Cargando…

Chronic hypoxemia induces mitochondrial respiratory complex gene expression in the fetal sheep brain

OBJECTIVE: The molecular pathways underlying hypoxemia-induced alterations in neurodevelopment of infants with congenital heart disease have not been delineated. We used transcriptome analysis to investigate differential gene expression induced by hypoxemia in an ovine artificial-womb model. METHODS...

Descripción completa

Detalles Bibliográficos
Autores principales: Moon, James K., Lawrence, Kendall M., Hunt, Mallory L., Davey, Marcus G., Flake, Alan W., Licht, Daniel J., Chen, Jonathan M., Kilbaugh, Todd J., Gaynor, J. William, Beiting, Daniel P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9390414/
https://www.ncbi.nlm.nih.gov/pubmed/36004209
http://dx.doi.org/10.1016/j.xjon.2022.04.040
_version_ 1784770649688899584
author Moon, James K.
Lawrence, Kendall M.
Hunt, Mallory L.
Davey, Marcus G.
Flake, Alan W.
Licht, Daniel J.
Chen, Jonathan M.
Kilbaugh, Todd J.
Gaynor, J. William
Beiting, Daniel P.
author_facet Moon, James K.
Lawrence, Kendall M.
Hunt, Mallory L.
Davey, Marcus G.
Flake, Alan W.
Licht, Daniel J.
Chen, Jonathan M.
Kilbaugh, Todd J.
Gaynor, J. William
Beiting, Daniel P.
author_sort Moon, James K.
collection PubMed
description OBJECTIVE: The molecular pathways underlying hypoxemia-induced alterations in neurodevelopment of infants with congenital heart disease have not been delineated. We used transcriptome analysis to investigate differential gene expression induced by hypoxemia in an ovine artificial-womb model. METHODS: Mid-gestation fetal sheep (median [interquartile range] 109 [107-112] days' gestation) were cannulated via the umbilical vessels, attached to a pumpless, low-resistance oxygenator circuit, and incubated in a sterile, fluid environment for 22 [21-23] days. Fetuses were maintained with an oxygen delivery of 20-25 mL/kg/min (normoxemia, n = 3) or 14-16 mL/kg/min (hypoxemia, n = 4). Transcriptional profiling by RNA sequencing was carried out on left frontal brains and hypoxemia-regulated genes were identified by differential gene expression analysis. RESULTS: A total of 228 genes whose expression was up or down regulated by ≥1.5-fold (false discovery rate ≤0.05) were identified. The majority of these genes were induced in hypoxemic animals compared to normoxemic controls, and functional enrichment analysis identified respiratory electron transport as a pathway strongly upregulated in the brain during chronic hypoxemia. Further examination of hypoxemia-induced genes showed robust induction of all 7 subunits of the mitochondrial NADH:ubiquinone oxidoreductase (complex I). Other hypoxemia-induced genes included cytochrome B, a component of complex III, and ATP6, ATP8, both of which are components of complex V. CONCLUSIONS: Chronic fetal hypoxemia leads to upregulation of multiple mitochondrial respiratory complex genes critical for energy production and reactive oxygen species generation, including complex I. These data provide valuable insight into potential pathways involved in chronic hypoxemia-induced neuropathology and offers potential therapeutic targets for fetal neuroprotection in fetuses with congenital heart defects.
format Online
Article
Text
id pubmed-9390414
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher Elsevier
record_format MEDLINE/PubMed
spelling pubmed-93904142022-08-23 Chronic hypoxemia induces mitochondrial respiratory complex gene expression in the fetal sheep brain Moon, James K. Lawrence, Kendall M. Hunt, Mallory L. Davey, Marcus G. Flake, Alan W. Licht, Daniel J. Chen, Jonathan M. Kilbaugh, Todd J. Gaynor, J. William Beiting, Daniel P. JTCVS Open Congenital: Mechanical Circulatory Support: Basic Science OBJECTIVE: The molecular pathways underlying hypoxemia-induced alterations in neurodevelopment of infants with congenital heart disease have not been delineated. We used transcriptome analysis to investigate differential gene expression induced by hypoxemia in an ovine artificial-womb model. METHODS: Mid-gestation fetal sheep (median [interquartile range] 109 [107-112] days' gestation) were cannulated via the umbilical vessels, attached to a pumpless, low-resistance oxygenator circuit, and incubated in a sterile, fluid environment for 22 [21-23] days. Fetuses were maintained with an oxygen delivery of 20-25 mL/kg/min (normoxemia, n = 3) or 14-16 mL/kg/min (hypoxemia, n = 4). Transcriptional profiling by RNA sequencing was carried out on left frontal brains and hypoxemia-regulated genes were identified by differential gene expression analysis. RESULTS: A total of 228 genes whose expression was up or down regulated by ≥1.5-fold (false discovery rate ≤0.05) were identified. The majority of these genes were induced in hypoxemic animals compared to normoxemic controls, and functional enrichment analysis identified respiratory electron transport as a pathway strongly upregulated in the brain during chronic hypoxemia. Further examination of hypoxemia-induced genes showed robust induction of all 7 subunits of the mitochondrial NADH:ubiquinone oxidoreductase (complex I). Other hypoxemia-induced genes included cytochrome B, a component of complex III, and ATP6, ATP8, both of which are components of complex V. CONCLUSIONS: Chronic fetal hypoxemia leads to upregulation of multiple mitochondrial respiratory complex genes critical for energy production and reactive oxygen species generation, including complex I. These data provide valuable insight into potential pathways involved in chronic hypoxemia-induced neuropathology and offers potential therapeutic targets for fetal neuroprotection in fetuses with congenital heart defects. Elsevier 2022-05-05 /pmc/articles/PMC9390414/ /pubmed/36004209 http://dx.doi.org/10.1016/j.xjon.2022.04.040 Text en © 2022 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Congenital: Mechanical Circulatory Support: Basic Science
Moon, James K.
Lawrence, Kendall M.
Hunt, Mallory L.
Davey, Marcus G.
Flake, Alan W.
Licht, Daniel J.
Chen, Jonathan M.
Kilbaugh, Todd J.
Gaynor, J. William
Beiting, Daniel P.
Chronic hypoxemia induces mitochondrial respiratory complex gene expression in the fetal sheep brain
title Chronic hypoxemia induces mitochondrial respiratory complex gene expression in the fetal sheep brain
title_full Chronic hypoxemia induces mitochondrial respiratory complex gene expression in the fetal sheep brain
title_fullStr Chronic hypoxemia induces mitochondrial respiratory complex gene expression in the fetal sheep brain
title_full_unstemmed Chronic hypoxemia induces mitochondrial respiratory complex gene expression in the fetal sheep brain
title_short Chronic hypoxemia induces mitochondrial respiratory complex gene expression in the fetal sheep brain
title_sort chronic hypoxemia induces mitochondrial respiratory complex gene expression in the fetal sheep brain
topic Congenital: Mechanical Circulatory Support: Basic Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9390414/
https://www.ncbi.nlm.nih.gov/pubmed/36004209
http://dx.doi.org/10.1016/j.xjon.2022.04.040
work_keys_str_mv AT moonjamesk chronichypoxemiainducesmitochondrialrespiratorycomplexgeneexpressioninthefetalsheepbrain
AT lawrencekendallm chronichypoxemiainducesmitochondrialrespiratorycomplexgeneexpressioninthefetalsheepbrain
AT huntmalloryl chronichypoxemiainducesmitochondrialrespiratorycomplexgeneexpressioninthefetalsheepbrain
AT daveymarcusg chronichypoxemiainducesmitochondrialrespiratorycomplexgeneexpressioninthefetalsheepbrain
AT flakealanw chronichypoxemiainducesmitochondrialrespiratorycomplexgeneexpressioninthefetalsheepbrain
AT lichtdanielj chronichypoxemiainducesmitochondrialrespiratorycomplexgeneexpressioninthefetalsheepbrain
AT chenjonathanm chronichypoxemiainducesmitochondrialrespiratorycomplexgeneexpressioninthefetalsheepbrain
AT kilbaughtoddj chronichypoxemiainducesmitochondrialrespiratorycomplexgeneexpressioninthefetalsheepbrain
AT gaynorjwilliam chronichypoxemiainducesmitochondrialrespiratorycomplexgeneexpressioninthefetalsheepbrain
AT beitingdanielp chronichypoxemiainducesmitochondrialrespiratorycomplexgeneexpressioninthefetalsheepbrain