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Synaptic integration in electrically coupled neurons

Synaptic integration in electrically coupled neurons
Synaptic integration in electrically coupled neurons
Interactions among chemical and electrical synapses regulate the patterns of electrical activity of vertebrate and invertebrate neurons. In this investigation we studied how electrical coupling influences the integration of excitatory postsynaptic potentials (EPSPs). Pairs of Retzius neurons of the leech are coupled by a nonrectifying electrical synapse by which chemically induced synaptic currents flow from one neuron to the other. Results from electrophysiology and modeling suggest that chemical synaptic inputs are located on the coupled neurites, at 7.5 microm from the electrical synapses. We also showed that the space constant of the coupled neurites was 100 microm, approximately twice their length, allowing the efficient spread of synaptic currents all along both coupled neurites. Based on this cytoarchitecture, our main finding was that the degree of electrical coupling modulates the amplitude of EPSPs in the driving neurite by regulating the leak of synaptic current to the coupled neurite, so that the amplitude of EPSPs in the driving neurite was proportional to the value of the coupling resistance. In contrast, synaptic currents arriving at the coupled neurite through the electrical synapse produced EPSPs of constant amplitude. This was because the coupling resistance value had inverse effects on the amount of current arriving and on the impedance of the neurite. We propose that by modulating the amplitude of EPSPs, electrical synapses could regulate the firing frequency of neurons.
0006-3495
646-655
García-Pérez, Elizabeth
cce01e7e-c3ba-416f-bfb7-eb4ebc55b210
Vargas-Caballero, Mariana
de2178ac-77fd-4748-9fe5-109ab8ad93e1
Velazquez-Ulloa, Norma
dd1cfef8-2040-4be5-8f3c-c8f51b967f5f
Minzoni, Antonmaria
a3f83995-d9cd-4ca7-8709-0d9c4b0b9109
De-Miguel, Francisco F.
3502c99a-5923-4cda-8c91-ff7f0777eeff
García-Pérez, Elizabeth
cce01e7e-c3ba-416f-bfb7-eb4ebc55b210
Vargas-Caballero, Mariana
de2178ac-77fd-4748-9fe5-109ab8ad93e1
Velazquez-Ulloa, Norma
dd1cfef8-2040-4be5-8f3c-c8f51b967f5f
Minzoni, Antonmaria
a3f83995-d9cd-4ca7-8709-0d9c4b0b9109
De-Miguel, Francisco F.
3502c99a-5923-4cda-8c91-ff7f0777eeff

García-Pérez, Elizabeth, Vargas-Caballero, Mariana, Velazquez-Ulloa, Norma, Minzoni, Antonmaria and De-Miguel, Francisco F. (2004) Synaptic integration in electrically coupled neurons. Biophysical Journal, 86 (1), 646-655. (doi:10.1016/S0006-3495(04)74142-9). (PMID:10573418)

Record type: Article

Abstract

Interactions among chemical and electrical synapses regulate the patterns of electrical activity of vertebrate and invertebrate neurons. In this investigation we studied how electrical coupling influences the integration of excitatory postsynaptic potentials (EPSPs). Pairs of Retzius neurons of the leech are coupled by a nonrectifying electrical synapse by which chemically induced synaptic currents flow from one neuron to the other. Results from electrophysiology and modeling suggest that chemical synaptic inputs are located on the coupled neurites, at 7.5 microm from the electrical synapses. We also showed that the space constant of the coupled neurites was 100 microm, approximately twice their length, allowing the efficient spread of synaptic currents all along both coupled neurites. Based on this cytoarchitecture, our main finding was that the degree of electrical coupling modulates the amplitude of EPSPs in the driving neurite by regulating the leak of synaptic current to the coupled neurite, so that the amplitude of EPSPs in the driving neurite was proportional to the value of the coupling resistance. In contrast, synaptic currents arriving at the coupled neurite through the electrical synapse produced EPSPs of constant amplitude. This was because the coupling resistance value had inverse effects on the amount of current arriving and on the impedance of the neurite. We propose that by modulating the amplitude of EPSPs, electrical synapses could regulate the firing frequency of neurons.

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More information

Published date: January 2004
Organisations: Biomedicine

Identifiers

Local EPrints ID: 348676
URI: http://eprints.soton.ac.uk/id/eprint/348676
ISSN: 0006-3495
PURE UUID: bc99e876-1d20-40bc-9543-f6fdda3d7ca5
ORCID for Mariana Vargas-Caballero: ORCID iD orcid.org/0000-0003-2326-4001

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Date deposited: 13 May 2013 13:29
Last modified: 15 Mar 2024 03:43

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Contributors

Author: Elizabeth García-Pérez
Author: Norma Velazquez-Ulloa
Author: Antonmaria Minzoni
Author: Francisco F. De-Miguel

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