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Bidirectional Coupling between Astrocytes and Neurons Mediates Learning and Dynamic Coordination in the Brain: A Multiple Modeling Approach
by
Wade, John J.
, Kelso, J. A. Scott
, Crunelli, Vincenzo
, McDaid, Liam J.
, Harkin, Jim
in
Action Potentials - physiology
/ Amino acids
/ Analysis
/ Astrocytes
/ Astrocytes - physiology
/ Biology
/ Brain
/ Brain - physiology
/ Brain research
/ Calcium - metabolism
/ Cell culture
/ Clusters
/ Communication
/ Computational neuroscience
/ Computer Science
/ Computer Simulation
/ Coupling
/ Developmental plasticity
/ Firing pattern
/ Inositol 1,4,5-Trisphosphate - metabolism
/ Learning
/ Learning - physiology
/ Medicine
/ Models, Neurological
/ Nerve Net - physiology
/ Neuronal Plasticity - physiology
/ Neuronal-glial interactions
/ Neurons
/ Neurons - physiology
/ Plasticity
/ Reproducibility of Results
/ Signal Transduction - physiology
/ Signaling
/ Social and Behavioral Sciences
/ Stochastic models
/ Structure-function relationships
/ Synapses
/ Synapses - pathology
/ Synaptic plasticity
/ Transmitters
/ Waste disposal
2011
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Bidirectional Coupling between Astrocytes and Neurons Mediates Learning and Dynamic Coordination in the Brain: A Multiple Modeling Approach
by
Wade, John J.
, Kelso, J. A. Scott
, Crunelli, Vincenzo
, McDaid, Liam J.
, Harkin, Jim
in
Action Potentials - physiology
/ Amino acids
/ Analysis
/ Astrocytes
/ Astrocytes - physiology
/ Biology
/ Brain
/ Brain - physiology
/ Brain research
/ Calcium - metabolism
/ Cell culture
/ Clusters
/ Communication
/ Computational neuroscience
/ Computer Science
/ Computer Simulation
/ Coupling
/ Developmental plasticity
/ Firing pattern
/ Inositol 1,4,5-Trisphosphate - metabolism
/ Learning
/ Learning - physiology
/ Medicine
/ Models, Neurological
/ Nerve Net - physiology
/ Neuronal Plasticity - physiology
/ Neuronal-glial interactions
/ Neurons
/ Neurons - physiology
/ Plasticity
/ Reproducibility of Results
/ Signal Transduction - physiology
/ Signaling
/ Social and Behavioral Sciences
/ Stochastic models
/ Structure-function relationships
/ Synapses
/ Synapses - pathology
/ Synaptic plasticity
/ Transmitters
/ Waste disposal
2011
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Bidirectional Coupling between Astrocytes and Neurons Mediates Learning and Dynamic Coordination in the Brain: A Multiple Modeling Approach
by
Wade, John J.
, Kelso, J. A. Scott
, Crunelli, Vincenzo
, McDaid, Liam J.
, Harkin, Jim
in
Action Potentials - physiology
/ Amino acids
/ Analysis
/ Astrocytes
/ Astrocytes - physiology
/ Biology
/ Brain
/ Brain - physiology
/ Brain research
/ Calcium - metabolism
/ Cell culture
/ Clusters
/ Communication
/ Computational neuroscience
/ Computer Science
/ Computer Simulation
/ Coupling
/ Developmental plasticity
/ Firing pattern
/ Inositol 1,4,5-Trisphosphate - metabolism
/ Learning
/ Learning - physiology
/ Medicine
/ Models, Neurological
/ Nerve Net - physiology
/ Neuronal Plasticity - physiology
/ Neuronal-glial interactions
/ Neurons
/ Neurons - physiology
/ Plasticity
/ Reproducibility of Results
/ Signal Transduction - physiology
/ Signaling
/ Social and Behavioral Sciences
/ Stochastic models
/ Structure-function relationships
/ Synapses
/ Synapses - pathology
/ Synaptic plasticity
/ Transmitters
/ Waste disposal
2011
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Bidirectional Coupling between Astrocytes and Neurons Mediates Learning and Dynamic Coordination in the Brain: A Multiple Modeling Approach
Journal Article
Bidirectional Coupling between Astrocytes and Neurons Mediates Learning and Dynamic Coordination in the Brain: A Multiple Modeling Approach
2011
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Overview
In recent years research suggests that astrocyte networks, in addition to nutrient and waste processing functions, regulate both structural and synaptic plasticity. To understand the biological mechanisms that underpin such plasticity requires the development of cell level models that capture the mutual interaction between astrocytes and neurons. This paper presents a detailed model of bidirectional signaling between astrocytes and neurons (the astrocyte-neuron model or AN model) which yields new insights into the computational role of astrocyte-neuronal coupling. From a set of modeling studies we demonstrate two significant findings. Firstly, that spatial signaling via astrocytes can relay a \"learning signal\" to remote synaptic sites. Results show that slow inward currents cause synchronized postsynaptic activity in remote neurons and subsequently allow Spike-Timing-Dependent Plasticity based learning to occur at the associated synapses. Secondly, that bidirectional communication between neurons and astrocytes underpins dynamic coordination between neuron clusters. Although our composite AN model is presently applied to simplified neural structures and limited to coordination between localized neurons, the principle (which embodies structural, functional and dynamic complexity), and the modeling strategy may be extended to coordination among remote neuron clusters.
Publisher
Public Library of Science,Public Library of Science (PLoS)
Subject
Action Potentials - physiology
/ Analysis
/ Biology
/ Brain
/ Clusters
/ Coupling
/ Inositol 1,4,5-Trisphosphate - metabolism
/ Learning
/ Medicine
/ Neuronal Plasticity - physiology
/ Neurons
/ Signal Transduction - physiology
/ Social and Behavioral Sciences
/ Structure-function relationships
/ Synapses
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