Mitochondrial ROS production under cellular stress: comparison of different detection methods

被引:143
作者
Kuznetsov, Andrey V. [1 ]
Kehrer, Ingeborg [2 ]
Kozlov, Andrey V. [2 ]
Haller, Martina [3 ]
Redl, Heinz [2 ]
Hermann, Martin [4 ]
Grimm, Michael [1 ]
Troppmair, Jakob [3 ]
机构
[1] Innsbruck Med Univ, Dept Heart Surg, Cardiac Surg Res Lab, A-6020 Innsbruck, Austria
[2] Res Ctr AUVA, Ludwig Boltzmann Inst Expt & Clin Traumatol, A-1200 Vienna, Austria
[3] Innsbruck Med Univ, Daniel Swarovski Res Lab, Dept Visceral Transplant & Thorac Surg, A-6020 Innsbruck, Austria
[4] Innsbruck Med Univ, KMT Lab, Dept Visceral Transplant & Thorac Surg, A-6020 Innsbruck, Austria
基金
奥地利科学基金会;
关键词
Confocal fluorescent imaging; Cell stress; Electron spin resonance; Laser scanning microscopy; Mitochondria; Reactive oxygen species; REACTIVE OXYGEN; SUPEROXIDE-PRODUCTION; OXIDATIVE STRESS; COMPLEX-III; RESPIRATORY CHAIN; CARDIAC MYOCYTES; HYPOXIA; DEATH; CELLS; GENERATION;
D O I
10.1007/s00216-011-4764-2
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Reactive oxygen species (ROS) are involved in the regulation of many physiological processes. However, overproduction of ROS under various cellular stresses results in cell death and organ injury and thus contributes to a broad spectrum of diseases and pathological conditions. The existence of different cellular sources for ROS and the distinct properties of individual ROS (their reactivity, lifetime, etc.) require adequate detection methods. We therefore compared different models of cellular stress and various ROS-sensitive dyes-2',7'-dichlorodihydrofluorescein diacetate (DCF-DA), MitoSOX (TM), and MitoTrackerA (R) red CM-H(2)XRos-using a confocal fluorescent imaging approach, which has the advantage of not only detecting but also of localizing intracellular sources for ROS. Confocal acquisition of DCF-DA fluorescence can be combined with ROS detection by the mitochondria-specific probes MitoSOX (TM) and MitoTrackerA (R) red CM-H(2)XRos. Specificity was controlled using various antioxidants such as Trolox and N-acetylcysteine. Using different fluorescent ROS-sensitive probes, we detected higher ROS production equally under cell starvation (IL-3 or serum depletion), hypoxia-reoxygenation, or treatment of cells with prooxidants. The detected increase in ROS was approximately threefold in IL-3-depleted 32D cells, approximately 3.5-fold in serum-deprived NIH cells, and 2.5-fold to threefold in hypoxic HL-1 cells, and these findings agree well with previously published spectrofluorometric measurements. In some cases, electron spin resonance (ESR) spectroscopy was used for the validation of results from confocal fluorescent imaging. Our data show that confocal fluorescent imaging and ESR data are in good agreement. Under cellular stress, mitochondrial ROS are released into the cytoplasm and may participate in many processes, but they do not escape from the cell.
引用
收藏
页码:2383 / 2390
页数:8
相关论文
共 47 条
[21]   Reactive oxygen species promote TNFα-induced death and sustained JNK activation by inhibiting MAP kinase phosphatases [J].
Kamata, H ;
Honda, S ;
Maeda, S ;
Chang, LF ;
Hirata, H ;
Karin, M .
CELL, 2005, 120 (05) :649-661
[22]   Mitochondria and reactive oxygen species [J].
Kowaltowski, Alicia J. ;
de Souza-Pinto, Nadja C. ;
Castilho, Roger F. ;
Vercesi, Anibal E. .
FREE RADICAL BIOLOGY AND MEDICINE, 2009, 47 (04) :333-343
[23]   Opposite effects of endotoxin on mitochondrial and endoplasmic reticulum functions [J].
Kozlov, Andrey V. ;
Gille, Lars ;
Miller, Ingrid ;
Piskernik, Christina ;
Haindl, Susanne ;
Staniek, Katrin ;
Nohl, Hans ;
Bahrami, Soheyl ;
Oehlinger, Wolfgang ;
Gemeiner, Manfred ;
Redl, Heinz .
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2007, 352 (01) :91-96
[24]   Different effects of endotoxic shock on the respiratory function of liver and heart mitochondria in rats [J].
Kozlov, AV ;
Staniek, K ;
Haindl, S ;
Piskernik, C ;
Öhlinger, W ;
Gille, L ;
Nohl, H ;
Bahrami, S ;
Redl, H .
AMERICAN JOURNAL OF PHYSIOLOGY-GASTROINTESTINAL AND LIVER PHYSIOLOGY, 2006, 290 (03) :G543-G549
[25]   EPR analysis reveals three tissues responding to endotoxin by increased formation of reactive oxygen and nitrogen species [J].
Kozlov, AV ;
Szalay, L ;
Umar, F ;
Fink, B ;
Kropik, K ;
Nohl, H ;
Redl, H ;
Bahrami, S .
FREE RADICAL BIOLOGY AND MEDICINE, 2003, 34 (12) :1555-1562
[26]   Characterization of superoxide-producing sites in isolated brain mitochondria [J].
Kudin, AP ;
Bimpong-Buta, NYB ;
Vielhaber, S ;
Elger, CE ;
Kunz, WS .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2004, 279 (06) :4127-4135
[27]   Survival signaling by C-RAF:: Mitochondrial reactive oxygen species and Ca2+ are critical targets [J].
Kuznetsov, Andrey V. ;
Smigelskaite, Julija ;
Doblander, Christine ;
Janakiraman, Manickam ;
Hermann, Martin ;
Wurm, Martin ;
Scheidl, Stefan F. ;
Sucher, Robert ;
Deutschmann, Andrea ;
Troppmair, Jakob .
MOLECULAR AND CELLULAR BIOLOGY, 2008, 28 (07) :2304-2313
[28]   Superoxide production by NADH: ubiquinone oxidoreductase (complex I) depends on the pH gradient across the mitochondrial inner membrane [J].
Lambert, AJ ;
Brand, MD .
BIOCHEMICAL JOURNAL, 2004, 382 :511-517
[29]   Reactive oxygen species: toxic molecules or spark of life? [J].
Magder, Sheldon .
CRITICAL CARE, 2006, 10 (01)
[30]   TNF-induced mitochondrial damage: a link between mitochondrial complex I activity and left ventricular dysfunction [J].
Mariappan, Nithya ;
Elks, Carrie M. ;
Fink, Bruno ;
Francis, Joseph .
FREE RADICAL BIOLOGY AND MEDICINE, 2009, 46 (04) :462-470