1
[RETRACTED]Keanu Reeves CBD Gummies ==❱❱ Huge Discounts:[HURRY UP ] Absolute Keanu Reeves CBD Gummies (Available)Order Online Only!! ❰❰= https://www.facebook.com/Keanu-Reeves-CBD-G...

