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c-Abl Deficiency Provides Synaptic Resiliency Against Aβ-Oligomers

Spine pathology has been implicated in the early onset of Alzheimer’s disease (AD), where Aβ-Oligomers (AβOs) cause synaptic dysfunction and loss. Previously, we described that pharmacological inhibition of c-Abl prevents AβOs-induced synaptic alterations. Hence, this kinase seems to be a key elemen...

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Autores principales: Gutierrez, Daniela A., Vargas, Lina M., Chandia-Cristi, América, de la Fuente, Catalina, Leal, Nancy, Alvarez, Alejandra R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6902026/
https://www.ncbi.nlm.nih.gov/pubmed/31849613
http://dx.doi.org/10.3389/fncel.2019.00526
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author Gutierrez, Daniela A.
Vargas, Lina M.
Chandia-Cristi, América
de la Fuente, Catalina
Leal, Nancy
Alvarez, Alejandra R.
author_facet Gutierrez, Daniela A.
Vargas, Lina M.
Chandia-Cristi, América
de la Fuente, Catalina
Leal, Nancy
Alvarez, Alejandra R.
author_sort Gutierrez, Daniela A.
collection PubMed
description Spine pathology has been implicated in the early onset of Alzheimer’s disease (AD), where Aβ-Oligomers (AβOs) cause synaptic dysfunction and loss. Previously, we described that pharmacological inhibition of c-Abl prevents AβOs-induced synaptic alterations. Hence, this kinase seems to be a key element in AD progression. Here, we studied the role of c-Abl on dendritic spine morphological changes induced by AβOs using c-Abl null neurons (c-Abl-KO). First, we characterized the effect of c-Abl deficiency on dendritic spine density and found that its absence increases dendritic spine density. While AβOs-treatment reduces the spine number in both wild-type (WT) and c-Abl-KO neurons, AβOs-driven spine density loss was not affected by c-Abl. We then characterized AβOs-induced morphological changes in dendritic spines of c-Abl-KO neurons. AβOs induced a decrease in the number of mushroom spines in c-Abl-KO neurons while preserving the populations of immature stubby, thin, and filopodia spines. Furthermore, synaptic contacts evaluated by PSD95/Piccolo clustering and cell viability were preserved in AβOs-exposed c-Abl-KO neurons. In conclusion, our results indicate that in the presence of AβOs c-Abl participates in synaptic contact removal, increasing susceptibility to AβOs damage. Its deficiency increases the immature spine population reducing AβOs-induced synapse elimination. Therefore, c-Abl signaling could be a relevant actor in the early stages of AD.
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spelling pubmed-69020262019-12-17 c-Abl Deficiency Provides Synaptic Resiliency Against Aβ-Oligomers Gutierrez, Daniela A. Vargas, Lina M. Chandia-Cristi, América de la Fuente, Catalina Leal, Nancy Alvarez, Alejandra R. Front Cell Neurosci Cellular Neuroscience Spine pathology has been implicated in the early onset of Alzheimer’s disease (AD), where Aβ-Oligomers (AβOs) cause synaptic dysfunction and loss. Previously, we described that pharmacological inhibition of c-Abl prevents AβOs-induced synaptic alterations. Hence, this kinase seems to be a key element in AD progression. Here, we studied the role of c-Abl on dendritic spine morphological changes induced by AβOs using c-Abl null neurons (c-Abl-KO). First, we characterized the effect of c-Abl deficiency on dendritic spine density and found that its absence increases dendritic spine density. While AβOs-treatment reduces the spine number in both wild-type (WT) and c-Abl-KO neurons, AβOs-driven spine density loss was not affected by c-Abl. We then characterized AβOs-induced morphological changes in dendritic spines of c-Abl-KO neurons. AβOs induced a decrease in the number of mushroom spines in c-Abl-KO neurons while preserving the populations of immature stubby, thin, and filopodia spines. Furthermore, synaptic contacts evaluated by PSD95/Piccolo clustering and cell viability were preserved in AβOs-exposed c-Abl-KO neurons. In conclusion, our results indicate that in the presence of AβOs c-Abl participates in synaptic contact removal, increasing susceptibility to AβOs damage. Its deficiency increases the immature spine population reducing AβOs-induced synapse elimination. Therefore, c-Abl signaling could be a relevant actor in the early stages of AD. Frontiers Media S.A. 2019-11-26 /pmc/articles/PMC6902026/ /pubmed/31849613 http://dx.doi.org/10.3389/fncel.2019.00526 Text en Copyright © 2019 Gutierrez, Vargas, Chandia-Cristi, de la Fuente, Leal and Alvarez. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Cellular Neuroscience
Gutierrez, Daniela A.
Vargas, Lina M.
Chandia-Cristi, América
de la Fuente, Catalina
Leal, Nancy
Alvarez, Alejandra R.
c-Abl Deficiency Provides Synaptic Resiliency Against Aβ-Oligomers
title c-Abl Deficiency Provides Synaptic Resiliency Against Aβ-Oligomers
title_full c-Abl Deficiency Provides Synaptic Resiliency Against Aβ-Oligomers
title_fullStr c-Abl Deficiency Provides Synaptic Resiliency Against Aβ-Oligomers
title_full_unstemmed c-Abl Deficiency Provides Synaptic Resiliency Against Aβ-Oligomers
title_short c-Abl Deficiency Provides Synaptic Resiliency Against Aβ-Oligomers
title_sort c-abl deficiency provides synaptic resiliency against aβ-oligomers
topic Cellular Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6902026/
https://www.ncbi.nlm.nih.gov/pubmed/31849613
http://dx.doi.org/10.3389/fncel.2019.00526
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