Physiological Levels of Nitric Oxide Diminish Mitochondrial Superoxide. Potential Role of Mitochondrial Dinitrosyl Iron Complexes and Nitrosothiols

被引:14
作者
Dikalov, Sergey I. [1 ]
Mayorov, Vladimir I. [2 ]
Panov, Alexander V. [3 ]
机构
[1] Vanderbilt Univ, Ctr Med, Dept Med, Nashville, TN 37232 USA
[2] Mercer Univ, Sch Med, Div Basic Med Sci, Macon, GA 31207 USA
[3] Russian Acad Sci, Inst Mol Biol & Biophys, Novosibirsk, Russia
关键词
mitochondria; superoxide; nitric oxide; dinitrosyl iron complexes; nitrosothiols; electron spin resonance; VASCULAR OXIDATIVE STRESS; S-NITROSYLATION; PERMEABILITY TRANSITION; NITROSATIVE STRESS; BRAIN MITOCHONDRIA; ENDOTHELIAL-CELLS; MUSCLE-CELLS; PEROXYNITRITE; SYNTHASE; HYPERTENSION;
D O I
10.3389/fphys.2017.00907
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
Mitochondria are the major source of superoxide radicals and superoxide overproduction contributes to cardiovascular diseases and metabolic disorders. Endothelial dysfunction and diminished nitric oxide levels are early steps in the development of these pathological conditions. It is known that physiological production of nitric oxide reduces oxidative stress and inflammation, however, the precise mechanism of "antioxidant" effect of nitric oxide is not clear. In this work we tested the hypothesis that physiological levels of nitric oxide diminish mitochondrial superoxide production without inhibition of mitochondrial respiration. In order to test this hypothesis we analyzed effect of low physiological fluxes of nitric oxide (20 nM/min) on superoxide and hydrogen peroxide production by ESR spin probes and Amplex Red in isolated rat brain mitochondria. Indeed, low levels of nitric oxide substantially attenuated both basal and antimycin A-stimulated production of reactive oxygen species in the presence of succinate or glutamate/malate as mitochondrial substrates. Furthermore, slow releasing NO donor DPTA-NONOate (100 mu M) did not change oxygen consumption in State 4 and State 3. However, the NO-donor strongly inhibited oxygen consumption in the presence of uncoupling agent CCCP, which is likely associated with inhibition of the over-reduced complex IV in uncoupled mitochondria. We have examined accumulation of dinitrosyl iron complexes and nitrosothiols in mitochondria treated with fast-releasing NO donor MAHMA NONOate (10 mu M) for 30min until complete release of NO. Following treatment with NO donor, mitochondria were frozen for direct detection of dinitrosyl iron complexes using Electron Spin Resonance (ESR) while accumulation of nitrosothiols was measured by ferrous-N-Methyl-D-glucamine dithiocarbamate complex, Fe(MGD)(2), in lysed mitochondria. Treatment of mitochondria with NO-donor gave rise to ESR signal of dinitrosyl iron complexes while ESR spectra of Fe(MGD)(2) supplemented mitochondrial lysates showed presence of both dinitrosyl iron complexes and nitrosothiols. We suggest that nitric oxide attenuates production of mitochondrial superoxide by post-translational modifications by nitrosylation of protein cysteine residues and formation of protein dinitrosyl iron complexes with thiol-containing ligands and, therefore, nitric oxide reduction in pathological conditions associated with endothelial dysfunction may increase mitochondrial oxidative stress.
引用
收藏
页数:9
相关论文
共 51 条
[1]   S-glutathiolation by peroxynitrite activates SERCA during arterial relaxation by nitric oxide [J].
Adachi, T ;
Weisbrod, RM ;
Pimentel, DR ;
Ying, J ;
Sharov, VS ;
Schöneich, C ;
Cohen, RA .
NATURE MEDICINE, 2004, 10 (11) :1200-1207
[2]   Inhibition of mitochondrial respiratory complex I by nitric oxide, peroxynitrite and S-nitrosothiols [J].
Brown, GC ;
Borutaite, V .
BIOCHIMICA ET BIOPHYSICA ACTA-BIOENERGETICS, 2004, 1658 (1-2) :44-49
[3]   Nitric oxide, mitochondria, and cell death [J].
Brown, GC ;
Borutaite, V .
IUBMB LIFE, 2001, 52 (3-5) :189-195
[4]   Direct evidence for S-nitrosation of mitochondrial complex I [J].
Burwell, LS ;
Nadtochiy, SM ;
Tompkins, AJ ;
Young, S ;
Brookes, PS .
BIOCHEMICAL JOURNAL, 2006, 394 :627-634
[5]   Mitochondrial free radical generation, oxidative stress, and aging [J].
Cadenas, E ;
Davies, KJA .
FREE RADICAL BIOLOGY AND MEDICINE, 2000, 29 (3-4) :222-230
[6]   ESR techniques for the detection of nitric oxide in vivo and in tissues [J].
Dikalov, S ;
Fink, B .
NITRIC OXIDE, PT E, 2005, 396 :597-610
[7]   Detection of superoxide radicals and peroxynitrite by 1-hydroxy-4-phosphonooxy-2,2,6,6-tetramethylpiperidine: Quantification of extracellular superoxide radicals formation [J].
Dikalov, S ;
Grigor'ev, IA ;
Voinov, M ;
Bassenge, E .
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 1998, 248 (02) :211-215
[8]   Nox2-Induced Production of Mitochondrial Superoxide in Angiotensin II-Mediated Endothelial Oxidative Stress and Hypertension [J].
Dikalov, Sergey I. ;
Nazarewicz, Rafal R. ;
Bikineyeva, Alfiya ;
Hilenski, Lula ;
Lassegue, Bernard ;
Griendling, Kathy K. ;
Harrison, David G. ;
Dikalova, Anna E. .
ANTIOXIDANTS & REDOX SIGNALING, 2014, 20 (02) :281-294
[9]   EPR detection of cellular and mitochondrial superoxide using cyclic hydroxylamines [J].
Dikalov, Sergey I. ;
Kirilyuk, Igor A. ;
Voinov, Maxim ;
Grigor'ev, Igor A. .
FREE RADICAL RESEARCH, 2011, 45 (04) :417-430
[10]   Sirt3 Impairment and SOD2 Hyperacetylation in Vascular Oxidative Stress and Hypertension [J].
Dikalova, Anna E. ;
Itani, Hana A. ;
Nazarewicz, Rafal R. ;
McMaster, William G. ;
Flynn, Charles R. ;
Uzhachenko, Roman ;
Fessel, Joshua P. ;
Gamboa, Jorge L. ;
Harrison, David G. ;
Dikalov, Sergey I. .
CIRCULATION RESEARCH, 2017, 121 (05) :564-+