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Functional Imaging of Mitochondria in Saponin-permeabilized Mice Muscle Fibers

Confocal laser-scanning and digital fluorescence imaging microscopy were used to quantify the mitochondrial autofluorescence changes of NAD(P)H and flavoproteins in unfixed saponin-permeabilized myofibers from mice quadriceps muscle tissue. Addition of mitochondrial substrates, ADP, or cyanide led t...

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Detalles Bibliográficos
Autores principales: Kuznetsov, Andrey V., Mayboroda, Oleg, Kunz, Dagmar, Winkler, Kirstin, Schubert, Walter, Kunz, Wolfram S.
Formato: Texto
Lenguaje:English
Publicado: The Rockefeller University Press 1998
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2132706/
https://www.ncbi.nlm.nih.gov/pubmed/9490722
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author Kuznetsov, Andrey V.
Mayboroda, Oleg
Kunz, Dagmar
Winkler, Kirstin
Schubert, Walter
Kunz, Wolfram S.
author_facet Kuznetsov, Andrey V.
Mayboroda, Oleg
Kunz, Dagmar
Winkler, Kirstin
Schubert, Walter
Kunz, Wolfram S.
author_sort Kuznetsov, Andrey V.
collection PubMed
description Confocal laser-scanning and digital fluorescence imaging microscopy were used to quantify the mitochondrial autofluorescence changes of NAD(P)H and flavoproteins in unfixed saponin-permeabilized myofibers from mice quadriceps muscle tissue. Addition of mitochondrial substrates, ADP, or cyanide led to redox state changes of the mitochondrial NAD system. These changes were detected by ratio imaging of the autofluorescence intensities of fluorescent flavoproteins and NAD(P)H, showing inverse fluorescence behavior. The flavoprotein signal was colocalized with the potentiometric mitochondria-specific dye dimethylaminostyryl pyridyl methyl iodide (DASPMI), or with MitoTracker™ Green FM, a constitutive marker for mitochondria. Within individual myofibers we detected topological mitochondrial subsets with distinct flavoprotein autofluorescence levels, equally responding to induced rate changes of the oxidative phosphorylation. The flavoprotein autofluorescence levels of these subsets differed by a factor of four. This heterogeneity was substantiated by flow-cytometric analysis of flavoprotein and DASPMI fluorescence changes of individual mitochondria isolated from mice skeletal muscle. Our data provide direct evidence that mitochondria in single myofibers are distinct subsets at the level of an intrinsic fluorescent marker of the mitochondrial NAD–redox system. Under the present experimental conditions these subsets show similar functional responses.
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spelling pubmed-21327062008-05-01 Functional Imaging of Mitochondria in Saponin-permeabilized Mice Muscle Fibers Kuznetsov, Andrey V. Mayboroda, Oleg Kunz, Dagmar Winkler, Kirstin Schubert, Walter Kunz, Wolfram S. J Cell Biol Article Confocal laser-scanning and digital fluorescence imaging microscopy were used to quantify the mitochondrial autofluorescence changes of NAD(P)H and flavoproteins in unfixed saponin-permeabilized myofibers from mice quadriceps muscle tissue. Addition of mitochondrial substrates, ADP, or cyanide led to redox state changes of the mitochondrial NAD system. These changes were detected by ratio imaging of the autofluorescence intensities of fluorescent flavoproteins and NAD(P)H, showing inverse fluorescence behavior. The flavoprotein signal was colocalized with the potentiometric mitochondria-specific dye dimethylaminostyryl pyridyl methyl iodide (DASPMI), or with MitoTracker™ Green FM, a constitutive marker for mitochondria. Within individual myofibers we detected topological mitochondrial subsets with distinct flavoprotein autofluorescence levels, equally responding to induced rate changes of the oxidative phosphorylation. The flavoprotein autofluorescence levels of these subsets differed by a factor of four. This heterogeneity was substantiated by flow-cytometric analysis of flavoprotein and DASPMI fluorescence changes of individual mitochondria isolated from mice skeletal muscle. Our data provide direct evidence that mitochondria in single myofibers are distinct subsets at the level of an intrinsic fluorescent marker of the mitochondrial NAD–redox system. Under the present experimental conditions these subsets show similar functional responses. The Rockefeller University Press 1998-03-09 /pmc/articles/PMC2132706/ /pubmed/9490722 Text en This article is distributed under the terms of an Attribution–Noncommercial–Share Alike–No Mirror Sites license for the first six months after the publication date (see http://www.rupress.org/terms). After six months it is available under a Creative Commons License (Attribution–Noncommercial–Share Alike 4.0 Unported license, as described at http://creativecommons.org/licenses/by-nc-sa/4.0/).
spellingShingle Article
Kuznetsov, Andrey V.
Mayboroda, Oleg
Kunz, Dagmar
Winkler, Kirstin
Schubert, Walter
Kunz, Wolfram S.
Functional Imaging of Mitochondria in Saponin-permeabilized Mice Muscle Fibers
title Functional Imaging of Mitochondria in Saponin-permeabilized Mice Muscle Fibers
title_full Functional Imaging of Mitochondria in Saponin-permeabilized Mice Muscle Fibers
title_fullStr Functional Imaging of Mitochondria in Saponin-permeabilized Mice Muscle Fibers
title_full_unstemmed Functional Imaging of Mitochondria in Saponin-permeabilized Mice Muscle Fibers
title_short Functional Imaging of Mitochondria in Saponin-permeabilized Mice Muscle Fibers
title_sort functional imaging of mitochondria in saponin-permeabilized mice muscle fibers
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2132706/
https://www.ncbi.nlm.nih.gov/pubmed/9490722
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