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Real-time redox adaptations in human airway epithelial cells exposed to isoprene hydroxy hydroperoxide

While redox processes play a vital role in maintaining intracellular homeostasis by regulating critical signaling and metabolic pathways, supra-physiological or sustained oxidative stress can lead to adverse responses or cytotoxicity. Inhalation of ambient air pollutants such as particulate matter a...

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Autores principales: Pennington, Edward R., Masood, Syed, Simmons, Steven O., Dailey, Lisa, Bromberg, Philip A., Rice, Rebecca L., Gold, Avram, Zhang, Zhenfa, Wu, Weidong, Yang, Yi, Samet, James M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10011437/
https://www.ncbi.nlm.nih.gov/pubmed/36867944
http://dx.doi.org/10.1016/j.redox.2023.102646
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author Pennington, Edward R.
Masood, Syed
Simmons, Steven O.
Dailey, Lisa
Bromberg, Philip A.
Rice, Rebecca L.
Gold, Avram
Zhang, Zhenfa
Wu, Weidong
Yang, Yi
Samet, James M.
author_facet Pennington, Edward R.
Masood, Syed
Simmons, Steven O.
Dailey, Lisa
Bromberg, Philip A.
Rice, Rebecca L.
Gold, Avram
Zhang, Zhenfa
Wu, Weidong
Yang, Yi
Samet, James M.
author_sort Pennington, Edward R.
collection PubMed
description While redox processes play a vital role in maintaining intracellular homeostasis by regulating critical signaling and metabolic pathways, supra-physiological or sustained oxidative stress can lead to adverse responses or cytotoxicity. Inhalation of ambient air pollutants such as particulate matter and secondary organic aerosols (SOA) induces oxidative stress in the respiratory tract through mechanisms that remain poorly understood. We investigated the effect of isoprene hydroxy hydroperoxide (ISOPOOH), an atmospheric oxidation product of vegetation-derived isoprene and a constituent of SOA, on intracellular redox homeostasis in cultured human airway epithelial cells (HAEC). We used high-resolution live cell imaging of HAEC expressing the genetically encoded ratiometric biosensors Grx1-roGFP2, iNAP1, or HyPer, to assess changes in the cytoplasmic ratio of oxidized glutathione to reduced glutathione (GSSG:GSH), and the flux of NADPH and H(2)O(2), respectively. Non-cytotoxic exposure to ISOPOOH resulted in a dose-dependent increase of GSSG:GSH in HAEC that was markedly potentiated by prior glucose deprivation. ISOPOOH-induced increase in glutathione oxidation were accompanied by concomitant decreases in intracellular NADPH. Following ISOPOOH exposure, the introduction of glucose resulted in a rapid restoration of GSH and NADPH, while the glucose analog 2-deoxyglucose resulted in inefficient restoration of baseline GSH and NADPH. To elucidate bioenergetic adaptations involved in combatting ISOPOOH-induced oxidative stress we investigated the regulatory role of glucose-6-phosphate dehydrogenase (G6PD). A knockout of G6PD markedly impaired glucose-mediated recovery of GSSG:GSH but not NADPH. These findings reveal rapid redox adaptations involved in the cellular response to ISOPOOH and provide a live view of the dynamic regulation of redox homeostasis in human airway cells as they are exposed to environmental oxidants.
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spelling pubmed-100114372023-03-15 Real-time redox adaptations in human airway epithelial cells exposed to isoprene hydroxy hydroperoxide Pennington, Edward R. Masood, Syed Simmons, Steven O. Dailey, Lisa Bromberg, Philip A. Rice, Rebecca L. Gold, Avram Zhang, Zhenfa Wu, Weidong Yang, Yi Samet, James M. Redox Biol Research Paper While redox processes play a vital role in maintaining intracellular homeostasis by regulating critical signaling and metabolic pathways, supra-physiological or sustained oxidative stress can lead to adverse responses or cytotoxicity. Inhalation of ambient air pollutants such as particulate matter and secondary organic aerosols (SOA) induces oxidative stress in the respiratory tract through mechanisms that remain poorly understood. We investigated the effect of isoprene hydroxy hydroperoxide (ISOPOOH), an atmospheric oxidation product of vegetation-derived isoprene and a constituent of SOA, on intracellular redox homeostasis in cultured human airway epithelial cells (HAEC). We used high-resolution live cell imaging of HAEC expressing the genetically encoded ratiometric biosensors Grx1-roGFP2, iNAP1, or HyPer, to assess changes in the cytoplasmic ratio of oxidized glutathione to reduced glutathione (GSSG:GSH), and the flux of NADPH and H(2)O(2), respectively. Non-cytotoxic exposure to ISOPOOH resulted in a dose-dependent increase of GSSG:GSH in HAEC that was markedly potentiated by prior glucose deprivation. ISOPOOH-induced increase in glutathione oxidation were accompanied by concomitant decreases in intracellular NADPH. Following ISOPOOH exposure, the introduction of glucose resulted in a rapid restoration of GSH and NADPH, while the glucose analog 2-deoxyglucose resulted in inefficient restoration of baseline GSH and NADPH. To elucidate bioenergetic adaptations involved in combatting ISOPOOH-induced oxidative stress we investigated the regulatory role of glucose-6-phosphate dehydrogenase (G6PD). A knockout of G6PD markedly impaired glucose-mediated recovery of GSSG:GSH but not NADPH. These findings reveal rapid redox adaptations involved in the cellular response to ISOPOOH and provide a live view of the dynamic regulation of redox homeostasis in human airway cells as they are exposed to environmental oxidants. Elsevier 2023-02-25 /pmc/articles/PMC10011437/ /pubmed/36867944 http://dx.doi.org/10.1016/j.redox.2023.102646 Text en 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 Research Paper
Pennington, Edward R.
Masood, Syed
Simmons, Steven O.
Dailey, Lisa
Bromberg, Philip A.
Rice, Rebecca L.
Gold, Avram
Zhang, Zhenfa
Wu, Weidong
Yang, Yi
Samet, James M.
Real-time redox adaptations in human airway epithelial cells exposed to isoprene hydroxy hydroperoxide
title Real-time redox adaptations in human airway epithelial cells exposed to isoprene hydroxy hydroperoxide
title_full Real-time redox adaptations in human airway epithelial cells exposed to isoprene hydroxy hydroperoxide
title_fullStr Real-time redox adaptations in human airway epithelial cells exposed to isoprene hydroxy hydroperoxide
title_full_unstemmed Real-time redox adaptations in human airway epithelial cells exposed to isoprene hydroxy hydroperoxide
title_short Real-time redox adaptations in human airway epithelial cells exposed to isoprene hydroxy hydroperoxide
title_sort real-time redox adaptations in human airway epithelial cells exposed to isoprene hydroxy hydroperoxide
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10011437/
https://www.ncbi.nlm.nih.gov/pubmed/36867944
http://dx.doi.org/10.1016/j.redox.2023.102646
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