Comparison of Mitochondrial Superoxide Detection Ex Vivo/In Vivo by mitoSOX HPLC Method with Classical Assays in Three Different Animal Models of Oxidative Stress

被引:24
作者
Kalinovic, Sanela [1 ]
Oelze, Matthias [1 ]
Kroeller-Schoen, Swenja [1 ]
Steven, Sebastian [1 ]
Vujacic-Mirski, Ksenija [1 ]
Kvandova, Miroslava [1 ]
Schmal, Isabella [1 ]
Al Zuabi, Ahmad [1 ]
Muenzel, Thomas [1 ,2 ]
Daiber, Andreas [1 ,2 ]
机构
[1] Univ Med Ctr, Ctr Cardiol, Dept Cardiol, Mol Cardiol, D-55131 Mainz, Germany
[2] German Ctr Cardiovasc Res DZHK, Partner Site Rhine Main, Langenbeckstr 1, D-55131 Mainz, Germany
关键词
oxidative stress; mitochondrial superoxide detection; mitoSOX; hypertension; diabetes; nitrate tolerance; ALDEHYDE DEHYDROGENASE-ACTIVITY; REACTIVE OXYGEN; VASCULAR DYSFUNCTION; HYDROGEN-PEROXIDE; NADPH OXIDASE; NITRIC-OXIDE; PENTAERYTHRITOL TETRANITRATE; ENDOTHELIAL DYSFUNCTION; CARDIOVASCULAR INJURY; CROSS-TALK;
D O I
10.3390/antiox8110514
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Background: Reactive oxygen and nitrogen species (RONS such as H2O2, nitric oxide) are generated within the organism. Whereas physiological formation rates confer redox regulation of essential cellular functions and provide the basis for adaptive stress responses, their excessive formation contributes to impaired cellular function or even cell death, organ dysfunction and severe disease phenotypes of the entire organism. Therefore, quantification of RONS formation and knowledge of their tissue/cell/compartment-specific distribution is of great biological and clinical importance. Methods: Here, we used a high-performance/pressure liquid chromatography (HPLC) assay to quantify the superoxide-specific oxidation product of the mitochondria-targeted fluorescence dye triphenylphosphonium-linked hydroethidium (mitoSOX) in biochemical systems and three animal models with established oxidative stress. Type 1 diabetes (single injection of streptozotocin), hypertension (infusion of angiotensin-II for 7 days) and nitrate tolerance (infusion of nitroglycerin for 4 days) was induced in male Wistar rats. Results: The usefulness of mitoSOX/HPLC for quantification of mitochondrial superoxide was confirmed by xanthine oxidase activity as well as isolated stimulated rat heart mitochondria in the presence or absence of superoxide scavengers. Vascular function was assessed by isometric tension methodology and was impaired in the rat models of oxidative stress. Vascular dysfunction correlated with increased mitoSOX oxidation but also classical RONS detection assays as well as typical markers of oxidative stress. Conclusion: mitoSOX/HPLC represents a valid method for detection of mitochondrial superoxide formation in tissues of different animal disease models and correlates well with functional parameters and other markers of oxidative stress.
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页数:18
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共 75 条
  • [51] Antioxidants in Translational Medicine
    Schmidt, Harald H. H. W.
    Stocker, Roland
    Vollbracht, Claudia
    Paulsen, Goran
    Riley, Dennis
    Daiber, Andreas
    Cuadrado, Antonio
    [J]. ANTIOXIDANTS & REDOX SIGNALING, 2015, 23 (14) : 1130 - 1143
  • [52] Vascular Dysfunction in Experimental Diabetes Is Improved by Pentaerithrityl Tetranitrate but Not Isosorbide-5-Mononitrate Therapy
    Schuhmacher, Swenja
    Oelze, Matthias
    Bollmann, Franziska
    Kleinert, Hartmut
    Otto, Christian
    Heeren, Tjebo
    Steven, Sebastian
    Hausding, Michael
    Knorr, Malice
    Pautz, Andrea
    Reifenberg, Kurt
    Schulz, Eberhard
    Gori, Tommaso
    Wenzel, Philip
    Muenzel, Thomas
    Daiber, Andreas
    [J]. DIABETES, 2011, 60 (10) : 2608 - 2616
  • [53] Pentaerythritol Tetranitrate Improves Angiotensin II-Induced Vascular Dysfunction via Induction of Heme Oxygenase-1
    Schuhmacher, Swenja
    Wenzel, Philip
    Schulz, Eberhard
    Oelze, Matthias
    Mang, Christian
    Kamuf, Jens
    Gori, Tommaso
    Jansen, Thomas
    Knorr, Maike
    Karbach, Susanne
    Hortmann, Marcus
    Maethner, Falk
    Bhatnagar, Aruni
    Foerstermann, Ulrich
    Li, Huige
    Muenzel, Thomas
    Daiber, Andreas
    [J]. HYPERTENSION, 2010, 55 (04) : 897 - U153
  • [54] Mitochondrial Redox Signaling: Interaction of Mitochondrial Reactive Oxygen Species with Other Sources of Oxidative Stress
    Schulz, Eberhard
    Wenzel, Philip
    Muenzel, Thomas
    Daiber, Andreas
    [J]. ANTIOXIDANTS & REDOX SIGNALING, 2014, 20 (02) : 308 - 324
  • [55] Sies H., 1991, OXIDATIVE STRESS OXI
  • [56] Oxidative Stress
    Sies, Helmut
    Berndt, Carsten
    Jones, Dean P.
    [J]. ANNUAL REVIEW OF BIOCHEMISTRY, VOL 86, 2017, 86 : 715 - 748
  • [57] Hydrogen peroxide as a central redox signaling molecule in physiological oxidative stress: Oxidative eustress
    Sies, Helmut
    [J]. REDOX BIOLOGY, 2017, 11 : 613 - 619
  • [58] Oxidative stress: a concept in redox biology and medicine
    Sies, Helmut
    [J]. REDOX BIOLOGY, 2015, 4 : 180 - 183
  • [59] REDOX SIGNALING - NITROSYLATION AND RELATED TARGET INTERACTIONS OF NITRIC-OXIDE
    STAMLER, JS
    [J]. CELL, 1994, 78 (06) : 931 - 936
  • [60] The SGLT2 inhibitor empagliflozin improves the primary diabetic complications in ZDF rats
    Steven, Sebastian
    Oelze, Matthias
    Hanf, Alina
    Kroeller-Schoen, Swenja
    Kashani, Fatemeh
    Roohani, Siyer
    Welschof, Philipp
    Kopp, Maximilian
    Goedtel-Armbrust, Ute
    Xia, Ning
    Li, Huige
    Schulz, Eberhard
    Lackner, Karl J.
    Wojnowski, Leszek
    Bottari, Serge P.
    Wenzel, Philip
    Mayoux, Eric
    Muenzel, Thomas
    Daiber, Andreas
    [J]. REDOX BIOLOGY, 2017, 13 : 370 - 385