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

dc.contributor.authorCarrascal, Livia
dc.contributor.authorGorton, Ella
dc.contributor.authorPardillo-Díaz, Ricardo
dc.contributor.authorPerez-García, Patricia
dc.contributor.authorGómez-Oliva, Ricardo
dc.contributor.authorCastro, Carmen
dc.contributor.authorNunez-Abades, Pedro
dc.contributor.authoraffiliation[Carrascal,L; Gorton,E; Perez-García,P; Nunez-Abades,P] Departament of Physiology, Pharmacy School, University of Seville, Seville, Spain. [Carrascal,L; Pardillo-Díaz,R; Gómez-Oliva,R; Castro,C; Nunez-Abades,P] Biomedical Research and Innovation Institute of Cadiz (INIBICA), Cadiz, Spain. [Pardillo-Díaz,R; Gómez-Oliva,R; Castro,C] Area of Physiology, School of Medicine, University of Cádiz, Cadiz, Spain.
dc.contributor.funderThis work was partially supported by Spanish Ministerio de Ciencia, Innovación y Universidades (RTI2018-099908-B-C21) and co-financed by the 2014–2020 ERDF Operational Programme and by the Department of Economy, Knowledge, Business and University of the Regional Government of Andalusia (FEDER-UCA18-106647).
dc.date.accessioned2022-09-20T07:14:37Z
dc.date.available2022-09-20T07:14:37Z
dc.date.issued2020-12-19
dc.description.abstractOxidative 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.es_ES
dc.description.versionYeses_ES
dc.identifier.citationCarrascal L, Gorton E, Pardillo-Díaz R, Perez-García P, Gómez-Oliva R, Castro C, et al. Age-Dependent Vulnerability to Oxidative Stress of Postnatal Rat Pyramidal Motor Cortex Neurons. Antioxidants. 2020 Dec 19;9(12):1307es_ES
dc.identifier.doi10.3390/antiox9121307es_ES
dc.identifier.essn2076-3921
dc.identifier.pmcPMC7766683
dc.identifier.pmid33352810es_ES
dc.identifier.urihttp://hdl.handle.net/10668/4072
dc.journal.titleAntioxidants
dc.language.isoen
dc.page.number21 p.
dc.publisherMDPIes_ES
dc.relation.publisherversionhttps://www.mdpi.com/2076-3921/9/12/1307/htmes_ES
dc.rightsAtribución 4.0 Internacional*
dc.rights.accessRightsAcceso abiertoes_ES
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/*
dc.subjectOxidative stresses_ES
dc.subjectMotor cortexes_ES
dc.subjectGlutathione levels in the braines_ES
dc.subjectPostnatal developmentes_ES
dc.subjectMembrane excitabilityes_ES
dc.subjectAmyotrophic lateral sclerosises_ES
dc.subjectLipid peroxidationes_ES
dc.subjectEstrés oxidativoes_ES
dc.subjectCorteza motoraes_ES
dc.subjectEsclerosis amiotrófica laterales_ES
dc.subjectPeroxidación de lípidoes_ES
dc.subject.meshMedical Subject Headings::Organisms::Eukaryota::Animalses_ES
dc.subject.meshMedical Subject Headings::Organisms::Eukaryota::Animals::Chordata::Vertebrates::Mammals::Rodentia::Muridae::Murinae::Ratses_ES
dc.subject.meshMedical Subject Headings::Organisms::Eukaryota::Animals::Animal Population Groups::Animals, Newbornes_ES
dc.subject.meshMedical Subject Headings::Analytical, Diagnostic and Therapeutic Techniques and Equipment::Investigative Techniques::Cytological Techniques::Patch-Clamp Techniqueses_ES
dc.subject.meshMedical Subject Headings::Chemicals and Drugs::Enzymes and Coenzymes::Enzymes::Oxidoreductases::Oxidoreductases Acting on Sulfur Group Donors::Glutathione Reductasees_ES
dc.subject.meshMedical Subject Headings::Phenomena and Processes::Chemical Phenomena::Biochemical Phenomena::Biochemical Processes::Lipid Peroxidationes_ES
dc.subject.meshMedical Subject Headings::Anatomy::Nervous System::Central Nervous System::Brain::Prosencephalon::Telencephalon::Cerebrum::Cerebral Cortex::Frontal Lobe::Motor Cortexes_ES
dc.subject.meshMedical Subject Headings::Chemicals and Drugs::Amino Acids, Peptides, and Proteins::Peptides::Oligopeptides::Glutathionees_ES
dc.subject.meshMedical Subject Headings::Anatomy::Cells::Neurons::Pyramidal Cellses_ES
dc.subject.meshMedical Subject Headings::Phenomena and Processes::Metabolic Phenomena::Metabolism::Oxidative Stresses_ES
dc.subject.meshMedical Subject Headings::Chemicals and Drugs::Organic Chemicals::Sulfur Compounds::Sulfhydryl Compoundses_ES
dc.subject.meshMedical Subject Headings::Anatomy::Cells::Neurons::Neurons, Efferent::Motor Neuronses_ES
dc.titleAge-Dependent Vulnerability to Oxidative Stress of Postnatal Rat Pyramidal Motor Cortex Neuronses_ES
dc.typeresearch article
dc.type.hasVersionVoR
dspace.entity.typePublication

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