Cargando…

Maternal Undernutrition Modulates Neonatal Rat Cerebrovascular Structure, Function, and Vulnerability to Mild Hypoxic-Ischemic Injury via Corticosteroid-Dependent and -Independent Mechanisms

The present study explored the hypothesis that an adverse intrauterine environment caused by maternal undernutrition (MUN) acted through corticosteroid-dependent and -independent mechanisms to program lasting functional changes in the neonatal cerebrovasculature and vulnerability to mild hypoxic-isc...

Descripción completa

Detalles Bibliográficos
Autores principales: Franco, Patsy Naomi, Durrant, Lara M., Doan, Coleen, Carreon, Desirelys, Beltran, Alejandra, Jullienne, Amandine, Obenaus, Andre, Pearce, William J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7827870/
https://www.ncbi.nlm.nih.gov/pubmed/33445547
http://dx.doi.org/10.3390/ijms22020680
_version_ 1783640872491941888
author Franco, Patsy Naomi
Durrant, Lara M.
Doan, Coleen
Carreon, Desirelys
Beltran, Alejandra
Jullienne, Amandine
Obenaus, Andre
Pearce, William J.
author_facet Franco, Patsy Naomi
Durrant, Lara M.
Doan, Coleen
Carreon, Desirelys
Beltran, Alejandra
Jullienne, Amandine
Obenaus, Andre
Pearce, William J.
author_sort Franco, Patsy Naomi
collection PubMed
description The present study explored the hypothesis that an adverse intrauterine environment caused by maternal undernutrition (MUN) acted through corticosteroid-dependent and -independent mechanisms to program lasting functional changes in the neonatal cerebrovasculature and vulnerability to mild hypoxic-ischemic (HI) injury. From day 10 of gestation until term, MUN and MUN-metyrapone (MUN-MET) group rats consumed a diet restricted to 50% of calories consumed by a pair-fed control; and on gestational day 11 through term, MUN-MET groups received drinking water containing MET (0.5 mg/mL), a corticosteroid synthesis inhibitor. P9/P10 pups underwent unilateral carotid ligation followed 24 h later by 1.5 h exposure to 8% oxygen (HI treatment). An ELISA quantified MUN-, MET-, and HI-induced changes in circulating levels of corticosterone. In P11/P12 pups, MUN programming promoted contractile differentiation in cerebrovascular smooth muscle as determined by confocal microscopy, modulated calcium-dependent contractility as revealed by cerebral artery myography, enhanced vasogenic edema formation as indicated by T2 MRI, and worsened neurobehavior MUN unmasked HI-induced improvements in open-field locomotion and in edema resolution, alterations in calcium-dependent contractility and promotion of contractile differentiation. Overall, MUN imposed multiple interdependent effects on cerebrovascular smooth muscle differentiation, contractility, edema formation, flow-metabolism coupling and neurobehavior through pathways that both required, and were independent of, gestational corticosteroids. In light of growing global patterns of food insecurity, the present study emphasizes that infants born from undernourished mothers may experience greater risk for developing neonatal cerebral edema and sensorimotor impairments possibly through programmed changes in neonatal cerebrovascular function.
format Online
Article
Text
id pubmed-7827870
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-78278702021-01-25 Maternal Undernutrition Modulates Neonatal Rat Cerebrovascular Structure, Function, and Vulnerability to Mild Hypoxic-Ischemic Injury via Corticosteroid-Dependent and -Independent Mechanisms Franco, Patsy Naomi Durrant, Lara M. Doan, Coleen Carreon, Desirelys Beltran, Alejandra Jullienne, Amandine Obenaus, Andre Pearce, William J. Int J Mol Sci Article The present study explored the hypothesis that an adverse intrauterine environment caused by maternal undernutrition (MUN) acted through corticosteroid-dependent and -independent mechanisms to program lasting functional changes in the neonatal cerebrovasculature and vulnerability to mild hypoxic-ischemic (HI) injury. From day 10 of gestation until term, MUN and MUN-metyrapone (MUN-MET) group rats consumed a diet restricted to 50% of calories consumed by a pair-fed control; and on gestational day 11 through term, MUN-MET groups received drinking water containing MET (0.5 mg/mL), a corticosteroid synthesis inhibitor. P9/P10 pups underwent unilateral carotid ligation followed 24 h later by 1.5 h exposure to 8% oxygen (HI treatment). An ELISA quantified MUN-, MET-, and HI-induced changes in circulating levels of corticosterone. In P11/P12 pups, MUN programming promoted contractile differentiation in cerebrovascular smooth muscle as determined by confocal microscopy, modulated calcium-dependent contractility as revealed by cerebral artery myography, enhanced vasogenic edema formation as indicated by T2 MRI, and worsened neurobehavior MUN unmasked HI-induced improvements in open-field locomotion and in edema resolution, alterations in calcium-dependent contractility and promotion of contractile differentiation. Overall, MUN imposed multiple interdependent effects on cerebrovascular smooth muscle differentiation, contractility, edema formation, flow-metabolism coupling and neurobehavior through pathways that both required, and were independent of, gestational corticosteroids. In light of growing global patterns of food insecurity, the present study emphasizes that infants born from undernourished mothers may experience greater risk for developing neonatal cerebral edema and sensorimotor impairments possibly through programmed changes in neonatal cerebrovascular function. MDPI 2021-01-12 /pmc/articles/PMC7827870/ /pubmed/33445547 http://dx.doi.org/10.3390/ijms22020680 Text en © 2021 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
Franco, Patsy Naomi
Durrant, Lara M.
Doan, Coleen
Carreon, Desirelys
Beltran, Alejandra
Jullienne, Amandine
Obenaus, Andre
Pearce, William J.
Maternal Undernutrition Modulates Neonatal Rat Cerebrovascular Structure, Function, and Vulnerability to Mild Hypoxic-Ischemic Injury via Corticosteroid-Dependent and -Independent Mechanisms
title Maternal Undernutrition Modulates Neonatal Rat Cerebrovascular Structure, Function, and Vulnerability to Mild Hypoxic-Ischemic Injury via Corticosteroid-Dependent and -Independent Mechanisms
title_full Maternal Undernutrition Modulates Neonatal Rat Cerebrovascular Structure, Function, and Vulnerability to Mild Hypoxic-Ischemic Injury via Corticosteroid-Dependent and -Independent Mechanisms
title_fullStr Maternal Undernutrition Modulates Neonatal Rat Cerebrovascular Structure, Function, and Vulnerability to Mild Hypoxic-Ischemic Injury via Corticosteroid-Dependent and -Independent Mechanisms
title_full_unstemmed Maternal Undernutrition Modulates Neonatal Rat Cerebrovascular Structure, Function, and Vulnerability to Mild Hypoxic-Ischemic Injury via Corticosteroid-Dependent and -Independent Mechanisms
title_short Maternal Undernutrition Modulates Neonatal Rat Cerebrovascular Structure, Function, and Vulnerability to Mild Hypoxic-Ischemic Injury via Corticosteroid-Dependent and -Independent Mechanisms
title_sort maternal undernutrition modulates neonatal rat cerebrovascular structure, function, and vulnerability to mild hypoxic-ischemic injury via corticosteroid-dependent and -independent mechanisms
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7827870/
https://www.ncbi.nlm.nih.gov/pubmed/33445547
http://dx.doi.org/10.3390/ijms22020680
work_keys_str_mv AT francopatsynaomi maternalundernutritionmodulatesneonatalratcerebrovascularstructurefunctionandvulnerabilitytomildhypoxicischemicinjuryviacorticosteroiddependentandindependentmechanisms
AT durrantlaram maternalundernutritionmodulatesneonatalratcerebrovascularstructurefunctionandvulnerabilitytomildhypoxicischemicinjuryviacorticosteroiddependentandindependentmechanisms
AT doancoleen maternalundernutritionmodulatesneonatalratcerebrovascularstructurefunctionandvulnerabilitytomildhypoxicischemicinjuryviacorticosteroiddependentandindependentmechanisms
AT carreondesirelys maternalundernutritionmodulatesneonatalratcerebrovascularstructurefunctionandvulnerabilitytomildhypoxicischemicinjuryviacorticosteroiddependentandindependentmechanisms
AT beltranalejandra maternalundernutritionmodulatesneonatalratcerebrovascularstructurefunctionandvulnerabilitytomildhypoxicischemicinjuryviacorticosteroiddependentandindependentmechanisms
AT jullienneamandine maternalundernutritionmodulatesneonatalratcerebrovascularstructurefunctionandvulnerabilitytomildhypoxicischemicinjuryviacorticosteroiddependentandindependentmechanisms
AT obenausandre maternalundernutritionmodulatesneonatalratcerebrovascularstructurefunctionandvulnerabilitytomildhypoxicischemicinjuryviacorticosteroiddependentandindependentmechanisms
AT pearcewilliamj maternalundernutritionmodulatesneonatalratcerebrovascularstructurefunctionandvulnerabilitytomildhypoxicischemicinjuryviacorticosteroiddependentandindependentmechanisms