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Age-Dependent Vulnerability to Oxidative Stress of Postnatal Rat Pyramidal Motor Cortex Neurons

Oxidative stress is one of the main proposed mechanisms involved in neuronal degeneration. To evaluate the consequences of oxidative stress on motor cortex pyramidal neurons during postnatal development, rats were classified into three groups: Newborn (P2–P7); infantile (P11–P15); and young adult (P...

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Autores principales: Carrascal, Livia, Gorton, Ella, Pardillo-Díaz, Ricardo, Perez-García, Patricia, Gómez-Oliva, Ricardo, Castro, Carmen, Nunez-Abades, Pedro
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7766683/
https://www.ncbi.nlm.nih.gov/pubmed/33352810
http://dx.doi.org/10.3390/antiox9121307
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author Carrascal, Livia
Gorton, Ella
Pardillo-Díaz, Ricardo
Perez-García, Patricia
Gómez-Oliva, Ricardo
Castro, Carmen
Nunez-Abades, Pedro
author_facet Carrascal, Livia
Gorton, Ella
Pardillo-Díaz, Ricardo
Perez-García, Patricia
Gómez-Oliva, Ricardo
Castro, Carmen
Nunez-Abades, Pedro
author_sort Carrascal, Livia
collection PubMed
description Oxidative stress is one of the main proposed mechanisms involved in neuronal degeneration. To evaluate the consequences of oxidative stress on motor cortex pyramidal neurons during postnatal development, rats were classified into three groups: Newborn (P2–P7); infantile (P11–P15); and young adult (P20–P40). Oxidative stress was induced by 10 µM of cumene hydroperoxide (CH) application. In newborn rats, using the whole cell patch-clamp technique in brain slices, no significant modifications in membrane excitability were found. In infantile rats, the input resistance increased and rheobase decreased due to the blockage of GABAergic tonic conductance. Lipid peroxidation induced by CH resulted in a noticeable increase in protein-bound 4-hidroxynonenal in homogenates in only infantile and young adult rat slices. Interestingly, homogenates of newborn rat brain slices showed the highest capacity to respond to oxidative stress by dramatically increasing their glutathione and free thiol content. This increase correlated with a time-dependent increase in the glutathione reductase activity, suggesting a greater buffering capacity of newborn rats to resist oxidative stress. Furthermore, pre-treatment of the slices with glutathione monoethyl ester acted as a neuroprotector in pyramidal neurons of infantile rats. We conclude that during maturation, the vulnerability to oxidative stress in rat motor neurons increases with age.
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spelling pubmed-77666832020-12-28 Age-Dependent Vulnerability to Oxidative Stress of Postnatal Rat Pyramidal Motor Cortex Neurons Carrascal, Livia Gorton, Ella Pardillo-Díaz, Ricardo Perez-García, Patricia Gómez-Oliva, Ricardo Castro, Carmen Nunez-Abades, Pedro Antioxidants (Basel) Article Oxidative stress is one of the main proposed mechanisms involved in neuronal degeneration. To evaluate the consequences of oxidative stress on motor cortex pyramidal neurons during postnatal development, rats were classified into three groups: Newborn (P2–P7); infantile (P11–P15); and young adult (P20–P40). Oxidative stress was induced by 10 µM of cumene hydroperoxide (CH) application. In newborn rats, using the whole cell patch-clamp technique in brain slices, no significant modifications in membrane excitability were found. In infantile rats, the input resistance increased and rheobase decreased due to the blockage of GABAergic tonic conductance. Lipid peroxidation induced by CH resulted in a noticeable increase in protein-bound 4-hidroxynonenal in homogenates in only infantile and young adult rat slices. Interestingly, homogenates of newborn rat brain slices showed the highest capacity to respond to oxidative stress by dramatically increasing their glutathione and free thiol content. This increase correlated with a time-dependent increase in the glutathione reductase activity, suggesting a greater buffering capacity of newborn rats to resist oxidative stress. Furthermore, pre-treatment of the slices with glutathione monoethyl ester acted as a neuroprotector in pyramidal neurons of infantile rats. We conclude that during maturation, the vulnerability to oxidative stress in rat motor neurons increases with age. MDPI 2020-12-19 /pmc/articles/PMC7766683/ /pubmed/33352810 http://dx.doi.org/10.3390/antiox9121307 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
Carrascal, Livia
Gorton, Ella
Pardillo-Díaz, Ricardo
Perez-García, Patricia
Gómez-Oliva, Ricardo
Castro, Carmen
Nunez-Abades, Pedro
Age-Dependent Vulnerability to Oxidative Stress of Postnatal Rat Pyramidal Motor Cortex Neurons
title Age-Dependent Vulnerability to Oxidative Stress of Postnatal Rat Pyramidal Motor Cortex Neurons
title_full Age-Dependent Vulnerability to Oxidative Stress of Postnatal Rat Pyramidal Motor Cortex Neurons
title_fullStr Age-Dependent Vulnerability to Oxidative Stress of Postnatal Rat Pyramidal Motor Cortex Neurons
title_full_unstemmed Age-Dependent Vulnerability to Oxidative Stress of Postnatal Rat Pyramidal Motor Cortex Neurons
title_short Age-Dependent Vulnerability to Oxidative Stress of Postnatal Rat Pyramidal Motor Cortex Neurons
title_sort age-dependent vulnerability to oxidative stress of postnatal rat pyramidal motor cortex neurons
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7766683/
https://www.ncbi.nlm.nih.gov/pubmed/33352810
http://dx.doi.org/10.3390/antiox9121307
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