Cargando…

Neonatal hyperoxia in mice triggers long-term cognitive deficits via impairments in cerebrovascular function and neurogenesis

Preterm birth is the leading cause of death in children under 5 years of age. Premature infants who receive life-saving oxygen therapy often develop bronchopulmonary dysplasia (BPD), a chronic lung disease. Infants with BPD are at a high risk of abnormal neurodevelopment, including motor and cogniti...

Descripción completa

Detalles Bibliográficos
Autores principales: Lithopoulos, Marissa A., Toussay, Xavier, Zhong, Shumei, Xu, Liqun, Mustafa, Shamimunisa B., Ouellette, Julie, Freitas-Andrade, Moises, Comin, Cesar H., Bassam, Hayam A., Baker, Adam N., Sun, Yiren, Wakem, Michael, Moreira, Alvaro G., Blanco, Cynthia L., Vadivel, Arul, Tsilfidis, Catherine, Seidner, Steven R., Slack, Ruth S., Lagace, Diane C., Wang, Jing, Lacoste, Baptiste, Thébaud, Bernard
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Clinical Investigation 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9663164/
https://www.ncbi.nlm.nih.gov/pubmed/36136598
http://dx.doi.org/10.1172/JCI146095
_version_ 1784830811783036928
author Lithopoulos, Marissa A.
Toussay, Xavier
Zhong, Shumei
Xu, Liqun
Mustafa, Shamimunisa B.
Ouellette, Julie
Freitas-Andrade, Moises
Comin, Cesar H.
Bassam, Hayam A.
Baker, Adam N.
Sun, Yiren
Wakem, Michael
Moreira, Alvaro G.
Blanco, Cynthia L.
Vadivel, Arul
Tsilfidis, Catherine
Seidner, Steven R.
Slack, Ruth S.
Lagace, Diane C.
Wang, Jing
Lacoste, Baptiste
Thébaud, Bernard
author_facet Lithopoulos, Marissa A.
Toussay, Xavier
Zhong, Shumei
Xu, Liqun
Mustafa, Shamimunisa B.
Ouellette, Julie
Freitas-Andrade, Moises
Comin, Cesar H.
Bassam, Hayam A.
Baker, Adam N.
Sun, Yiren
Wakem, Michael
Moreira, Alvaro G.
Blanco, Cynthia L.
Vadivel, Arul
Tsilfidis, Catherine
Seidner, Steven R.
Slack, Ruth S.
Lagace, Diane C.
Wang, Jing
Lacoste, Baptiste
Thébaud, Bernard
author_sort Lithopoulos, Marissa A.
collection PubMed
description Preterm birth is the leading cause of death in children under 5 years of age. Premature infants who receive life-saving oxygen therapy often develop bronchopulmonary dysplasia (BPD), a chronic lung disease. Infants with BPD are at a high risk of abnormal neurodevelopment, including motor and cognitive difficulties. While neural progenitor cells (NPCs) are crucial for proper brain development, it is unclear whether they play a role in BPD-associated neurodevelopmental deficits. Here, we show that hyperoxia-induced experimental BPD in newborn mice led to lifelong impairments in cerebrovascular structure and function as well as impairments in NPC self-renewal and neurogenesis. A neurosphere assay utilizing nonhuman primate preterm baboon NPCs confirmed impairment in NPC function. Moreover, gene expression profiling revealed that genes involved in cell proliferation, angiogenesis, vascular autoregulation, neuronal formation, and neurotransmission were dysregulated following neonatal hyperoxia. These impairments were associated with motor and cognitive decline in aging hyperoxia-exposed mice, reminiscent of deficits observed in patients with BPD. Together, our findings establish a relationship between BPD and abnormal neurodevelopmental outcomes and identify molecular and cellular players of neonatal brain injury that persist throughout adulthood that may be targeted for early intervention to aid this vulnerable patient population.
format Online
Article
Text
id pubmed-9663164
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher American Society for Clinical Investigation
record_format MEDLINE/PubMed
spelling pubmed-96631642022-11-17 Neonatal hyperoxia in mice triggers long-term cognitive deficits via impairments in cerebrovascular function and neurogenesis Lithopoulos, Marissa A. Toussay, Xavier Zhong, Shumei Xu, Liqun Mustafa, Shamimunisa B. Ouellette, Julie Freitas-Andrade, Moises Comin, Cesar H. Bassam, Hayam A. Baker, Adam N. Sun, Yiren Wakem, Michael Moreira, Alvaro G. Blanco, Cynthia L. Vadivel, Arul Tsilfidis, Catherine Seidner, Steven R. Slack, Ruth S. Lagace, Diane C. Wang, Jing Lacoste, Baptiste Thébaud, Bernard J Clin Invest Research Article Preterm birth is the leading cause of death in children under 5 years of age. Premature infants who receive life-saving oxygen therapy often develop bronchopulmonary dysplasia (BPD), a chronic lung disease. Infants with BPD are at a high risk of abnormal neurodevelopment, including motor and cognitive difficulties. While neural progenitor cells (NPCs) are crucial for proper brain development, it is unclear whether they play a role in BPD-associated neurodevelopmental deficits. Here, we show that hyperoxia-induced experimental BPD in newborn mice led to lifelong impairments in cerebrovascular structure and function as well as impairments in NPC self-renewal and neurogenesis. A neurosphere assay utilizing nonhuman primate preterm baboon NPCs confirmed impairment in NPC function. Moreover, gene expression profiling revealed that genes involved in cell proliferation, angiogenesis, vascular autoregulation, neuronal formation, and neurotransmission were dysregulated following neonatal hyperoxia. These impairments were associated with motor and cognitive decline in aging hyperoxia-exposed mice, reminiscent of deficits observed in patients with BPD. Together, our findings establish a relationship between BPD and abnormal neurodevelopmental outcomes and identify molecular and cellular players of neonatal brain injury that persist throughout adulthood that may be targeted for early intervention to aid this vulnerable patient population. American Society for Clinical Investigation 2022-11-15 /pmc/articles/PMC9663164/ /pubmed/36136598 http://dx.doi.org/10.1172/JCI146095 Text en © 2022 Lithopoulos et al. https://creativecommons.org/licenses/by/4.0/This work is licensed under the Creative Commons Attribution 4.0 International License. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Lithopoulos, Marissa A.
Toussay, Xavier
Zhong, Shumei
Xu, Liqun
Mustafa, Shamimunisa B.
Ouellette, Julie
Freitas-Andrade, Moises
Comin, Cesar H.
Bassam, Hayam A.
Baker, Adam N.
Sun, Yiren
Wakem, Michael
Moreira, Alvaro G.
Blanco, Cynthia L.
Vadivel, Arul
Tsilfidis, Catherine
Seidner, Steven R.
Slack, Ruth S.
Lagace, Diane C.
Wang, Jing
Lacoste, Baptiste
Thébaud, Bernard
Neonatal hyperoxia in mice triggers long-term cognitive deficits via impairments in cerebrovascular function and neurogenesis
title Neonatal hyperoxia in mice triggers long-term cognitive deficits via impairments in cerebrovascular function and neurogenesis
title_full Neonatal hyperoxia in mice triggers long-term cognitive deficits via impairments in cerebrovascular function and neurogenesis
title_fullStr Neonatal hyperoxia in mice triggers long-term cognitive deficits via impairments in cerebrovascular function and neurogenesis
title_full_unstemmed Neonatal hyperoxia in mice triggers long-term cognitive deficits via impairments in cerebrovascular function and neurogenesis
title_short Neonatal hyperoxia in mice triggers long-term cognitive deficits via impairments in cerebrovascular function and neurogenesis
title_sort neonatal hyperoxia in mice triggers long-term cognitive deficits via impairments in cerebrovascular function and neurogenesis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9663164/
https://www.ncbi.nlm.nih.gov/pubmed/36136598
http://dx.doi.org/10.1172/JCI146095
work_keys_str_mv AT lithopoulosmarissaa neonatalhyperoxiainmicetriggerslongtermcognitivedeficitsviaimpairmentsincerebrovascularfunctionandneurogenesis
AT toussayxavier neonatalhyperoxiainmicetriggerslongtermcognitivedeficitsviaimpairmentsincerebrovascularfunctionandneurogenesis
AT zhongshumei neonatalhyperoxiainmicetriggerslongtermcognitivedeficitsviaimpairmentsincerebrovascularfunctionandneurogenesis
AT xuliqun neonatalhyperoxiainmicetriggerslongtermcognitivedeficitsviaimpairmentsincerebrovascularfunctionandneurogenesis
AT mustafashamimunisab neonatalhyperoxiainmicetriggerslongtermcognitivedeficitsviaimpairmentsincerebrovascularfunctionandneurogenesis
AT ouellettejulie neonatalhyperoxiainmicetriggerslongtermcognitivedeficitsviaimpairmentsincerebrovascularfunctionandneurogenesis
AT freitasandrademoises neonatalhyperoxiainmicetriggerslongtermcognitivedeficitsviaimpairmentsincerebrovascularfunctionandneurogenesis
AT comincesarh neonatalhyperoxiainmicetriggerslongtermcognitivedeficitsviaimpairmentsincerebrovascularfunctionandneurogenesis
AT bassamhayama neonatalhyperoxiainmicetriggerslongtermcognitivedeficitsviaimpairmentsincerebrovascularfunctionandneurogenesis
AT bakeradamn neonatalhyperoxiainmicetriggerslongtermcognitivedeficitsviaimpairmentsincerebrovascularfunctionandneurogenesis
AT sunyiren neonatalhyperoxiainmicetriggerslongtermcognitivedeficitsviaimpairmentsincerebrovascularfunctionandneurogenesis
AT wakemmichael neonatalhyperoxiainmicetriggerslongtermcognitivedeficitsviaimpairmentsincerebrovascularfunctionandneurogenesis
AT moreiraalvarog neonatalhyperoxiainmicetriggerslongtermcognitivedeficitsviaimpairmentsincerebrovascularfunctionandneurogenesis
AT blancocynthial neonatalhyperoxiainmicetriggerslongtermcognitivedeficitsviaimpairmentsincerebrovascularfunctionandneurogenesis
AT vadivelarul neonatalhyperoxiainmicetriggerslongtermcognitivedeficitsviaimpairmentsincerebrovascularfunctionandneurogenesis
AT tsilfidiscatherine neonatalhyperoxiainmicetriggerslongtermcognitivedeficitsviaimpairmentsincerebrovascularfunctionandneurogenesis
AT seidnerstevenr neonatalhyperoxiainmicetriggerslongtermcognitivedeficitsviaimpairmentsincerebrovascularfunctionandneurogenesis
AT slackruths neonatalhyperoxiainmicetriggerslongtermcognitivedeficitsviaimpairmentsincerebrovascularfunctionandneurogenesis
AT lagacedianec neonatalhyperoxiainmicetriggerslongtermcognitivedeficitsviaimpairmentsincerebrovascularfunctionandneurogenesis
AT wangjing neonatalhyperoxiainmicetriggerslongtermcognitivedeficitsviaimpairmentsincerebrovascularfunctionandneurogenesis
AT lacostebaptiste neonatalhyperoxiainmicetriggerslongtermcognitivedeficitsviaimpairmentsincerebrovascularfunctionandneurogenesis
AT thebaudbernard neonatalhyperoxiainmicetriggerslongtermcognitivedeficitsviaimpairmentsincerebrovascularfunctionandneurogenesis