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Bursting Reverberation as a Multiscale Neuronal Network Process Driven by Synaptic Depression-Facilitation

Neuronal networks can generate complex patterns of activity that depend on membrane properties of individual neurons as well as on functional synapses. To decipher the impact of synaptic properties and connectivity on neuronal network behavior, we investigate the responses of neuronal ensembles from...

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Autores principales: Dao Duc, K., Lee, C.Y., Parutto, Pierre, Cohen, Dror, Segal, Menahem, Rouach, Nathalie, Holcman, David
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4446271/
https://www.ncbi.nlm.nih.gov/pubmed/26017681
http://dx.doi.org/10.1371/journal.pone.0124694
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author Dao Duc, K.
Lee, C.Y.
Parutto, Pierre
Cohen, Dror
Segal, Menahem
Rouach, Nathalie
Holcman, David
author_facet Dao Duc, K.
Lee, C.Y.
Parutto, Pierre
Cohen, Dror
Segal, Menahem
Rouach, Nathalie
Holcman, David
author_sort Dao Duc, K.
collection PubMed
description Neuronal networks can generate complex patterns of activity that depend on membrane properties of individual neurons as well as on functional synapses. To decipher the impact of synaptic properties and connectivity on neuronal network behavior, we investigate the responses of neuronal ensembles from small (5–30 cells in a restricted sphere) and large (acute hippocampal slice) networks to single electrical stimulation: in both cases, a single stimulus generated a synchronous long-lasting bursting activity. While an initial spike triggered a reverberating network activity that lasted 2–5 seconds for small networks, we found here that it lasted only up to 300 milliseconds in slices. To explain this phenomena present at different scales, we generalize the depression-facilitation model and extracted the network time constants. The model predicts that the reverberation time has a bell shaped relation with the synaptic density, revealing that the bursting time cannot exceed a maximum value. Furthermore, before reaching its maximum, the reverberation time increases sub-linearly with the synaptic density of the network. We conclude that synaptic dynamics and connectivity shape the mean burst duration, a property present at various scales of the networks. Thus bursting reverberation is a property of sufficiently connected neural networks, and can be generated by collective depression and facilitation of underlying functional synapses.
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spelling pubmed-44462712015-06-09 Bursting Reverberation as a Multiscale Neuronal Network Process Driven by Synaptic Depression-Facilitation Dao Duc, K. Lee, C.Y. Parutto, Pierre Cohen, Dror Segal, Menahem Rouach, Nathalie Holcman, David PLoS One Research Article Neuronal networks can generate complex patterns of activity that depend on membrane properties of individual neurons as well as on functional synapses. To decipher the impact of synaptic properties and connectivity on neuronal network behavior, we investigate the responses of neuronal ensembles from small (5–30 cells in a restricted sphere) and large (acute hippocampal slice) networks to single electrical stimulation: in both cases, a single stimulus generated a synchronous long-lasting bursting activity. While an initial spike triggered a reverberating network activity that lasted 2–5 seconds for small networks, we found here that it lasted only up to 300 milliseconds in slices. To explain this phenomena present at different scales, we generalize the depression-facilitation model and extracted the network time constants. The model predicts that the reverberation time has a bell shaped relation with the synaptic density, revealing that the bursting time cannot exceed a maximum value. Furthermore, before reaching its maximum, the reverberation time increases sub-linearly with the synaptic density of the network. We conclude that synaptic dynamics and connectivity shape the mean burst duration, a property present at various scales of the networks. Thus bursting reverberation is a property of sufficiently connected neural networks, and can be generated by collective depression and facilitation of underlying functional synapses. Public Library of Science 2015-05-27 /pmc/articles/PMC4446271/ /pubmed/26017681 http://dx.doi.org/10.1371/journal.pone.0124694 Text en © 2015 Dao Duc et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Dao Duc, K.
Lee, C.Y.
Parutto, Pierre
Cohen, Dror
Segal, Menahem
Rouach, Nathalie
Holcman, David
Bursting Reverberation as a Multiscale Neuronal Network Process Driven by Synaptic Depression-Facilitation
title Bursting Reverberation as a Multiscale Neuronal Network Process Driven by Synaptic Depression-Facilitation
title_full Bursting Reverberation as a Multiscale Neuronal Network Process Driven by Synaptic Depression-Facilitation
title_fullStr Bursting Reverberation as a Multiscale Neuronal Network Process Driven by Synaptic Depression-Facilitation
title_full_unstemmed Bursting Reverberation as a Multiscale Neuronal Network Process Driven by Synaptic Depression-Facilitation
title_short Bursting Reverberation as a Multiscale Neuronal Network Process Driven by Synaptic Depression-Facilitation
title_sort bursting reverberation as a multiscale neuronal network process driven by synaptic depression-facilitation
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4446271/
https://www.ncbi.nlm.nih.gov/pubmed/26017681
http://dx.doi.org/10.1371/journal.pone.0124694
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