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Role of Carbon Monoxide in Oxidative Stress-Induced Senescence in Human Bronchial Epithelium

Prolonged or excessive stimulation from inhaled toxins may cause oxidative stress and DNA damage that can lead to stress-induced senescence in epithelial cells, which can contribute to several airway diseases. Mounting evidence has shown carbon monoxide (CO) confers cytoprotective effects. We invest...

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Autores principales: Cai, Meng-yun, Yip, Chung-Yin, Pan, Kewu, Zhang, Yan, Chan, Renee Wan-Yi, Chan, Wood Yee, Ko, Wing-Hung
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9526622/
https://www.ncbi.nlm.nih.gov/pubmed/36193088
http://dx.doi.org/10.1155/2022/5199572
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author Cai, Meng-yun
Yip, Chung-Yin
Pan, Kewu
Zhang, Yan
Chan, Renee Wan-Yi
Chan, Wood Yee
Ko, Wing-Hung
author_facet Cai, Meng-yun
Yip, Chung-Yin
Pan, Kewu
Zhang, Yan
Chan, Renee Wan-Yi
Chan, Wood Yee
Ko, Wing-Hung
author_sort Cai, Meng-yun
collection PubMed
description Prolonged or excessive stimulation from inhaled toxins may cause oxidative stress and DNA damage that can lead to stress-induced senescence in epithelial cells, which can contribute to several airway diseases. Mounting evidence has shown carbon monoxide (CO) confers cytoprotective effects. We investigated the effects of CO on oxidative stress-induced senescence in human airway epithelium and elucidated the underlying molecular mechanisms. Here, CO pretreatment reduced H(2)O(2)-mediated increases in total reactive oxygen species (ROS) production and mitochondrial superoxide in a human bronchial epithelial cell line (BEAS-2B). H(2)O(2) treatment triggered a premature senescence-like phenotype with enlarged and flattened cell morphology accompanied by increased SA-β-gal activity, cell cycle arrest in G0/G1, reduced cell viability, and increased transcription of senescence-associated secretory phenotype (SASP) genes. Additionally, exposure to H(2)O(2) increased protein levels of cellular senescence markers (p53 and p21), reduced Sirtuin 3 (SIRT3) and manganese superoxide dismutase (MnSOD) levels, and increased p53 K382 acetylation. These H(2)O(2)-mediated effects were attenuated by pretreatment with a CO-containing solution. SIRT3 silencing induced mitochondrial superoxide production and triggered a senescence-like phenotype, whereas overexpression decreased mitochondrial superoxide production and alleviated the senescence-like phenotype. Air-liquid interface (ALI) culture of primary human bronchial cells, which becomes a fully differentiated pseudostratified mucociliary epithelium, was used as a model. We found that apical and basolateral exposure to H(2)O(2) induced a vacuolated structure that impaired the integrity of ALI cultures, increased goblet cell numbers, decreased SCGB1A1+ club cell numbers, increased p21 protein levels, and increased SASP gene transcription, consistent with our observations in BEAS-2B cells. These effects were attenuated in the apical presence of a CO-containing solution. In summary, we revealed that CO has a pivotal role in epithelial senescence by regulating ROS production via the SIRT3/MnSOD/p53/p21 pathway. This may have important implications in the prevention and treatment of age-associated respiratory pathologies.
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spelling pubmed-95266222022-10-02 Role of Carbon Monoxide in Oxidative Stress-Induced Senescence in Human Bronchial Epithelium Cai, Meng-yun Yip, Chung-Yin Pan, Kewu Zhang, Yan Chan, Renee Wan-Yi Chan, Wood Yee Ko, Wing-Hung Oxid Med Cell Longev Research Article Prolonged or excessive stimulation from inhaled toxins may cause oxidative stress and DNA damage that can lead to stress-induced senescence in epithelial cells, which can contribute to several airway diseases. Mounting evidence has shown carbon monoxide (CO) confers cytoprotective effects. We investigated the effects of CO on oxidative stress-induced senescence in human airway epithelium and elucidated the underlying molecular mechanisms. Here, CO pretreatment reduced H(2)O(2)-mediated increases in total reactive oxygen species (ROS) production and mitochondrial superoxide in a human bronchial epithelial cell line (BEAS-2B). H(2)O(2) treatment triggered a premature senescence-like phenotype with enlarged and flattened cell morphology accompanied by increased SA-β-gal activity, cell cycle arrest in G0/G1, reduced cell viability, and increased transcription of senescence-associated secretory phenotype (SASP) genes. Additionally, exposure to H(2)O(2) increased protein levels of cellular senescence markers (p53 and p21), reduced Sirtuin 3 (SIRT3) and manganese superoxide dismutase (MnSOD) levels, and increased p53 K382 acetylation. These H(2)O(2)-mediated effects were attenuated by pretreatment with a CO-containing solution. SIRT3 silencing induced mitochondrial superoxide production and triggered a senescence-like phenotype, whereas overexpression decreased mitochondrial superoxide production and alleviated the senescence-like phenotype. Air-liquid interface (ALI) culture of primary human bronchial cells, which becomes a fully differentiated pseudostratified mucociliary epithelium, was used as a model. We found that apical and basolateral exposure to H(2)O(2) induced a vacuolated structure that impaired the integrity of ALI cultures, increased goblet cell numbers, decreased SCGB1A1+ club cell numbers, increased p21 protein levels, and increased SASP gene transcription, consistent with our observations in BEAS-2B cells. These effects were attenuated in the apical presence of a CO-containing solution. In summary, we revealed that CO has a pivotal role in epithelial senescence by regulating ROS production via the SIRT3/MnSOD/p53/p21 pathway. This may have important implications in the prevention and treatment of age-associated respiratory pathologies. Hindawi 2022-09-24 /pmc/articles/PMC9526622/ /pubmed/36193088 http://dx.doi.org/10.1155/2022/5199572 Text en Copyright © 2022 Meng-yun Cai et al. https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Cai, Meng-yun
Yip, Chung-Yin
Pan, Kewu
Zhang, Yan
Chan, Renee Wan-Yi
Chan, Wood Yee
Ko, Wing-Hung
Role of Carbon Monoxide in Oxidative Stress-Induced Senescence in Human Bronchial Epithelium
title Role of Carbon Monoxide in Oxidative Stress-Induced Senescence in Human Bronchial Epithelium
title_full Role of Carbon Monoxide in Oxidative Stress-Induced Senescence in Human Bronchial Epithelium
title_fullStr Role of Carbon Monoxide in Oxidative Stress-Induced Senescence in Human Bronchial Epithelium
title_full_unstemmed Role of Carbon Monoxide in Oxidative Stress-Induced Senescence in Human Bronchial Epithelium
title_short Role of Carbon Monoxide in Oxidative Stress-Induced Senescence in Human Bronchial Epithelium
title_sort role of carbon monoxide in oxidative stress-induced senescence in human bronchial epithelium
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9526622/
https://www.ncbi.nlm.nih.gov/pubmed/36193088
http://dx.doi.org/10.1155/2022/5199572
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