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Novel Flurometric Tool to Assess Mitochondrial Redox State of Isolated Perfused Rat Lungs After Exposure to Hyperoxia

Recently, we demonstrated the utility of optical fluorometry to detect a change in the redox status of mitochondrial autofluorescent coenzymes nicotinamide adenine dinucleotide (NADH) and oxidized form of flavin adenine dinucleotide [Formula: see text] (FAD), as a measure of mitochondrial function i...

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Autores principales: Sepehr, Reyhaneh, Audi, Said H., Staniszewski, Kevin S., Haworth, Steven T., Jacobs, Elizabeth R., Ranji, Mahsa, Zablocki, Clement J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: IEEE 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4219590/
https://www.ncbi.nlm.nih.gov/pubmed/25379360
http://dx.doi.org/10.1109/JTEHM.2013.2285916
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author Sepehr, Reyhaneh
Audi, Said H.
Staniszewski, Kevin S.
Haworth, Steven T.
Jacobs, Elizabeth R.
Ranji, Mahsa
Zablocki, Clement J.
author_facet Sepehr, Reyhaneh
Audi, Said H.
Staniszewski, Kevin S.
Haworth, Steven T.
Jacobs, Elizabeth R.
Ranji, Mahsa
Zablocki, Clement J.
author_sort Sepehr, Reyhaneh
collection PubMed
description Recently, we demonstrated the utility of optical fluorometry to detect a change in the redox status of mitochondrial autofluorescent coenzymes nicotinamide adenine dinucleotide (NADH) and oxidized form of flavin adenine dinucleotide [Formula: see text] (FAD), as a measure of mitochondrial function in isolated perfused rat lungs (IPL). The objective of this paper was to utilize optical fluorometry to evaluate the effect of rat exposure to hyperoxia ([Formula: see text] for 48 h) on lung tissue mitochondrial redox status of NADH and FAD in a nondestructive manner in IPL. Surface NADH and FAD signals were measured before and after lung perfusion with perfusate containing rotenone (ROT, complex I inhibitor), potassium cyanide (KCN, complex IV inhibitor), and/or pentachlorophenol (PCP, uncoupler). ROT- or KCN-induced increase in NADH signal is considered a measure of complex I activity, and KCN-induced decrease in FAD signal is considered a measure of complex II activity. The results show that hyperoxia decreased complex I and II activities by 63% and 55%, respectively, when compared to lungs of rats exposed to room air (normoxic rats). Mitochondrial complex I and II activities in lung homogenates were also lower (77% and 63%, respectively) for hyperoxic than for normoxic lungs. These results suggest that the mitochondrial matrix is more reduced in hyperoxic lungs than in normoxic lungs, and demonstrate the ability of optical fluorometry to detect a change in mitochondrial redox state of hyperoxic lungs prior to histological changes characteristic of hyperoxia.
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spelling pubmed-42195902014-11-04 Novel Flurometric Tool to Assess Mitochondrial Redox State of Isolated Perfused Rat Lungs After Exposure to Hyperoxia Sepehr, Reyhaneh Audi, Said H. Staniszewski, Kevin S. Haworth, Steven T. Jacobs, Elizabeth R. Ranji, Mahsa Zablocki, Clement J. IEEE J Transl Eng Health Med Article Recently, we demonstrated the utility of optical fluorometry to detect a change in the redox status of mitochondrial autofluorescent coenzymes nicotinamide adenine dinucleotide (NADH) and oxidized form of flavin adenine dinucleotide [Formula: see text] (FAD), as a measure of mitochondrial function in isolated perfused rat lungs (IPL). The objective of this paper was to utilize optical fluorometry to evaluate the effect of rat exposure to hyperoxia ([Formula: see text] for 48 h) on lung tissue mitochondrial redox status of NADH and FAD in a nondestructive manner in IPL. Surface NADH and FAD signals were measured before and after lung perfusion with perfusate containing rotenone (ROT, complex I inhibitor), potassium cyanide (KCN, complex IV inhibitor), and/or pentachlorophenol (PCP, uncoupler). ROT- or KCN-induced increase in NADH signal is considered a measure of complex I activity, and KCN-induced decrease in FAD signal is considered a measure of complex II activity. The results show that hyperoxia decreased complex I and II activities by 63% and 55%, respectively, when compared to lungs of rats exposed to room air (normoxic rats). Mitochondrial complex I and II activities in lung homogenates were also lower (77% and 63%, respectively) for hyperoxic than for normoxic lungs. These results suggest that the mitochondrial matrix is more reduced in hyperoxic lungs than in normoxic lungs, and demonstrate the ability of optical fluorometry to detect a change in mitochondrial redox state of hyperoxic lungs prior to histological changes characteristic of hyperoxia. IEEE 2013-10-16 /pmc/articles/PMC4219590/ /pubmed/25379360 http://dx.doi.org/10.1109/JTEHM.2013.2285916 Text en 2168-2372 © 2013 IEEE
spellingShingle Article
Sepehr, Reyhaneh
Audi, Said H.
Staniszewski, Kevin S.
Haworth, Steven T.
Jacobs, Elizabeth R.
Ranji, Mahsa
Zablocki, Clement J.
Novel Flurometric Tool to Assess Mitochondrial Redox State of Isolated Perfused Rat Lungs After Exposure to Hyperoxia
title Novel Flurometric Tool to Assess Mitochondrial Redox State of Isolated Perfused Rat Lungs After Exposure to Hyperoxia
title_full Novel Flurometric Tool to Assess Mitochondrial Redox State of Isolated Perfused Rat Lungs After Exposure to Hyperoxia
title_fullStr Novel Flurometric Tool to Assess Mitochondrial Redox State of Isolated Perfused Rat Lungs After Exposure to Hyperoxia
title_full_unstemmed Novel Flurometric Tool to Assess Mitochondrial Redox State of Isolated Perfused Rat Lungs After Exposure to Hyperoxia
title_short Novel Flurometric Tool to Assess Mitochondrial Redox State of Isolated Perfused Rat Lungs After Exposure to Hyperoxia
title_sort novel flurometric tool to assess mitochondrial redox state of isolated perfused rat lungs after exposure to hyperoxia
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4219590/
https://www.ncbi.nlm.nih.gov/pubmed/25379360
http://dx.doi.org/10.1109/JTEHM.2013.2285916
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