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High Bandwidth Synaptic Communication and Frequency Tracking in Human Neocortex

Neuronal firing, synaptic transmission, and its plasticity form the building blocks for processing and storage of information in the brain. It is unknown whether adult human synapses are more efficient in transferring information between neurons than rodent synapses. To test this, we recorded from c...

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Autores principales: Testa-Silva, Guilherme, Verhoog, Matthijs B., Linaro, Daniele, de Kock, Christiaan P. J., Baayen, Johannes C., Meredith, Rhiannon M., De Zeeuw, Chris I., Giugliano, Michele, Mansvelder, Huibert D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4244038/
https://www.ncbi.nlm.nih.gov/pubmed/25422947
http://dx.doi.org/10.1371/journal.pbio.1002007
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author Testa-Silva, Guilherme
Verhoog, Matthijs B.
Linaro, Daniele
de Kock, Christiaan P. J.
Baayen, Johannes C.
Meredith, Rhiannon M.
De Zeeuw, Chris I.
Giugliano, Michele
Mansvelder, Huibert D.
author_facet Testa-Silva, Guilherme
Verhoog, Matthijs B.
Linaro, Daniele
de Kock, Christiaan P. J.
Baayen, Johannes C.
Meredith, Rhiannon M.
De Zeeuw, Chris I.
Giugliano, Michele
Mansvelder, Huibert D.
author_sort Testa-Silva, Guilherme
collection PubMed
description Neuronal firing, synaptic transmission, and its plasticity form the building blocks for processing and storage of information in the brain. It is unknown whether adult human synapses are more efficient in transferring information between neurons than rodent synapses. To test this, we recorded from connected pairs of pyramidal neurons in acute brain slices of adult human and mouse temporal cortex and probed the dynamical properties of use-dependent plasticity. We found that human synaptic connections were purely depressing and that they recovered three to four times more swiftly from depression than synapses in rodent neocortex. Thereby, during realistic spike trains, the temporal resolution of synaptic information exchange in human synapses substantially surpasses that in mice. Using information theory, we calculate that information transfer between human pyramidal neurons exceeds that of mouse pyramidal neurons by four to nine times, well into the beta and gamma frequency range. In addition, we found that human principal cells tracked fine temporal features, conveyed in received synaptic inputs, at a wider bandwidth than for rodents. Action potential firing probability was reliably phase-locked to input transients up to 1,000 cycles/s because of a steep onset of action potentials in human pyramidal neurons during spike trains, unlike in rodent neurons. Our data show that, in contrast to the widely held views of limited information transfer in rodent depressing synapses, fast recovering synapses of human neurons can actually transfer substantial amounts of information during spike trains. In addition, human pyramidal neurons are equipped to encode high synaptic information content. Thus, adult human cortical microcircuits relay information at a wider bandwidth than rodent microcircuits.
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spelling pubmed-42440382014-12-05 High Bandwidth Synaptic Communication and Frequency Tracking in Human Neocortex Testa-Silva, Guilherme Verhoog, Matthijs B. Linaro, Daniele de Kock, Christiaan P. J. Baayen, Johannes C. Meredith, Rhiannon M. De Zeeuw, Chris I. Giugliano, Michele Mansvelder, Huibert D. PLoS Biol Research Article Neuronal firing, synaptic transmission, and its plasticity form the building blocks for processing and storage of information in the brain. It is unknown whether adult human synapses are more efficient in transferring information between neurons than rodent synapses. To test this, we recorded from connected pairs of pyramidal neurons in acute brain slices of adult human and mouse temporal cortex and probed the dynamical properties of use-dependent plasticity. We found that human synaptic connections were purely depressing and that they recovered three to four times more swiftly from depression than synapses in rodent neocortex. Thereby, during realistic spike trains, the temporal resolution of synaptic information exchange in human synapses substantially surpasses that in mice. Using information theory, we calculate that information transfer between human pyramidal neurons exceeds that of mouse pyramidal neurons by four to nine times, well into the beta and gamma frequency range. In addition, we found that human principal cells tracked fine temporal features, conveyed in received synaptic inputs, at a wider bandwidth than for rodents. Action potential firing probability was reliably phase-locked to input transients up to 1,000 cycles/s because of a steep onset of action potentials in human pyramidal neurons during spike trains, unlike in rodent neurons. Our data show that, in contrast to the widely held views of limited information transfer in rodent depressing synapses, fast recovering synapses of human neurons can actually transfer substantial amounts of information during spike trains. In addition, human pyramidal neurons are equipped to encode high synaptic information content. Thus, adult human cortical microcircuits relay information at a wider bandwidth than rodent microcircuits. Public Library of Science 2014-11-25 /pmc/articles/PMC4244038/ /pubmed/25422947 http://dx.doi.org/10.1371/journal.pbio.1002007 Text en © 2014 Testa-Silva 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
Testa-Silva, Guilherme
Verhoog, Matthijs B.
Linaro, Daniele
de Kock, Christiaan P. J.
Baayen, Johannes C.
Meredith, Rhiannon M.
De Zeeuw, Chris I.
Giugliano, Michele
Mansvelder, Huibert D.
High Bandwidth Synaptic Communication and Frequency Tracking in Human Neocortex
title High Bandwidth Synaptic Communication and Frequency Tracking in Human Neocortex
title_full High Bandwidth Synaptic Communication and Frequency Tracking in Human Neocortex
title_fullStr High Bandwidth Synaptic Communication and Frequency Tracking in Human Neocortex
title_full_unstemmed High Bandwidth Synaptic Communication and Frequency Tracking in Human Neocortex
title_short High Bandwidth Synaptic Communication and Frequency Tracking in Human Neocortex
title_sort high bandwidth synaptic communication and frequency tracking in human neocortex
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4244038/
https://www.ncbi.nlm.nih.gov/pubmed/25422947
http://dx.doi.org/10.1371/journal.pbio.1002007
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