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Electrical coupling controls dimensionality and chaotic firing of inferior olive neurons

We previously proposed, on theoretical grounds, that the cerebellum must regulate the dimensionality of its neuronal activity during motor learning and control to cope with the low firing frequency of inferior olive neurons, which form one of two major inputs to the cerebellar cortex. Such dimension...

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Autores principales: Hoang, Huu, Lang, Eric J., Hirata, Yoshito, Tokuda, Isao T., Aihara, Kazuyuki, Toyama, Keisuke, Kawato, Mitsuo, Schweighofer, Nicolas
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7419012/
https://www.ncbi.nlm.nih.gov/pubmed/32730255
http://dx.doi.org/10.1371/journal.pcbi.1008075
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author Hoang, Huu
Lang, Eric J.
Hirata, Yoshito
Tokuda, Isao T.
Aihara, Kazuyuki
Toyama, Keisuke
Kawato, Mitsuo
Schweighofer, Nicolas
author_facet Hoang, Huu
Lang, Eric J.
Hirata, Yoshito
Tokuda, Isao T.
Aihara, Kazuyuki
Toyama, Keisuke
Kawato, Mitsuo
Schweighofer, Nicolas
author_sort Hoang, Huu
collection PubMed
description We previously proposed, on theoretical grounds, that the cerebellum must regulate the dimensionality of its neuronal activity during motor learning and control to cope with the low firing frequency of inferior olive neurons, which form one of two major inputs to the cerebellar cortex. Such dimensionality regulation is possible via modulation of electrical coupling through the gap junctions between inferior olive neurons by inhibitory GABAergic synapses. In addition, we previously showed in simulations that intermediate coupling strengths induce chaotic firing of inferior olive neurons and increase their information carrying capacity. However, there is no in vivo experimental data supporting these two theoretical predictions. Here, we computed the levels of synchrony, dimensionality, and chaos of the inferior olive code by analyzing in vivo recordings of Purkinje cell complex spike activity in three different coupling conditions: carbenoxolone (gap junctions blocker), control, and picrotoxin (GABA-A receptor antagonist). To examine the effect of electrical coupling on dimensionality and chaotic dynamics, we first determined the physiological range of effective coupling strengths between inferior olive neurons in the three conditions using a combination of a biophysical network model of the inferior olive and a novel Bayesian model averaging approach. We found that effective coupling co-varied with synchrony and was inversely related to the dimensionality of inferior olive firing dynamics, as measured via a principal component analysis of the spike trains in each condition. Furthermore, for both the model and the data, we found an inverted U-shaped relationship between coupling strengths and complexity entropy, a measure of chaos for spiking neural data. These results are consistent with our hypothesis according to which electrical coupling regulates the dimensionality and the complexity in the inferior olive neurons in order to optimize both motor learning and control of high dimensional motor systems by the cerebellum.
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spelling pubmed-74190122020-08-19 Electrical coupling controls dimensionality and chaotic firing of inferior olive neurons Hoang, Huu Lang, Eric J. Hirata, Yoshito Tokuda, Isao T. Aihara, Kazuyuki Toyama, Keisuke Kawato, Mitsuo Schweighofer, Nicolas PLoS Comput Biol Research Article We previously proposed, on theoretical grounds, that the cerebellum must regulate the dimensionality of its neuronal activity during motor learning and control to cope with the low firing frequency of inferior olive neurons, which form one of two major inputs to the cerebellar cortex. Such dimensionality regulation is possible via modulation of electrical coupling through the gap junctions between inferior olive neurons by inhibitory GABAergic synapses. In addition, we previously showed in simulations that intermediate coupling strengths induce chaotic firing of inferior olive neurons and increase their information carrying capacity. However, there is no in vivo experimental data supporting these two theoretical predictions. Here, we computed the levels of synchrony, dimensionality, and chaos of the inferior olive code by analyzing in vivo recordings of Purkinje cell complex spike activity in three different coupling conditions: carbenoxolone (gap junctions blocker), control, and picrotoxin (GABA-A receptor antagonist). To examine the effect of electrical coupling on dimensionality and chaotic dynamics, we first determined the physiological range of effective coupling strengths between inferior olive neurons in the three conditions using a combination of a biophysical network model of the inferior olive and a novel Bayesian model averaging approach. We found that effective coupling co-varied with synchrony and was inversely related to the dimensionality of inferior olive firing dynamics, as measured via a principal component analysis of the spike trains in each condition. Furthermore, for both the model and the data, we found an inverted U-shaped relationship between coupling strengths and complexity entropy, a measure of chaos for spiking neural data. These results are consistent with our hypothesis according to which electrical coupling regulates the dimensionality and the complexity in the inferior olive neurons in order to optimize both motor learning and control of high dimensional motor systems by the cerebellum. Public Library of Science 2020-07-30 /pmc/articles/PMC7419012/ /pubmed/32730255 http://dx.doi.org/10.1371/journal.pcbi.1008075 Text en © 2020 Hoang 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 (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Hoang, Huu
Lang, Eric J.
Hirata, Yoshito
Tokuda, Isao T.
Aihara, Kazuyuki
Toyama, Keisuke
Kawato, Mitsuo
Schweighofer, Nicolas
Electrical coupling controls dimensionality and chaotic firing of inferior olive neurons
title Electrical coupling controls dimensionality and chaotic firing of inferior olive neurons
title_full Electrical coupling controls dimensionality and chaotic firing of inferior olive neurons
title_fullStr Electrical coupling controls dimensionality and chaotic firing of inferior olive neurons
title_full_unstemmed Electrical coupling controls dimensionality and chaotic firing of inferior olive neurons
title_short Electrical coupling controls dimensionality and chaotic firing of inferior olive neurons
title_sort electrical coupling controls dimensionality and chaotic firing of inferior olive neurons
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7419012/
https://www.ncbi.nlm.nih.gov/pubmed/32730255
http://dx.doi.org/10.1371/journal.pcbi.1008075
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