Literature DB >> 29739855

Detection of mitochondria-generated reactive oxygen species in cells using multiple probes and methods: Potentials, pitfalls, and the future.

Gang Cheng1,2, Monika Zielonka1,2, Brian Dranka3, Suresh N Kumar4, Charles R Myers5,6, Brian Bennett7, Alexander M Garces7, Luiz Gabriel Dias Duarte Machado7, David Thiebaut8, Olivier Ouari8, Micael Hardy8, Jacek Zielonka1,2,6, Balaraman Kalyanaraman9,2,6.   

Abstract

Reactive oxygen and nitrogen species (ROS/RNS) such as superoxide (O2̇̄), hydrogen peroxide, lipid hydroperoxides, peroxynitrite, and hypochlorous and hypobromous acids play a key role in many pathophysiological processes. Recent studies have focused on mitochondrial ROS as redox signaling species responsible for promoting cell division, modulating and regulating kinases and phosphatases, and activating transcription factors. Many ROS also stimulate cell death and senescence. The extent to which these processes occur is attributed to ROS levels (low or high) in cells. However, the exact nature of ROS remains unknown. Investigators have used redox-active probes that, upon oxidation by ROS, yield products exhibiting fluorescence, chemiluminescence, or bioluminescence. Mitochondria-targeted probes can be used to detect ROS generated in mitochondria. However, because most of these redox-active probes (untargeted and mitochondria-targeted) are oxidized by several ROS species, attributing redox probe oxidation to specific ROS species is difficult. It is conceivable that redox-active probes are oxidized in common one-electron oxidation pathways, resulting in a radical intermediate that either reacts with another oxidant (including oxygen to produce O2̇̄) and forms a stable fluorescent product or reacts with O2̇̄ to form a fluorescent marker product. Here, we propose the use of multiple probes and complementary techniques (HPLC, LC-MS, redox blotting, and EPR) and the measurement of intracellular probe uptake and specific marker products to identify specific ROS generated in cells. The low-temperature EPR technique developed to investigate cellular/mitochondrial oxidants can easily be extended to animal and human tissues.
© 2018 Cheng et al.

Entities:  

Keywords:  bioenergetics; electron paramagnetic resonance (EPR); low-temperature EPR; mitochondrial oxidants; peroxiredoxin; radical scavengers; reactive oxygen species (ROS); redox probes; superoxide ion; thiol-specific antioxidant enzymes

Mesh:

Substances:

Year:  2018        PMID: 29739855      PMCID: PMC6028982          DOI: 10.1074/jbc.RA118.003044

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  117 in total

1.  Therapeutic targeting of mitochondrial superoxide in hypertension.

Authors:  Anna E Dikalova; Alfiya T Bikineyeva; Klaudia Budzyn; Rafal R Nazarewicz; Louise McCann; William Lewis; David G Harrison; Sergey I Dikalov
Journal:  Circ Res       Date:  2010-05-06       Impact factor: 17.367

2.  Antiproliferative effects of mitochondria-targeted cationic antioxidants and analogs: Role of mitochondrial bioenergetics and energy-sensing mechanism.

Authors:  Gang Cheng; Jacek Zielonka; Donna McAllister; Micael Hardy; Olivier Ouari; Joy Joseph; Michael B Dwinell; Balaraman Kalyanaraman
Journal:  Cancer Lett       Date:  2015-05-21       Impact factor: 8.679

3.  Palmitate induces mitochondrial superoxide generation and activates AMPK in podocytes.

Authors:  Eugene Lee; Jin Choi; Hyun Soon Lee
Journal:  J Cell Physiol       Date:  2017-05-03       Impact factor: 6.384

4.  Suppression of reactive oxygen species and neurodegeneration by the PGC-1 transcriptional coactivators.

Authors:  Julie St-Pierre; Stavit Drori; Marc Uldry; Jessica M Silvaggi; James Rhee; Sibylle Jäger; Christoph Handschin; Kangni Zheng; Jiandie Lin; Wenli Yang; David K Simon; Robert Bachoo; Bruce M Spiegelman
Journal:  Cell       Date:  2006-10-20       Impact factor: 41.582

5.  Spin trapping.

Authors:  E G Janzen
Journal:  Methods Enzymol       Date:  1984       Impact factor: 1.600

Review 6.  Biological Production, Detection, and Fate of Hydrogen Peroxide.

Authors:  Christine C Winterbourn
Journal:  Antioxid Redox Signal       Date:  2017-12-14       Impact factor: 8.401

7.  Oxidative stress-induced iron signaling is responsible for peroxide-dependent oxidation of dichlorodihydrofluorescein in endothelial cells: role of transferrin receptor-dependent iron uptake in apoptosis.

Authors:  Yoshiko Tampo; Srigiridhar Kotamraju; Christopher R Chitambar; Shasi V Kalivendi; Agnes Keszler; Joy Joseph; B Kalyanaraman
Journal:  Circ Res       Date:  2003-01-10       Impact factor: 17.367

8.  Therapeutically targeting mitochondrial redox signalling alleviates endothelial dysfunction in preeclampsia.

Authors:  Cathal McCarthy; Louise C Kenny
Journal:  Sci Rep       Date:  2016-09-08       Impact factor: 4.379

9.  Honokiol, an activator of Sirtuin-3 (SIRT3) preserves mitochondria and protects the heart from doxorubicin-induced cardiomyopathy in mice.

Authors:  Vinodkumar B Pillai; Abhinav Kanwal; Yong Hu Fang; Willard W Sharp; Sadhana Samant; Jack Arbiser; Mahesh P Gupta
Journal:  Oncotarget       Date:  2017-05-23

10.  Cisplatin and Pemetrexed Activate AXL and AXL Inhibitor BGB324 Enhances Mesothelioma Cell Death from Chemotherapy.

Authors:  Derek B Oien; Tamás Garay; Sarah Eckstein; Jeremy Chien
Journal:  Front Pharmacol       Date:  2018-01-11       Impact factor: 5.810

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  32 in total

1.  Increased formation of reactive oxygen species during tumor growth: Ex vivo low-temperature EPR and in vivo bioluminescence analyses.

Authors:  Gang Cheng; Jing Pan; Radoslaw Podsiadly; Jacek Zielonka; Alexander M Garces; Luiz Gabriel Dias Duarte Machado; Brian Bennett; Donna McAllister; Michael B Dwinell; Ming You; Balaraman Kalyanaraman
Journal:  Free Radic Biol Med       Date:  2019-12-23       Impact factor: 7.376

2.  Effects of N-acetyl cysteine on mitochondrial ROS, mitochondrial dynamics, and inflammation on lipopolysaccharide-treated human apical papilla cells.

Authors:  Nutcha Jariyamana; Patchanee Chuveera; Anat Dewi; Warat Leelapornpisid; Jitjiroj Ittichaicharoen; Siriporn Chattipakorn; Tanida Srisuwan
Journal:  Clin Oral Investig       Date:  2021-01-06       Impact factor: 3.573

3.  The mitochondrial thioredoxin reductase system (TrxR2) in vascular endothelium controls peroxynitrite levels and tissue integrity.

Authors:  Petra Kameritsch; Miriam Singer; Christoph Nuernbergk; Natalia Rios; Aníbal M Reyes; Kjestine Schmidt; Julian Kirsch; Holger Schneider; Susanna Müller; Kristin Pogoda; Ruicen Cui; Thomas Kirchner; Cor de Wit; Bärbel Lange-Sperandio; Ulrich Pohl; Marcus Conrad; Rafael Radi; Heike Beck
Journal:  Proc Natl Acad Sci U S A       Date:  2021-02-16       Impact factor: 11.205

4.  The Behavioral Sequelae of Social Defeat Require Microglia and Are Driven by Oxidative Stress in Mice.

Authors:  Michael L Lehmann; Thaddeus K Weigel; Chelsie N Poffenberger; Miles Herkenham
Journal:  J Neurosci       Date:  2019-05-13       Impact factor: 6.167

5.  Low-Temperature EPR Spectroscopy as a Probe-Free Technique for Monitoring Oxidants Formed in Tumor Cells and Tissues: Implications in Drug Resistance and OXPHOS-Targeted Therapies.

Authors:  Balaraman Kalyanaraman; Gang Cheng; Jacek Zielonka; Brian Bennett
Journal:  Cell Biochem Biophys       Date:  2018-09-26       Impact factor: 2.194

6.  Tracking isotopically labeled oxidants using boronate-based redox probes.

Authors:  Natalia Rios; Rafael Radi; Balaraman Kalyanaraman; Jacek Zielonka
Journal:  J Biol Chem       Date:  2020-03-26       Impact factor: 5.157

Review 7.  Targeting mitochondrial dysfunction and oxidative stress in heart failure: Challenges and opportunities.

Authors:  Ligia Akemi Kiyuna; Rudá Prestes E Albuquerque; Che-Hong Chen; Daria Mochly-Rosen; Julio Cesar Batista Ferreira
Journal:  Free Radic Biol Med       Date:  2018-09-15       Impact factor: 7.376

8.  The Type and Source of Reactive Oxygen Species Influences the Outcome of Oxidative Stress in Cultured Cells.

Authors:  Steffi Goffart; Petra Tikkanen; Craig Michell; Trevor Wilson; Jaakko L O L O Pohjoismäki
Journal:  Cells       Date:  2021-04-30       Impact factor: 6.600

9.  Correcting QUEST Magnetic Resonance Imaging-Sensitive Free Radical Production in the Outer Retina In Vivo Does Not Correct Reduced Visual Performance in 24-Month-Old C57BL/6J Mice.

Authors:  Bruce A Berkowitz; Robert H Podolsky; Karen Lins Childers; Robin Roberts; Michael Schneider; Emma Graffice; Kenan Sinan; Ali Berri; Lamis Harp
Journal:  Invest Ophthalmol Vis Sci       Date:  2021-05-03       Impact factor: 4.799

10.  Toxicity of Water- and Organic-Soluble Wood Tar Fractions from Biomass Burning in Lung Epithelial Cells.

Authors:  Michal Pardo; Chunlin Li; Zheng Fang; Smadar Levin-Zaidman; Nili Dezorella; Hendryk Czech; Patrick Martens; Uwe Käfer; Thomas Gröger; Christopher P Rüger; Lukas Friederici; Ralf Zimmermann; Yinon Rudich
Journal:  Chem Res Toxicol       Date:  2021-05-25       Impact factor: 3.739

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