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Beyond plasticity: the dynamic impact of electrical synapses on neural circuits
by
Pepe, Alcamí
, Pereda, Alberto E
in
Action potential
/ Cell signaling
/ Circuits
/ Communication
/ Electric currents
/ Excitability
/ Invertebrates
/ Ligands
/ Membrane potential
/ Neural networks
/ Neurons
/ Neuroplasticity
/ Neurosciences
/ Synapses
/ Synaptic strength
/ Transmitters
2019
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Beyond plasticity: the dynamic impact of electrical synapses on neural circuits
by
Pepe, Alcamí
, Pereda, Alberto E
in
Action potential
/ Cell signaling
/ Circuits
/ Communication
/ Electric currents
/ Excitability
/ Invertebrates
/ Ligands
/ Membrane potential
/ Neural networks
/ Neurons
/ Neuroplasticity
/ Neurosciences
/ Synapses
/ Synaptic strength
/ Transmitters
2019
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While trying to remove the title from your shelf something went wrong :( Kindly try again later!
Do you wish to request the book?
Beyond plasticity: the dynamic impact of electrical synapses on neural circuits
by
Pepe, Alcamí
, Pereda, Alberto E
in
Action potential
/ Cell signaling
/ Circuits
/ Communication
/ Electric currents
/ Excitability
/ Invertebrates
/ Ligands
/ Membrane potential
/ Neural networks
/ Neurons
/ Neuroplasticity
/ Neurosciences
/ Synapses
/ Synaptic strength
/ Transmitters
2019
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Beyond plasticity: the dynamic impact of electrical synapses on neural circuits
Journal Article
Beyond plasticity: the dynamic impact of electrical synapses on neural circuits
2019
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Overview
Electrical synapses are found in vertebrate and invertebrate nervous systems. The cellular basis of these synapses is the gap junction, a group of intercellular channels that mediate direct communication between adjacent neurons. Similar to chemical synapses, electrical connections are modifiable and their variations in strength provide a mechanism for reconfiguring neural circuits. In addition, electrical synapses dynamically regulate neural circuits through properties without equivalence in chemical transmission. Because of their continuous nature and bidirectionality, electrical synapses allow electrical currents underlying changes in membrane potential to leak to ‘coupled’ partners, dampening neuronal excitability and altering their integrative properties. Remarkably, this effect can be transiently alleviated when comparable changes in membrane potential simultaneously occur in each of the coupled neurons, a phenomenon that is dynamically dictated by the timing of arriving signals such as synaptic potentials. By way of this mechanism, electrical synapses influence synaptic integration and action potential generation, imparting an additional layer of dynamic complexity to neural circuits.Electrical synapses comprise intercellular channels termed gap junctions and are found in vertebrate and invertebrate nervous systems. In this Review, Pepe Alcamí and Alberto Pereda examine the properties of electrical synapses that influence neural circuit dynamics without modifying gap junction conductance.
Publisher
Nature Publishing Group
Subject
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