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Impaired Cortical Cytoarchitecture and Reduced Excitability of Deep-Layer Neurons in the Offspring of Diabetic Rats

Maternal diabetes has been related to low verbal task scores, impaired fine and gross motor skills, and poor performance in graphic and visuospatial tasks during childhood. The primary motor cortex is important for controlling motor functions, and embryos exposed to high glucose show changes in cell...

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Autores principales: Valle-Bautista, Rocío, Márquez-Valadez, Berenice, Fragoso-Cabrera, América D., García-López, Guadalupe, Díaz, Néstor Fabián, Herrera-López, Gabriel, Griego, Ernesto, Galván, Emilio J., Arias-Montaño, José-Antonio, Molina-Hernández, Anayansi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7527606/
https://www.ncbi.nlm.nih.gov/pubmed/33042999
http://dx.doi.org/10.3389/fcell.2020.564561
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author Valle-Bautista, Rocío
Márquez-Valadez, Berenice
Fragoso-Cabrera, América D.
García-López, Guadalupe
Díaz, Néstor Fabián
Herrera-López, Gabriel
Griego, Ernesto
Galván, Emilio J.
Arias-Montaño, José-Antonio
Molina-Hernández, Anayansi
author_facet Valle-Bautista, Rocío
Márquez-Valadez, Berenice
Fragoso-Cabrera, América D.
García-López, Guadalupe
Díaz, Néstor Fabián
Herrera-López, Gabriel
Griego, Ernesto
Galván, Emilio J.
Arias-Montaño, José-Antonio
Molina-Hernández, Anayansi
author_sort Valle-Bautista, Rocío
collection PubMed
description Maternal diabetes has been related to low verbal task scores, impaired fine and gross motor skills, and poor performance in graphic and visuospatial tasks during childhood. The primary motor cortex is important for controlling motor functions, and embryos exposed to high glucose show changes in cell proliferation, migration, and differentiation during corticogenesis. However, the existing studies do not discriminate between embryos with or without neural tube defects, making it difficult to conclude whether the reported changes are related to neural tube defects or other anomalies. Furthermore, postnatal effects on central nervous system cytoarchitecture and function have been scarcely addressed. Through molecular, biochemical, morphological, and electrophysiological approaches, we provide evidence of impaired primary motor cerebral cortex lamination and neuronal function in pups from diabetic rats, showing an altered distribution of SATB2, FOXP2, and TBR1, impaired cell migration and polarity, and decreased excitability of deep-layer cortical neurons, suggesting abnormalities in cortico-cortical and extra-cortical innervation. Furthermore, phase-plot analysis of action potentials suggests changes in the activity of potassium channels. These results indicate that high-glucose insult during development promotes complex changes in migration, neurogenesis, cell polarity establishment, and dendritic arborization, which in turn lead to reduced excitability of deep-layer cortical neurons.
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spelling pubmed-75276062020-10-09 Impaired Cortical Cytoarchitecture and Reduced Excitability of Deep-Layer Neurons in the Offspring of Diabetic Rats Valle-Bautista, Rocío Márquez-Valadez, Berenice Fragoso-Cabrera, América D. García-López, Guadalupe Díaz, Néstor Fabián Herrera-López, Gabriel Griego, Ernesto Galván, Emilio J. Arias-Montaño, José-Antonio Molina-Hernández, Anayansi Front Cell Dev Biol Cell and Developmental Biology Maternal diabetes has been related to low verbal task scores, impaired fine and gross motor skills, and poor performance in graphic and visuospatial tasks during childhood. The primary motor cortex is important for controlling motor functions, and embryos exposed to high glucose show changes in cell proliferation, migration, and differentiation during corticogenesis. However, the existing studies do not discriminate between embryos with or without neural tube defects, making it difficult to conclude whether the reported changes are related to neural tube defects or other anomalies. Furthermore, postnatal effects on central nervous system cytoarchitecture and function have been scarcely addressed. Through molecular, biochemical, morphological, and electrophysiological approaches, we provide evidence of impaired primary motor cerebral cortex lamination and neuronal function in pups from diabetic rats, showing an altered distribution of SATB2, FOXP2, and TBR1, impaired cell migration and polarity, and decreased excitability of deep-layer cortical neurons, suggesting abnormalities in cortico-cortical and extra-cortical innervation. Furthermore, phase-plot analysis of action potentials suggests changes in the activity of potassium channels. These results indicate that high-glucose insult during development promotes complex changes in migration, neurogenesis, cell polarity establishment, and dendritic arborization, which in turn lead to reduced excitability of deep-layer cortical neurons. Frontiers Media S.A. 2020-09-16 /pmc/articles/PMC7527606/ /pubmed/33042999 http://dx.doi.org/10.3389/fcell.2020.564561 Text en Copyright © 2020 Valle-Bautista, Márquez-Valadez, Fragoso-Cabrera, García-López, Díaz, Herrera-López, Griego, Galván, Arias-Montaño and Molina-Hernández. 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 Cell and Developmental Biology
Valle-Bautista, Rocío
Márquez-Valadez, Berenice
Fragoso-Cabrera, América D.
García-López, Guadalupe
Díaz, Néstor Fabián
Herrera-López, Gabriel
Griego, Ernesto
Galván, Emilio J.
Arias-Montaño, José-Antonio
Molina-Hernández, Anayansi
Impaired Cortical Cytoarchitecture and Reduced Excitability of Deep-Layer Neurons in the Offspring of Diabetic Rats
title Impaired Cortical Cytoarchitecture and Reduced Excitability of Deep-Layer Neurons in the Offspring of Diabetic Rats
title_full Impaired Cortical Cytoarchitecture and Reduced Excitability of Deep-Layer Neurons in the Offspring of Diabetic Rats
title_fullStr Impaired Cortical Cytoarchitecture and Reduced Excitability of Deep-Layer Neurons in the Offspring of Diabetic Rats
title_full_unstemmed Impaired Cortical Cytoarchitecture and Reduced Excitability of Deep-Layer Neurons in the Offspring of Diabetic Rats
title_short Impaired Cortical Cytoarchitecture and Reduced Excitability of Deep-Layer Neurons in the Offspring of Diabetic Rats
title_sort impaired cortical cytoarchitecture and reduced excitability of deep-layer neurons in the offspring of diabetic rats
topic Cell and Developmental Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7527606/
https://www.ncbi.nlm.nih.gov/pubmed/33042999
http://dx.doi.org/10.3389/fcell.2020.564561
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