Quantal glutamate release is essential for reliable neuronal encodings in cerebral networks.

<h4>Background</h4>The neurons and synapses work coordinately to program the brain codes of controlling cognition and behaviors. Spike patterns at the presynaptic neurons regulate synaptic transmission. The quantitative regulations of synapse dynamics in spike encoding at the postsynapti...

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Main Authors: Jiandong Yu, Hao Qian, Na Chen, Jin-Hui Wang
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2011-01-01
Series:PLoS ONE
Online Access:https://www.ncbi.nlm.nih.gov/pmc/articles/pmid/21949885/?tool=EBI
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spelling doaj-f6cc3efb1ee044d3ab0c5010031bbc452021-03-04T01:32:46ZengPublic Library of Science (PLoS)PLoS ONE1932-62032011-01-0169e2521910.1371/journal.pone.0025219Quantal glutamate release is essential for reliable neuronal encodings in cerebral networks.Jiandong YuHao QianNa ChenJin-Hui Wang<h4>Background</h4>The neurons and synapses work coordinately to program the brain codes of controlling cognition and behaviors. Spike patterns at the presynaptic neurons regulate synaptic transmission. The quantitative regulations of synapse dynamics in spike encoding at the postsynaptic neurons remain unclear.<h4>Methodology/principal findings</h4>With dual whole-cell recordings at synapse-paired cells in mouse cortical slices, we have investigated the regulation of synapse dynamics to neuronal spike encoding at cerebral circuits assembled by pyramidal neurons and GABAergic ones. Our studies at unitary synapses show that postsynaptic responses are constant over time, such as glutamate receptor-channel currents at GABAergic neurons and glutamate transport currents at astrocytes, indicating quantal glutamate release. In terms of its physiological impact, our results demonstrate that the signals integrated from quantal glutamatergic synapses drive spike encoding at GABAergic neurons reliably, which in turn precisely set spike encoding at pyramidal neurons through feedback inhibition.<h4>Conclusion/significance</h4>Our studies provide the evidences for the quantal glutamate release to drive the spike encodings precisely in cortical circuits, which may be essential for programming the reliable codes in the brain to manage well-organized behaviors.https://www.ncbi.nlm.nih.gov/pmc/articles/pmid/21949885/?tool=EBI
collection DOAJ
language English
format Article
sources DOAJ
author Jiandong Yu
Hao Qian
Na Chen
Jin-Hui Wang
spellingShingle Jiandong Yu
Hao Qian
Na Chen
Jin-Hui Wang
Quantal glutamate release is essential for reliable neuronal encodings in cerebral networks.
PLoS ONE
author_facet Jiandong Yu
Hao Qian
Na Chen
Jin-Hui Wang
author_sort Jiandong Yu
title Quantal glutamate release is essential for reliable neuronal encodings in cerebral networks.
title_short Quantal glutamate release is essential for reliable neuronal encodings in cerebral networks.
title_full Quantal glutamate release is essential for reliable neuronal encodings in cerebral networks.
title_fullStr Quantal glutamate release is essential for reliable neuronal encodings in cerebral networks.
title_full_unstemmed Quantal glutamate release is essential for reliable neuronal encodings in cerebral networks.
title_sort quantal glutamate release is essential for reliable neuronal encodings in cerebral networks.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2011-01-01
description <h4>Background</h4>The neurons and synapses work coordinately to program the brain codes of controlling cognition and behaviors. Spike patterns at the presynaptic neurons regulate synaptic transmission. The quantitative regulations of synapse dynamics in spike encoding at the postsynaptic neurons remain unclear.<h4>Methodology/principal findings</h4>With dual whole-cell recordings at synapse-paired cells in mouse cortical slices, we have investigated the regulation of synapse dynamics to neuronal spike encoding at cerebral circuits assembled by pyramidal neurons and GABAergic ones. Our studies at unitary synapses show that postsynaptic responses are constant over time, such as glutamate receptor-channel currents at GABAergic neurons and glutamate transport currents at astrocytes, indicating quantal glutamate release. In terms of its physiological impact, our results demonstrate that the signals integrated from quantal glutamatergic synapses drive spike encoding at GABAergic neurons reliably, which in turn precisely set spike encoding at pyramidal neurons through feedback inhibition.<h4>Conclusion/significance</h4>Our studies provide the evidences for the quantal glutamate release to drive the spike encodings precisely in cortical circuits, which may be essential for programming the reliable codes in the brain to manage well-organized behaviors.
url https://www.ncbi.nlm.nih.gov/pmc/articles/pmid/21949885/?tool=EBI
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AT haoqian quantalglutamatereleaseisessentialforreliableneuronalencodingsincerebralnetworks
AT nachen quantalglutamatereleaseisessentialforreliableneuronalencodingsincerebralnetworks
AT jinhuiwang quantalglutamatereleaseisessentialforreliableneuronalencodingsincerebralnetworks
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