International audienceNeuronal excitability relies on inward sodium and outward potassium fluxes during action potentials. To prevent neuronal hyperexcitability, potassium ions have to be taken up quickly. However, the dynamics of the activity-dependent potassium fluxes and the molecular pathways underlying extracellular potassium homeostasis remain elusive. To decipher the specific and acute contribution of astroglial Kir4.1 channels in controlling potassium homeostasis and the moment to moment neurotransmission, we built a tri-compartment model accounting for potassium dynamics between neurons, astrocytes and the extracellular space. We here demonstrate that astroglial Kir4.1 channels are sufficient to account for the slow membrane depola...
<div><p>Experimental recordings in hippocampal slices indicate that astrocytic dysfunction may cause...
Experimental recordings in hippocampal slices indicate that astrocytic dysfunction may cause neurona...
Neuronal excitability is tightly coupled to the complex ionic dynamics in the nervous system. In par...
International audienceNeuronal excitability relies on inward sodium and outward potassium fluxes dur...
<div><p>Neuronal excitability relies on inward sodium and outward potassium fluxes during action pot...
International audienceNeuronal excitability relies on inward sodium and outward potassium fluxes dur...
Neuronal excitability relies on inward sodium and outward potassium fluxes during action potentials....
Neuronal excitability relies on inward sodium and outward potassium fluxes during action potentials....
Introduction: Removal of potassium by glial cells implies the net uptake of potassium at sites of el...
Summary Neuronal rhythmogenesis in the spinal cord is correlated with variations in extracellular K ...
Inwardly rectifying Kir4.1 channels in astrocytes mediate spatial potassium (K+) buffering, a cleara...
Summary Neuronal rhythmogenesis in the spinal cord is correlated with variations in extracellular K ...
Summary Neuronal rhythmogenesis in the spinal cord is correlated with variations in extracellular K ...
<p><b><i>A-I</i></b>, K<sup>+</sup> redistribution between neurons, extracellular space and astrocyt...
The human brain contains two major cell populations, neurons and glia. While neurons are electricall...
<div><p>Experimental recordings in hippocampal slices indicate that astrocytic dysfunction may cause...
Experimental recordings in hippocampal slices indicate that astrocytic dysfunction may cause neurona...
Neuronal excitability is tightly coupled to the complex ionic dynamics in the nervous system. In par...
International audienceNeuronal excitability relies on inward sodium and outward potassium fluxes dur...
<div><p>Neuronal excitability relies on inward sodium and outward potassium fluxes during action pot...
International audienceNeuronal excitability relies on inward sodium and outward potassium fluxes dur...
Neuronal excitability relies on inward sodium and outward potassium fluxes during action potentials....
Neuronal excitability relies on inward sodium and outward potassium fluxes during action potentials....
Introduction: Removal of potassium by glial cells implies the net uptake of potassium at sites of el...
Summary Neuronal rhythmogenesis in the spinal cord is correlated with variations in extracellular K ...
Inwardly rectifying Kir4.1 channels in astrocytes mediate spatial potassium (K+) buffering, a cleara...
Summary Neuronal rhythmogenesis in the spinal cord is correlated with variations in extracellular K ...
Summary Neuronal rhythmogenesis in the spinal cord is correlated with variations in extracellular K ...
<p><b><i>A-I</i></b>, K<sup>+</sup> redistribution between neurons, extracellular space and astrocyt...
The human brain contains two major cell populations, neurons and glia. While neurons are electricall...
<div><p>Experimental recordings in hippocampal slices indicate that astrocytic dysfunction may cause...
Experimental recordings in hippocampal slices indicate that astrocytic dysfunction may cause neurona...
Neuronal excitability is tightly coupled to the complex ionic dynamics in the nervous system. In par...