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NRF2 Alters Mitochondrial Gene Expression in Neonate Mice Exposed to Hyperoxia

Approximately 1 in 10 newborns are born preterm and require supplemental oxygen (O(2)) in an extrauterine environment following birth. Supplemental O(2) can induce oxidative stress that can impair mitochondrial function, resulting in lung injury and increased risk in early life pulmonary diseases. T...

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Autores principales: Vellers, Heather L., Cho, Hye-Youn, Gladwell, Wesley, Gerrish, Kevin, Santos, Janine H., Ofman, Gaston, Miller-DeGraff, Laura, Mahler, T. Beth, Kleeberger, Steven R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9031618/
https://www.ncbi.nlm.nih.gov/pubmed/35453445
http://dx.doi.org/10.3390/antiox11040760
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author Vellers, Heather L.
Cho, Hye-Youn
Gladwell, Wesley
Gerrish, Kevin
Santos, Janine H.
Ofman, Gaston
Miller-DeGraff, Laura
Mahler, T. Beth
Kleeberger, Steven R.
author_facet Vellers, Heather L.
Cho, Hye-Youn
Gladwell, Wesley
Gerrish, Kevin
Santos, Janine H.
Ofman, Gaston
Miller-DeGraff, Laura
Mahler, T. Beth
Kleeberger, Steven R.
author_sort Vellers, Heather L.
collection PubMed
description Approximately 1 in 10 newborns are born preterm and require supplemental oxygen (O(2)) in an extrauterine environment following birth. Supplemental O(2) can induce oxidative stress that can impair mitochondrial function, resulting in lung injury and increased risk in early life pulmonary diseases. The nuclear factor-erythroid 2 related factor 2 (NRF2) protects the cells from oxidative stress by regulating the expression of genes containing antioxidant response elements and many mitochondrial-associated genes. In this study, we compared Nrf2-deficient (Nrf2(−/−)) and wild-type (Nrf2(+/+)) mice to define the role of NRF2 in lung mitochondrial genomic features in late embryonic development in mice (embryonic days, E13.5 and E18.5) versus birth (postnatal day 0, PND0). We also determined whether NRF2 protects lung mitochondrial genome parameters in postnatal mice exposed to a 72 h hyperoxia environment. We found Nrf2(−/−) embryonic lungs were characterized by decreases in mtDNA copies from E13.5 to E18.5. Interestingly, Nrf2(−/−) heteroplasmy frequency was significantly higher than Nrf2(+/+) at E18.5, though this effect reversed at PND0. In postnatal mice exposed to hyperoxia, we identified three- to four-fold increases in mitochondria-encoded mitochondrial genes, which regulate oxidative phosphorylation. Overall, our findings demonstrate a potentially critical role of NRF2 in mediating long-term effects of hyperoxia on mitochondrial function.
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spelling pubmed-90316182022-04-23 NRF2 Alters Mitochondrial Gene Expression in Neonate Mice Exposed to Hyperoxia Vellers, Heather L. Cho, Hye-Youn Gladwell, Wesley Gerrish, Kevin Santos, Janine H. Ofman, Gaston Miller-DeGraff, Laura Mahler, T. Beth Kleeberger, Steven R. Antioxidants (Basel) Article Approximately 1 in 10 newborns are born preterm and require supplemental oxygen (O(2)) in an extrauterine environment following birth. Supplemental O(2) can induce oxidative stress that can impair mitochondrial function, resulting in lung injury and increased risk in early life pulmonary diseases. The nuclear factor-erythroid 2 related factor 2 (NRF2) protects the cells from oxidative stress by regulating the expression of genes containing antioxidant response elements and many mitochondrial-associated genes. In this study, we compared Nrf2-deficient (Nrf2(−/−)) and wild-type (Nrf2(+/+)) mice to define the role of NRF2 in lung mitochondrial genomic features in late embryonic development in mice (embryonic days, E13.5 and E18.5) versus birth (postnatal day 0, PND0). We also determined whether NRF2 protects lung mitochondrial genome parameters in postnatal mice exposed to a 72 h hyperoxia environment. We found Nrf2(−/−) embryonic lungs were characterized by decreases in mtDNA copies from E13.5 to E18.5. Interestingly, Nrf2(−/−) heteroplasmy frequency was significantly higher than Nrf2(+/+) at E18.5, though this effect reversed at PND0. In postnatal mice exposed to hyperoxia, we identified three- to four-fold increases in mitochondria-encoded mitochondrial genes, which regulate oxidative phosphorylation. Overall, our findings demonstrate a potentially critical role of NRF2 in mediating long-term effects of hyperoxia on mitochondrial function. MDPI 2022-04-11 /pmc/articles/PMC9031618/ /pubmed/35453445 http://dx.doi.org/10.3390/antiox11040760 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Vellers, Heather L.
Cho, Hye-Youn
Gladwell, Wesley
Gerrish, Kevin
Santos, Janine H.
Ofman, Gaston
Miller-DeGraff, Laura
Mahler, T. Beth
Kleeberger, Steven R.
NRF2 Alters Mitochondrial Gene Expression in Neonate Mice Exposed to Hyperoxia
title NRF2 Alters Mitochondrial Gene Expression in Neonate Mice Exposed to Hyperoxia
title_full NRF2 Alters Mitochondrial Gene Expression in Neonate Mice Exposed to Hyperoxia
title_fullStr NRF2 Alters Mitochondrial Gene Expression in Neonate Mice Exposed to Hyperoxia
title_full_unstemmed NRF2 Alters Mitochondrial Gene Expression in Neonate Mice Exposed to Hyperoxia
title_short NRF2 Alters Mitochondrial Gene Expression in Neonate Mice Exposed to Hyperoxia
title_sort nrf2 alters mitochondrial gene expression in neonate mice exposed to hyperoxia
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9031618/
https://www.ncbi.nlm.nih.gov/pubmed/35453445
http://dx.doi.org/10.3390/antiox11040760
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