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Carbamazepine Reduces Sharp Wave-Ripple Complexes and Exerts Synapse-Specific Inhibition of Neurotransmission in Ex Vivo Hippocampal Slices

Higher therapeutic concentrations of the antiseizure medication carbamazepine (CBZ) are associated with cognitive side effects. Hippocampal sharp wave-ripple complexes (SPW-Rs) are proposed to participate in memory consolidation during periods of quiet and slow-wave sleep. SPW-Rs are generated in th...

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Autores principales: Simeone, Timothy A., Heruye, Segewkal H., Kostansek, Joseph A., Yeh, Mary Y., Matthews, Stephanie A., Samson, Kaeli K., Simeone, Kristina A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8232098/
https://www.ncbi.nlm.nih.gov/pubmed/34203601
http://dx.doi.org/10.3390/brainsci11060787
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author Simeone, Timothy A.
Heruye, Segewkal H.
Kostansek, Joseph A.
Yeh, Mary Y.
Matthews, Stephanie A.
Samson, Kaeli K.
Simeone, Kristina A.
author_facet Simeone, Timothy A.
Heruye, Segewkal H.
Kostansek, Joseph A.
Yeh, Mary Y.
Matthews, Stephanie A.
Samson, Kaeli K.
Simeone, Kristina A.
author_sort Simeone, Timothy A.
collection PubMed
description Higher therapeutic concentrations of the antiseizure medication carbamazepine (CBZ) are associated with cognitive side effects. Hippocampal sharp wave-ripple complexes (SPW-Rs) are proposed to participate in memory consolidation during periods of quiet and slow-wave sleep. SPW-Rs are generated in the CA3 region and are regulated by multiple synaptic inputs. Here, we used a multi-electrode array to determine the effects of CBZ on SPW-Rs and synaptic transmission at multiple hippocampal synapses. Our results demonstrate that CBZ reduced SPW-Rs at therapeutically relevant concentrations (IC(50) = 37 μM) and altered the core characteristics of ripples, important for information processing and consolidation. Moreover, CBZ inhibited neurotransmission in a synapse-specific manner. CBZ inhibition was most potent at the medial-perforant-path-to-CA3 and mossy-fiber-to-CA3 synapses (IC(50)s ~ 30 and 60 μM, respectively) and least potent at medial-perforant-path-to-dentate granule cell synapses (IC(50) ~ 120 μM). These results suggest that the synapse-specific CBZ inhibition of neurotransmission reduces SPW-Rs and that the CBZ inhibition of SPW-Rs may underlie the cognitive impairments observed with therapeutic doses of CBZ.
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spelling pubmed-82320982021-06-26 Carbamazepine Reduces Sharp Wave-Ripple Complexes and Exerts Synapse-Specific Inhibition of Neurotransmission in Ex Vivo Hippocampal Slices Simeone, Timothy A. Heruye, Segewkal H. Kostansek, Joseph A. Yeh, Mary Y. Matthews, Stephanie A. Samson, Kaeli K. Simeone, Kristina A. Brain Sci Brief Report Higher therapeutic concentrations of the antiseizure medication carbamazepine (CBZ) are associated with cognitive side effects. Hippocampal sharp wave-ripple complexes (SPW-Rs) are proposed to participate in memory consolidation during periods of quiet and slow-wave sleep. SPW-Rs are generated in the CA3 region and are regulated by multiple synaptic inputs. Here, we used a multi-electrode array to determine the effects of CBZ on SPW-Rs and synaptic transmission at multiple hippocampal synapses. Our results demonstrate that CBZ reduced SPW-Rs at therapeutically relevant concentrations (IC(50) = 37 μM) and altered the core characteristics of ripples, important for information processing and consolidation. Moreover, CBZ inhibited neurotransmission in a synapse-specific manner. CBZ inhibition was most potent at the medial-perforant-path-to-CA3 and mossy-fiber-to-CA3 synapses (IC(50)s ~ 30 and 60 μM, respectively) and least potent at medial-perforant-path-to-dentate granule cell synapses (IC(50) ~ 120 μM). These results suggest that the synapse-specific CBZ inhibition of neurotransmission reduces SPW-Rs and that the CBZ inhibition of SPW-Rs may underlie the cognitive impairments observed with therapeutic doses of CBZ. MDPI 2021-06-15 /pmc/articles/PMC8232098/ /pubmed/34203601 http://dx.doi.org/10.3390/brainsci11060787 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Brief Report
Simeone, Timothy A.
Heruye, Segewkal H.
Kostansek, Joseph A.
Yeh, Mary Y.
Matthews, Stephanie A.
Samson, Kaeli K.
Simeone, Kristina A.
Carbamazepine Reduces Sharp Wave-Ripple Complexes and Exerts Synapse-Specific Inhibition of Neurotransmission in Ex Vivo Hippocampal Slices
title Carbamazepine Reduces Sharp Wave-Ripple Complexes and Exerts Synapse-Specific Inhibition of Neurotransmission in Ex Vivo Hippocampal Slices
title_full Carbamazepine Reduces Sharp Wave-Ripple Complexes and Exerts Synapse-Specific Inhibition of Neurotransmission in Ex Vivo Hippocampal Slices
title_fullStr Carbamazepine Reduces Sharp Wave-Ripple Complexes and Exerts Synapse-Specific Inhibition of Neurotransmission in Ex Vivo Hippocampal Slices
title_full_unstemmed Carbamazepine Reduces Sharp Wave-Ripple Complexes and Exerts Synapse-Specific Inhibition of Neurotransmission in Ex Vivo Hippocampal Slices
title_short Carbamazepine Reduces Sharp Wave-Ripple Complexes and Exerts Synapse-Specific Inhibition of Neurotransmission in Ex Vivo Hippocampal Slices
title_sort carbamazepine reduces sharp wave-ripple complexes and exerts synapse-specific inhibition of neurotransmission in ex vivo hippocampal slices
topic Brief Report
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8232098/
https://www.ncbi.nlm.nih.gov/pubmed/34203601
http://dx.doi.org/10.3390/brainsci11060787
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