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Mitochondria require nitric oxide (NO) to exert a delicate control of metabolic rate as well as to regulate life functions, cell cycle activation and arrest, and apoptosis. All activities depend on the matrical NO steady state concentration as provided by mitochondrial (mtNOS) and cytosolic sources (eNOS) and reduced by forming superoxide anion and H2O2 and a low peroxynirite (ONOO) yield. We review herein the biochemical pathways involved in the control of NO mitochondrial level and its biological and physiological significance in hormone effects and aging. At high NO, the cost of this physiological regulation is that ONOO excess will lead to nitrosation/nitration and oxidization of mitochondrial and cell proteins and lipids. The disruption of NO modulation of mitochondrial respiration supports then, a platform for prevalent neurodegenerative and metabolic diseases.  相似文献   

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Nitric oxide (NO) is a diffusible messenger that conveys information based on its concentration dynamics, which is dictated by the interplay between its synthesis, inactivation and diffusion. Here, we characterized NO diffusion in the rat brain in vivo. By direct sub-second measurement of NO, we determined the diffusion coefficient of NO in the rat brain cortex. The value of 2.2 × 10−5 cm2/s obtained in vivo was only 14% lower than that obtained in agarose gel (used to evaluate NO free diffusion). These results reinforce the view of NO as a fast diffusing messenger but, noticeably, the data indicates that neither NO diffusion through the brain extracellular space nor homogeneous diffusion in the tissue through brain cells can account for the similarity between NO free diffusion coefficient and that obtained in the brain. Overall, the results support that NO diffusion in brain tissue is heterogeneous, pointing to the existence of a pathway that facilitates NO diffusion, such as cell membranes and other hydrophobic structures.  相似文献   

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Kinetics of ferric Mycobacterium leprae truncated hemoglobin O (trHbOFe(III)) oxidation by H2O2 and of trHbOFe(IV)O reduction by NO and NO2 are reported. The value of the second-order rate constant for H2O2-mediated oxidation of trHbOFe(III) is 2.4 × 103 M−1 s−1. The value of the second-order rate constant for NO-mediated reduction of trHbOFe(IV)O is 7.8 × 106 M−1 s−1. The value of the first-order rate constant for trHbOFe(III)ONO decay to the resting form trHbOFe(III) is 2.1 × 101 s−1. The value of the second-order rate constant for NO2-mediated reduction of trHbOFe(IV)O is 3.1 × 103 M−1 s−1. As a whole, trHbOFe(IV)O, generated upon reaction with H2O2, catalyzes NO reduction to NO2. In turn, NO and NO2 act as antioxidants of trHbOFe(IV)O, which could be responsible for the oxidative damage of the mycobacterium. Therefore, Mycobacterium leprae trHbO could be involved in both H2O2 and NO scavenging, protecting from nitrosative and oxidative stress, and sustaining mycobacterial respiration.  相似文献   

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In our study, EPR spin-trapping technique was employed to study dark production of two reactive oxygen species, hydroxyl radicals (OH) and singlet oxygen (1O2), in spinach photosystem II (PSII) membrane particles exposed to elevated temperature (47 °C). Production of OH, evaluated as EMPO-OH adduct EPR signal, was suppressed by the enzymatic removal of hydrogen peroxide and by the addition of iron chelator desferal, whereas externally added hydrogen peroxide enhanced OH production. These observations reveal that OH is presumably produced by metal-mediated reduction of hydrogen peroxide in a Fenton-type reaction. Increase in pH above physiological values significantly stimulated the formation of OH, whereas the presence of chloride and calcium ions had the opposite effect. Based on our results it is proposed that the formation of OH is linked to the thermal disassembly of water-splitting manganese complex on PSII donor side. Singlet oxygen production, followed as the formation of nitroxyl radical TEMPO, was not affected by OH scavengers. This finding indicates that the production of these two species was independent and that the production of 1O2 is not closely linked to PSII donor side.  相似文献   

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Tris(p-carboxyltetrathiaaryl)methyl radicals (TAM) are good EPR probes for measurement of dioxygen concentration in biological systems and for EPR imaging. It has been previously reported that these radicals are efficiently oxidized by superoxide, O2, or alkylperoxyl radicals, ROO, and by liver microsomes via an oxidative decarboxylation mechanism leading to the corresponding quinone-methides (QM). This article shows that peroxidases, such as horseradish peroxidase (HRP), lactoperoxidase (LPO) and prostaglandin synthase (PGHS), and other hemeproteins, such as methemoglobin (metHb), metmyoglobin (metMb) and catalase, also efficiently catalyze the oxidation of TAM radicals to QM by H2O2 or alkylhydroperoxides. These reactions involve the intermediate formation of the corresponding cations TAM+ that have also been cleanly generated by K2Ir(IV)Cl6 and characterized by UV-Visible spectroscopy and mass spectrometry, and through their reactions with ascorbate or H2O2. Labelling experiments on HRP-catalyzed oxidation of TAM to QM using H218O or 18O2 in the presence of glucose and glucose oxidase (GOX) showed that the oxygen atom incorporated into QM came both from O2 and from H2O. Mechanisms for these reactions in agreement with those data were proposed. Oxidative decarboxylation of TAM to QM is a new reaction catalyzed by peroxidases. Such reactions should be considered when using TAM as EPR oximetry probes invivo or in vitro in complex biological media.  相似文献   

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Two radicals have been detected previously by electron paramagnetic resonance (EPR) and electron nuclear double resonance (ENDOR) spectroscopies in bovine cytochrome oxidase after reaction with hydrogen peroxide, but no correlation could be made with predicted levels of optically detectable intermediates (PM, F and F) that are formed. This work has been extended by optical quantitation of intermediates in the EPR/ENDOR sample tubes, and by comparison with an analysis of intermediates formed by reaction with carbon monoxide in the presence of oxygen. The narrow radical, attributed previously to a porphyrin cation, is detectable at low levels even in untreated oxidase and increases with hydrogen peroxide treatments generally. It is presumed to arise from a side-reaction unrelated to the catalytic intermediates. The broad radical, attributed previously to a tryptophan radical, is observed only in samples with a significant level of F but when F is generated with hydrogen peroxide, is always accompanied by the narrow radical. When PM is produced at high pH with CO/O2, no EPR-detectable radicals are formed. Conversion of the CO/O2-generated PM into F when pH is lowered is accompanied by the appearance of a broad radical whose ENDOR spectrum corresponds to a tryptophan cation. Quantitation of its EPR intensity indicates that it is around 3% of the level of F determined optically. It is concluded that low pH causes a change of protonation pattern in PM which induces partial electron redistribution and tryptophan cation radical formation in F. These protonation changes may mimic a key step of the proton translocation process.  相似文献   

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Hiroyuki Mino  Shigeru Itoh 《BBA》2005,1708(1):42-49
We investigated a new EPR signal that gives a broad line shape around g=2 in Ca2+-depleted Photosystem (PS) II. The signal was trapped by illumination at 243 K in parallel with the formation of YZ. The ratio of the intensities between the g=2 broad signal and the YZ signal was 1:3, assuming a Gaussian line shape for the former. The g=2 broad signal and the YZ signal decayed together in parallel with the appearance of the S2 state multiline at 243 K. The g=2 broad signal was assigned to be an intermediate S1X state in the transition from the S1 to the S2 state, where X represents an amino acid radical nearby manganese cluster, such as D1-His337. The signal is in thermal equilibrium with YZ. Possible reactions in the S state transitions in Ca2+-depleted PS II were discussed.  相似文献   

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Combining fac-[Re(CO)3Cl] with components of the ligand redox system bmtz/bmtz/H2bmtz/H2bmtz (bmtz=3,6-bis(2-pyrimidyl)-1,2,4,5-tetrazine) has led to the isolation of the complexes (H2bmtz)Re(CO)3Cl, (μ-H2bmtz)[Re(CO)3Cl]2 and (μ-bmtz)[Re(CO)3Cl]2. Other species characterized were (bmtz)Re(CO)3Cl (UV/Vis, IR), [(H2bmtz)Re(CO)3Cl] (UV/Vis, IR, EPR), {(μ-H2bmtz)[Re(CO)3Cl]2} (UV/Vis, IR, EPR) and {(μ-bmtz)[Re(CO)3Cl]2} (UV/Vis, IR, X band and high-field EPR). The results confirm bmtz as very strong and H2bmtz as moderate π acceptor ligand versus one or two chelate-bonded low-valent metal centers. Reactivity is observed in terms of oxidative proton and reductive chloride dissociation.  相似文献   

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Inflammation associated reactive oxygen and nitrogen species (RONs), including peroxynitrite (ONOO) and nitric oxide (NO), create base lesions that potentially play a role in the toxicity and large genomic rearrangements associated with many malignancies. Little is known about the role of base excision repair (BER) in removing these endogenous DNA lesions. Here, we explore the role of X-ray repair cross-complementing group 1 (XRCC1) in attenuating RONs-induced genotoxicity. XRCC1 is a scaffold protein critical for BER for which polymorphisms modulate the risk of cancer. We exploited CHO and human glioblastoma cell lines engineered to express varied levels of BER proteins to study XRCC1. Cytotoxicity and the levels of DNA repair intermediates (single-strand breaks; SSB) were evaluated following exposure of the cells to the ONOO donor, SIN-1, and to gaseous NO. XRCC1 null cells were slightly more sensitive to SIN-1 than wild-type cells. We used small-scale bioreactors to expose cells to NO and found that XRCC1-deficient CHO cells were not sensitive. However, using a molecular beacon assay to test lesion removal in vitro, we found that XRCC1 facilitates AAG-initiated excision of two key NO-induced DNA lesions: 1,N6-ethenoadenine and hypoxanthine. Furthermore, overexpression of AAG rendered XRCC1-deficient cells sensitive to NO-induced DNA damage. These results show that AAG is a key glycosylase for BER of NO-induced DNA damage and that XRCC1's role in modulating sensitivity to RONs is dependent upon the cellular level of AAG. This demonstrates the importance of considering the expression of other components of the BER pathway when evaluating the impact of XRCC1 polymorphisms on cancer risk.  相似文献   

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Arjun Tiwari 《BBA》2009,1787(8):985-994
This study provides evidence for the superoxide oxidase and the superoxide reductase activity of cytochrome b559 (cyt b559) in PSII. It is reported that in Tris-treated PSII membranes upon illumination, both the intermediate potential (IP) and the reduced high potential (HPred) forms of cyt b559 exhibit superoxide scavenging activity and interconversion between IP and HPred form. When Tris-treated PSII membranes were illuminated in the presence of spin trap EMPO, the formation of superoxide anion radical (O2) was observed, as confirmed by EPR spin-trapping spectroscopy. The observations that the addition of enzymatic (superoxide dismutase) and non-enzymatic (cytochrome c, α-tocopherol and Trolox) O2 scavengers prevented the light-induced conversion of IP ↔ HPred cyt b559 confirmed that IP and HPred cyt b559 are reduced and oxidized by O2, respectively. Redox changes in cyt b559 by an exogenous source of O2 reconfirmed the superoxide oxidase and reductase activity of cyt b559. Furthermore, the light-induced conversion of IP to HPred form of cyt b559 was completely inhibited at pH > 8 and by chemical modification of the imidazole ring of histidine residues using diethyl pyrocarbonate. We proposed that a change in the environment around the heme iron, induced by the protonation and deprotonation of His22 residue generates a favorable condition for the oxidation and reduction of O2, respectively.  相似文献   

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