Cargando…

Impairments of Synaptic Plasticity Induction Threshold and Network Oscillatory Activity in the Hippocampus Underlie Memory Deficits in a Non-Transgenic Mouse Model of Amyloidosis

In early Alzheimer disease (AD) models synaptic failures and upstreaming aberrant patterns of network synchronous activity result in hippocampal-dependent memory deficits. In such initial stage, soluble forms of Amyloid-β (Aβ) peptides have been shown to play a causal role. Among different Aβ specie...

Descripción completa

Detalles Bibliográficos
Autores principales: Mayordomo-Cava, Jennifer, Iborra-Lázaro, Guillermo, Djebari, Souhail, Temprano-Carazo, Sara, Sánchez-Rodríguez, Irene, Jeremic, Danko, Gruart, Agnès, Delgado-García, José María, Jiménez-Díaz, Lydia, Navarro-López, Juan D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7407959/
https://www.ncbi.nlm.nih.gov/pubmed/32698467
http://dx.doi.org/10.3390/biology9070175
_version_ 1783567726398144512
author Mayordomo-Cava, Jennifer
Iborra-Lázaro, Guillermo
Djebari, Souhail
Temprano-Carazo, Sara
Sánchez-Rodríguez, Irene
Jeremic, Danko
Gruart, Agnès
Delgado-García, José María
Jiménez-Díaz, Lydia
Navarro-López, Juan D.
author_facet Mayordomo-Cava, Jennifer
Iborra-Lázaro, Guillermo
Djebari, Souhail
Temprano-Carazo, Sara
Sánchez-Rodríguez, Irene
Jeremic, Danko
Gruart, Agnès
Delgado-García, José María
Jiménez-Díaz, Lydia
Navarro-López, Juan D.
author_sort Mayordomo-Cava, Jennifer
collection PubMed
description In early Alzheimer disease (AD) models synaptic failures and upstreaming aberrant patterns of network synchronous activity result in hippocampal-dependent memory deficits. In such initial stage, soluble forms of Amyloid-β (Aβ) peptides have been shown to play a causal role. Among different Aβ species, Aβ(25–35) has been identified as the biologically active fragment, as induces major neuropathological signs related to early AD stages. Consequently, it has been extensively used to acutely explore the pathophysiological events related with neuronal dysfunction induced by soluble Aβ forms. However, the synaptic mechanisms underlying its toxic effects on hippocampal-dependent memory remain unresolved. Here, in an in vivo model of amyloidosis generated by intracerebroventricular injections of Aβ(25–35) we studied the synaptic dysfunction mechanisms underlying hippocampal cognitive deficits. At the synaptic level, long-term potentiation (LTP) of synaptic excitation and inhibition was induced in CA1 region by high frequency simulation (HFS) applied to Schaffer collaterals. Aβ(25–35) was found to alter metaplastic mechanisms of plasticity, facilitating long-term depression (LTD) of both types of LTP. In addition, aberrant synchronization of hippocampal network activity was found while at the behavioral level, deficits in hippocampal-dependent habituation and recognition memories emerged. Together, our results provide a substrate for synaptic disruption mechanism underlying hippocampal cognitive deficits present in Aβ(25–35) amyloidosis model.
format Online
Article
Text
id pubmed-7407959
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-74079592020-08-12 Impairments of Synaptic Plasticity Induction Threshold and Network Oscillatory Activity in the Hippocampus Underlie Memory Deficits in a Non-Transgenic Mouse Model of Amyloidosis Mayordomo-Cava, Jennifer Iborra-Lázaro, Guillermo Djebari, Souhail Temprano-Carazo, Sara Sánchez-Rodríguez, Irene Jeremic, Danko Gruart, Agnès Delgado-García, José María Jiménez-Díaz, Lydia Navarro-López, Juan D. Biology (Basel) Article In early Alzheimer disease (AD) models synaptic failures and upstreaming aberrant patterns of network synchronous activity result in hippocampal-dependent memory deficits. In such initial stage, soluble forms of Amyloid-β (Aβ) peptides have been shown to play a causal role. Among different Aβ species, Aβ(25–35) has been identified as the biologically active fragment, as induces major neuropathological signs related to early AD stages. Consequently, it has been extensively used to acutely explore the pathophysiological events related with neuronal dysfunction induced by soluble Aβ forms. However, the synaptic mechanisms underlying its toxic effects on hippocampal-dependent memory remain unresolved. Here, in an in vivo model of amyloidosis generated by intracerebroventricular injections of Aβ(25–35) we studied the synaptic dysfunction mechanisms underlying hippocampal cognitive deficits. At the synaptic level, long-term potentiation (LTP) of synaptic excitation and inhibition was induced in CA1 region by high frequency simulation (HFS) applied to Schaffer collaterals. Aβ(25–35) was found to alter metaplastic mechanisms of plasticity, facilitating long-term depression (LTD) of both types of LTP. In addition, aberrant synchronization of hippocampal network activity was found while at the behavioral level, deficits in hippocampal-dependent habituation and recognition memories emerged. Together, our results provide a substrate for synaptic disruption mechanism underlying hippocampal cognitive deficits present in Aβ(25–35) amyloidosis model. MDPI 2020-07-20 /pmc/articles/PMC7407959/ /pubmed/32698467 http://dx.doi.org/10.3390/biology9070175 Text en © 2020 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Mayordomo-Cava, Jennifer
Iborra-Lázaro, Guillermo
Djebari, Souhail
Temprano-Carazo, Sara
Sánchez-Rodríguez, Irene
Jeremic, Danko
Gruart, Agnès
Delgado-García, José María
Jiménez-Díaz, Lydia
Navarro-López, Juan D.
Impairments of Synaptic Plasticity Induction Threshold and Network Oscillatory Activity in the Hippocampus Underlie Memory Deficits in a Non-Transgenic Mouse Model of Amyloidosis
title Impairments of Synaptic Plasticity Induction Threshold and Network Oscillatory Activity in the Hippocampus Underlie Memory Deficits in a Non-Transgenic Mouse Model of Amyloidosis
title_full Impairments of Synaptic Plasticity Induction Threshold and Network Oscillatory Activity in the Hippocampus Underlie Memory Deficits in a Non-Transgenic Mouse Model of Amyloidosis
title_fullStr Impairments of Synaptic Plasticity Induction Threshold and Network Oscillatory Activity in the Hippocampus Underlie Memory Deficits in a Non-Transgenic Mouse Model of Amyloidosis
title_full_unstemmed Impairments of Synaptic Plasticity Induction Threshold and Network Oscillatory Activity in the Hippocampus Underlie Memory Deficits in a Non-Transgenic Mouse Model of Amyloidosis
title_short Impairments of Synaptic Plasticity Induction Threshold and Network Oscillatory Activity in the Hippocampus Underlie Memory Deficits in a Non-Transgenic Mouse Model of Amyloidosis
title_sort impairments of synaptic plasticity induction threshold and network oscillatory activity in the hippocampus underlie memory deficits in a non-transgenic mouse model of amyloidosis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7407959/
https://www.ncbi.nlm.nih.gov/pubmed/32698467
http://dx.doi.org/10.3390/biology9070175
work_keys_str_mv AT mayordomocavajennifer impairmentsofsynapticplasticityinductionthresholdandnetworkoscillatoryactivityinthehippocampusunderliememorydeficitsinanontransgenicmousemodelofamyloidosis
AT iborralazaroguillermo impairmentsofsynapticplasticityinductionthresholdandnetworkoscillatoryactivityinthehippocampusunderliememorydeficitsinanontransgenicmousemodelofamyloidosis
AT djebarisouhail impairmentsofsynapticplasticityinductionthresholdandnetworkoscillatoryactivityinthehippocampusunderliememorydeficitsinanontransgenicmousemodelofamyloidosis
AT tempranocarazosara impairmentsofsynapticplasticityinductionthresholdandnetworkoscillatoryactivityinthehippocampusunderliememorydeficitsinanontransgenicmousemodelofamyloidosis
AT sanchezrodriguezirene impairmentsofsynapticplasticityinductionthresholdandnetworkoscillatoryactivityinthehippocampusunderliememorydeficitsinanontransgenicmousemodelofamyloidosis
AT jeremicdanko impairmentsofsynapticplasticityinductionthresholdandnetworkoscillatoryactivityinthehippocampusunderliememorydeficitsinanontransgenicmousemodelofamyloidosis
AT gruartagnes impairmentsofsynapticplasticityinductionthresholdandnetworkoscillatoryactivityinthehippocampusunderliememorydeficitsinanontransgenicmousemodelofamyloidosis
AT delgadogarciajosemaria impairmentsofsynapticplasticityinductionthresholdandnetworkoscillatoryactivityinthehippocampusunderliememorydeficitsinanontransgenicmousemodelofamyloidosis
AT jimenezdiazlydia impairmentsofsynapticplasticityinductionthresholdandnetworkoscillatoryactivityinthehippocampusunderliememorydeficitsinanontransgenicmousemodelofamyloidosis
AT navarrolopezjuand impairmentsofsynapticplasticityinductionthresholdandnetworkoscillatoryactivityinthehippocampusunderliememorydeficitsinanontransgenicmousemodelofamyloidosis