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Nox2 contributes to age-related oxidative damage to neurons and the cerebral vasculature

Oxidative stress plays an important role in aging-related neurodegeneration. This study used littermates of WT and Nox2-knockout (Nox2KO) mice plus endothelial cell–specific human Nox2 overexpression–transgenic (HuNox2Tg) mice to investigate Nox2-derived ROS in brain aging. Compared with young WT mi...

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Autores principales: Fan, Lampson M., Geng, Li, Cahill-Smith, Sarah, Liu, Fangfei, Douglas, Gillian, Mckenzie, Chris-Anne, Smith, Colin, Brooks, Gavin, Channon, Keith M., Li, Jian-Mei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Clinical Investigation 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6668817/
https://www.ncbi.nlm.nih.gov/pubmed/31329158
http://dx.doi.org/10.1172/JCI125173
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author Fan, Lampson M.
Geng, Li
Cahill-Smith, Sarah
Liu, Fangfei
Douglas, Gillian
Mckenzie, Chris-Anne
Smith, Colin
Brooks, Gavin
Channon, Keith M.
Li, Jian-Mei
author_facet Fan, Lampson M.
Geng, Li
Cahill-Smith, Sarah
Liu, Fangfei
Douglas, Gillian
Mckenzie, Chris-Anne
Smith, Colin
Brooks, Gavin
Channon, Keith M.
Li, Jian-Mei
author_sort Fan, Lampson M.
collection PubMed
description Oxidative stress plays an important role in aging-related neurodegeneration. This study used littermates of WT and Nox2-knockout (Nox2KO) mice plus endothelial cell–specific human Nox2 overexpression–transgenic (HuNox2Tg) mice to investigate Nox2-derived ROS in brain aging. Compared with young WT mice (3–4 months), aging WT mice (20–22 months) had obvious metabolic disorders and loss of locomotor activity. Aging WT brains had high levels of angiotensin II (Ang II) and ROS production; activation of ERK1/2, p53, and γH2AX; and losses of capillaries and neurons. However, these abnormalities were markedly reduced in aging Nox2KO brains. HuNox2Tg brains at middle age (11–12 months) already had high levels of ROS production and activation of stress signaling pathways similar to those found in aging WT brains. The mechanism of Ang II–induced endothelial Nox2 activation in capillary damage was examined using primary brain microvascular endothelial cells. The clinical significance of Nox2-derived ROS in aging-related loss of cerebral capillaries and neurons was investigated using postmortem midbrain tissues of young (25–38 years) and elderly (61–85 years) adults. In conclusion, Nox2 activation is an important mechanism in aging-related cerebral capillary rarefaction and reduced brain function, with the possibility of a key role for endothelial cells.
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spelling pubmed-66688172019-08-02 Nox2 contributes to age-related oxidative damage to neurons and the cerebral vasculature Fan, Lampson M. Geng, Li Cahill-Smith, Sarah Liu, Fangfei Douglas, Gillian Mckenzie, Chris-Anne Smith, Colin Brooks, Gavin Channon, Keith M. Li, Jian-Mei J Clin Invest Research Article Oxidative stress plays an important role in aging-related neurodegeneration. This study used littermates of WT and Nox2-knockout (Nox2KO) mice plus endothelial cell–specific human Nox2 overexpression–transgenic (HuNox2Tg) mice to investigate Nox2-derived ROS in brain aging. Compared with young WT mice (3–4 months), aging WT mice (20–22 months) had obvious metabolic disorders and loss of locomotor activity. Aging WT brains had high levels of angiotensin II (Ang II) and ROS production; activation of ERK1/2, p53, and γH2AX; and losses of capillaries and neurons. However, these abnormalities were markedly reduced in aging Nox2KO brains. HuNox2Tg brains at middle age (11–12 months) already had high levels of ROS production and activation of stress signaling pathways similar to those found in aging WT brains. The mechanism of Ang II–induced endothelial Nox2 activation in capillary damage was examined using primary brain microvascular endothelial cells. The clinical significance of Nox2-derived ROS in aging-related loss of cerebral capillaries and neurons was investigated using postmortem midbrain tissues of young (25–38 years) and elderly (61–85 years) adults. In conclusion, Nox2 activation is an important mechanism in aging-related cerebral capillary rarefaction and reduced brain function, with the possibility of a key role for endothelial cells. American Society for Clinical Investigation 2019-07-22 2019-08-01 /pmc/articles/PMC6668817/ /pubmed/31329158 http://dx.doi.org/10.1172/JCI125173 Text en © 2019 Fan et al. http://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/.
spellingShingle Research Article
Fan, Lampson M.
Geng, Li
Cahill-Smith, Sarah
Liu, Fangfei
Douglas, Gillian
Mckenzie, Chris-Anne
Smith, Colin
Brooks, Gavin
Channon, Keith M.
Li, Jian-Mei
Nox2 contributes to age-related oxidative damage to neurons and the cerebral vasculature
title Nox2 contributes to age-related oxidative damage to neurons and the cerebral vasculature
title_full Nox2 contributes to age-related oxidative damage to neurons and the cerebral vasculature
title_fullStr Nox2 contributes to age-related oxidative damage to neurons and the cerebral vasculature
title_full_unstemmed Nox2 contributes to age-related oxidative damage to neurons and the cerebral vasculature
title_short Nox2 contributes to age-related oxidative damage to neurons and the cerebral vasculature
title_sort nox2 contributes to age-related oxidative damage to neurons and the cerebral vasculature
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6668817/
https://www.ncbi.nlm.nih.gov/pubmed/31329158
http://dx.doi.org/10.1172/JCI125173
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