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Traumatic Brain Injury Preserves Firing Rates But Disrupts Laminar Oscillatory Coupling and Neuronal Entrainment in Hippocampal CA1

While hippocampal-dependent learning and memory are particularly vulnerable to traumatic brain injury (TBI), the functional status of individual hippocampal neurons and their interactions with oscillations are unknown following injury. Using the most common rodent TBI model and laminar recordings in...

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Autores principales: Koch, Paul F., Cottone, Carlo, Adam, Christopher D., Ulyanova, Alexandra V., Russo, Robin J., Weber, Maura T., Arena, John D., Johnson, Victoria E., Wolf, John A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Society for Neuroscience 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7477953/
https://www.ncbi.nlm.nih.gov/pubmed/32737188
http://dx.doi.org/10.1523/ENEURO.0495-19.2020
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author Koch, Paul F.
Cottone, Carlo
Adam, Christopher D.
Ulyanova, Alexandra V.
Russo, Robin J.
Weber, Maura T.
Arena, John D.
Johnson, Victoria E.
Wolf, John A.
author_facet Koch, Paul F.
Cottone, Carlo
Adam, Christopher D.
Ulyanova, Alexandra V.
Russo, Robin J.
Weber, Maura T.
Arena, John D.
Johnson, Victoria E.
Wolf, John A.
author_sort Koch, Paul F.
collection PubMed
description While hippocampal-dependent learning and memory are particularly vulnerable to traumatic brain injury (TBI), the functional status of individual hippocampal neurons and their interactions with oscillations are unknown following injury. Using the most common rodent TBI model and laminar recordings in CA1, we found a significant reduction in oscillatory input into the radiatum layer of CA1 after TBI. Surprisingly, CA1 neurons maintained normal firing rates despite attenuated input, but did not maintain appropriate synchronization with this oscillatory input or with local high-frequency oscillations. Normal synchronization between these coordinating oscillations was also impaired. Simultaneous recordings of medial septal neurons known to participate in theta oscillations revealed increased GABAergic/glutamatergic firing rates postinjury under anesthesia, potentially because of a loss of modulating feedback from the hippocampus. These results suggest that TBI leads to a profound disruption of connectivity and oscillatory interactions, potentially disrupting the timing of CA1 neuronal ensembles that underlie aspects of learning and memory.
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spelling pubmed-74779532020-09-08 Traumatic Brain Injury Preserves Firing Rates But Disrupts Laminar Oscillatory Coupling and Neuronal Entrainment in Hippocampal CA1 Koch, Paul F. Cottone, Carlo Adam, Christopher D. Ulyanova, Alexandra V. Russo, Robin J. Weber, Maura T. Arena, John D. Johnson, Victoria E. Wolf, John A. eNeuro Research Article: New Research While hippocampal-dependent learning and memory are particularly vulnerable to traumatic brain injury (TBI), the functional status of individual hippocampal neurons and their interactions with oscillations are unknown following injury. Using the most common rodent TBI model and laminar recordings in CA1, we found a significant reduction in oscillatory input into the radiatum layer of CA1 after TBI. Surprisingly, CA1 neurons maintained normal firing rates despite attenuated input, but did not maintain appropriate synchronization with this oscillatory input or with local high-frequency oscillations. Normal synchronization between these coordinating oscillations was also impaired. Simultaneous recordings of medial septal neurons known to participate in theta oscillations revealed increased GABAergic/glutamatergic firing rates postinjury under anesthesia, potentially because of a loss of modulating feedback from the hippocampus. These results suggest that TBI leads to a profound disruption of connectivity and oscillatory interactions, potentially disrupting the timing of CA1 neuronal ensembles that underlie aspects of learning and memory. Society for Neuroscience 2020-09-02 /pmc/articles/PMC7477953/ /pubmed/32737188 http://dx.doi.org/10.1523/ENEURO.0495-19.2020 Text en Copyright © 2020 Koch et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution and reproduction in any medium provided that the original work is properly attributed.
spellingShingle Research Article: New Research
Koch, Paul F.
Cottone, Carlo
Adam, Christopher D.
Ulyanova, Alexandra V.
Russo, Robin J.
Weber, Maura T.
Arena, John D.
Johnson, Victoria E.
Wolf, John A.
Traumatic Brain Injury Preserves Firing Rates But Disrupts Laminar Oscillatory Coupling and Neuronal Entrainment in Hippocampal CA1
title Traumatic Brain Injury Preserves Firing Rates But Disrupts Laminar Oscillatory Coupling and Neuronal Entrainment in Hippocampal CA1
title_full Traumatic Brain Injury Preserves Firing Rates But Disrupts Laminar Oscillatory Coupling and Neuronal Entrainment in Hippocampal CA1
title_fullStr Traumatic Brain Injury Preserves Firing Rates But Disrupts Laminar Oscillatory Coupling and Neuronal Entrainment in Hippocampal CA1
title_full_unstemmed Traumatic Brain Injury Preserves Firing Rates But Disrupts Laminar Oscillatory Coupling and Neuronal Entrainment in Hippocampal CA1
title_short Traumatic Brain Injury Preserves Firing Rates But Disrupts Laminar Oscillatory Coupling and Neuronal Entrainment in Hippocampal CA1
title_sort traumatic brain injury preserves firing rates but disrupts laminar oscillatory coupling and neuronal entrainment in hippocampal ca1
topic Research Article: New Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7477953/
https://www.ncbi.nlm.nih.gov/pubmed/32737188
http://dx.doi.org/10.1523/ENEURO.0495-19.2020
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