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Airway Thiol-NO Adducts as Determinants of Exhaled NO

Thiol-NO adducts such as S-nitrosoglutathione (GSNO) are endogenous bronchodilators in human airways. Decreased airway S-nitrosothiol concentrations are associated with asthma. Nitric oxide (NO), a breakdown product of GSNO, is measured in exhaled breath as a biomarker in asthma; an elevated fractio...

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Autores principales: Pophal, Megan, Grimmett, Zachary W., Chu, Clara, Margevicius, Seunghee, Raffay, Thomas, Ross, Kristie, Jafri, Anjum, Giddings, Olivia, Stamler, Jonathan S., Gaston, Benjamin, Reynolds, James D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8532745/
https://www.ncbi.nlm.nih.gov/pubmed/34679661
http://dx.doi.org/10.3390/antiox10101527
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author Pophal, Megan
Grimmett, Zachary W.
Chu, Clara
Margevicius, Seunghee
Raffay, Thomas
Ross, Kristie
Jafri, Anjum
Giddings, Olivia
Stamler, Jonathan S.
Gaston, Benjamin
Reynolds, James D.
author_facet Pophal, Megan
Grimmett, Zachary W.
Chu, Clara
Margevicius, Seunghee
Raffay, Thomas
Ross, Kristie
Jafri, Anjum
Giddings, Olivia
Stamler, Jonathan S.
Gaston, Benjamin
Reynolds, James D.
author_sort Pophal, Megan
collection PubMed
description Thiol-NO adducts such as S-nitrosoglutathione (GSNO) are endogenous bronchodilators in human airways. Decreased airway S-nitrosothiol concentrations are associated with asthma. Nitric oxide (NO), a breakdown product of GSNO, is measured in exhaled breath as a biomarker in asthma; an elevated fraction of expired NO (F(ENO)) is associated with asthmatic airway inflammation. We hypothesized that F(ENO) could reflect airway S-nitrosothiol concentrations. To test this hypothesis, we first studied the relationship between mixed expired NO and airway S-nitrosothiols in patients endotracheally intubated for respiratory failure. The inverse (Lineweaver-Burke type) relationship suggested that expired NO could reflect the rate of pulmonary S-nitrosothiol breakdown. We thus studied NO evolution from the lungs of mice (GSNO reductase (−/−)) unable reductively to catabolize GSNO. More NO was produced from GSNO in the (−/−) compared to wild type lungs. Finally, we formally tested the hypothesis that airway GSNO increases F(ENO) using an inhalational challenge model in normal human subjects. F(ENO) increased in all subjects tested, with a median t(1/2) of 32.0 min. Taken together, these data demonstrate that F(ENO) reports, at least in part, GSNO breakdown in the lungs. Unlike GSNO, NO is not present in the lungs in physiologically relevant concentrations. However, F(ENO) following a GSNO challenge could be a non-invasive test for airway GSNO catabolism.
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spelling pubmed-85327452021-10-23 Airway Thiol-NO Adducts as Determinants of Exhaled NO Pophal, Megan Grimmett, Zachary W. Chu, Clara Margevicius, Seunghee Raffay, Thomas Ross, Kristie Jafri, Anjum Giddings, Olivia Stamler, Jonathan S. Gaston, Benjamin Reynolds, James D. Antioxidants (Basel) Article Thiol-NO adducts such as S-nitrosoglutathione (GSNO) are endogenous bronchodilators in human airways. Decreased airway S-nitrosothiol concentrations are associated with asthma. Nitric oxide (NO), a breakdown product of GSNO, is measured in exhaled breath as a biomarker in asthma; an elevated fraction of expired NO (F(ENO)) is associated with asthmatic airway inflammation. We hypothesized that F(ENO) could reflect airway S-nitrosothiol concentrations. To test this hypothesis, we first studied the relationship between mixed expired NO and airway S-nitrosothiols in patients endotracheally intubated for respiratory failure. The inverse (Lineweaver-Burke type) relationship suggested that expired NO could reflect the rate of pulmonary S-nitrosothiol breakdown. We thus studied NO evolution from the lungs of mice (GSNO reductase (−/−)) unable reductively to catabolize GSNO. More NO was produced from GSNO in the (−/−) compared to wild type lungs. Finally, we formally tested the hypothesis that airway GSNO increases F(ENO) using an inhalational challenge model in normal human subjects. F(ENO) increased in all subjects tested, with a median t(1/2) of 32.0 min. Taken together, these data demonstrate that F(ENO) reports, at least in part, GSNO breakdown in the lungs. Unlike GSNO, NO is not present in the lungs in physiologically relevant concentrations. However, F(ENO) following a GSNO challenge could be a non-invasive test for airway GSNO catabolism. MDPI 2021-09-26 /pmc/articles/PMC8532745/ /pubmed/34679661 http://dx.doi.org/10.3390/antiox10101527 Text en © 2021 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
Pophal, Megan
Grimmett, Zachary W.
Chu, Clara
Margevicius, Seunghee
Raffay, Thomas
Ross, Kristie
Jafri, Anjum
Giddings, Olivia
Stamler, Jonathan S.
Gaston, Benjamin
Reynolds, James D.
Airway Thiol-NO Adducts as Determinants of Exhaled NO
title Airway Thiol-NO Adducts as Determinants of Exhaled NO
title_full Airway Thiol-NO Adducts as Determinants of Exhaled NO
title_fullStr Airway Thiol-NO Adducts as Determinants of Exhaled NO
title_full_unstemmed Airway Thiol-NO Adducts as Determinants of Exhaled NO
title_short Airway Thiol-NO Adducts as Determinants of Exhaled NO
title_sort airway thiol-no adducts as determinants of exhaled no
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8532745/
https://www.ncbi.nlm.nih.gov/pubmed/34679661
http://dx.doi.org/10.3390/antiox10101527
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