Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “peroxide (H2O2)”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 487 records · Page 27Linked to original sources

Isoflurane aggravates the decrease of phosphatidycholine synthesis in alveolar type II cells induced by hydrogen peroxide.

The influence of isoflurane (Iso) on the synthesis and secretion of phosphatidylcholine (PC) of alveolar type II cells (AT II cells) injured by hydrogen peroxide (H2O2) was investigated. After primary culturing for 32 h, AT II cells isolated and purified from adult Sprague-Dawley rats were randomly divided into six groups: control group, 02.8 mM Iso group, 2.8 mM Iso group, 75 microM H2O2 group, 75 microM H2O2 + 0.28 mM Iso group, and 75 microM H202 + 2.8 mM Iso group. Synthesis and secretion of phosphatidylcholine (PC) were detected by 3H-choline chloride incorporation. It was found that 0.28 mM and 2.8 mM Iso significantly reduced PC synthesis compared with the control group (p <0.05, p <0.01, respectively), but not PC secretion. 75 microM H2O2 markedly decreased the synthesis and secretion of PC in AT II cells compared with the control group (p <0.01). 0.28 mM and 2.8 mM Iso aggravated the decrease of PC synthesis induced by H2O2 (p <0.05, p <0.01, respectively), but did not affect PC secretion. These findings suggest that Iso itself may inhibit the synthesis of PC of AT II cells in vitro and further damage the cells' function under peroxidation.

Anesthetics, Inhalation↗

Protective effect of alpha-keto acids on the oxidative hemolysis.

We studied antioxidative properties of various concentrations (0.3-2 mM) of biochemically important alpha-keto acids: pyruvate, alpha-ketoglutarate, oxaloacetate, glyoxylic acid as aldehyde acid and also 2-methyl-thiazolidyne-2,4-dicarboxylic acid and their effect on the oxidative hemolysis of human erythrocytes induced by hydrogen peroxide (H2O2). Normal erythrocytes proved to be very resistant to oxidative damages, so the high concentration of H2O2 (10 mM) as well as the presence of natrium azide, a catalase inhibitor, was necessary. The levels of malonyldialdehyde (MDA), reactive oxygen species (ROS) and hemoglobin (Hb) released were evaluated as the measure of red cell peroxidative hemolysis. Pyruvate, at the lowest used concentration (0.3 mM), caused the inhibition of lipid peroxidation (MDA) and a drop in the level of ROS, as well as a diminution of the degree of hemolysis and the effects were stronger than those of other alpha-keto acids. At the highest (2 mM) concentration, the protective effect against oxidative damage of all the investigated alpha-keto acids was similar and amounted to nearly 50% in relation to the control sample. On the contrary, in the case of aldehyde acid, e.g. glyoxylic acid, no protective effect in the same range of concentrations was found. This confirms the participation of non-enzymatic oxidative decarboxylation of alpha-keto acids in the hydrogen peroxide decomposition process.

Adult↗

Differential effects of reactive oxygen species on native synovial fluid and purified human umbilical cord hyaluronate.

The ability of reactive oxygen species produced by triggered neutrophilic leukocytes, hypoxanthine/xanthine oxidase (HX/XAO), hydrogen peroxide, and hypochlorous acid/myeloperoxidase (HOCl/MPO) systems to degrade hyaluronate (HA) in human synovial fluid (SF) and purified umbilical cord HA was compared by measuring the molecular weight distribution of HA using high-performance liquid chromatography with a size-exclusion column. The exposure of noninflammatory SF to phorbol myristic acetate (PMA)-activated neutrophils or to hydrogen peroxide (H2O2) caused depolymerization of SF HA to the degree corresponding to that found in rheumatoid SFs. When HX/XAO was used as radical generator, the molecular weight of SF HA decreased from 3.42 x 10(6) to 1.40 x 10(4) daltons with concomitant decrease of SF viscosity to 36% from the original value. The HOCl/MPO system caused no depolymerization of SF HA, even at very high unphysiological HOCl concentrations that induced the precipitation of SF HA together with SF proteins. This effect was found to be comparable to conventional mucin clot formation in SF. However, purified human umbilical cord HA was easily depolymerized with HOCl/MPO or with H2O2, but these effects were sensitive to the hydroxyl radical scavenger mannitol and iron chelator desferrioxamine, indicating that the formation of reactive hydroxyl radical (OH.) is likely to participate in these reactions. Thus we conclude that in inflammatory SF HA is mainly depolymerized by OH. produced by decomposition of H2O2 catalyzed by iron, free or locally bound to HA itself. In contrast to what has been reported earlier, HOCl/MPO only depolymerizes purified umbilical cord HA (in a hydroxyl radical-dependent manner) but does not depolymerize HA in SF. As a matter of fact, HOCl/MPO has a scavenging action on SF HA by consuming H2O2 and thus preventing the formation of reactive hydroxyl radicals.

Chemical Precipitation↗

Hydrogen peroxide reduces beta-adrenoceptor function in the rat small intestine.

Incubation of isolated rat intestinal segments with hydrogen peroxide (H2O2) led to a decreased beta-adrenoceptor response. The maximal relaxation induced by isoprenaline was lowered while the EC50 remained unaffected. The effect of H2O2 in the small intestine increased slightly from duodenum to ileum. In the ileum, 10(-4) M H2O2 led to a 10% decrease of the maximal relaxation due to isoprenaline and 1 mM decreased the maximal response to about 50%. We further investigated the level at which the isoprenaline response was impaired. The relaxation caused by the stable cAMP analog, dibutyryl-cAMP, or by the adenylate cyclase activator, forskolin, was not affected or affected less than by isoprenaline. When the response to isoprenaline was expressed relative to the maximal response to dibutyryl-cAMP or forskolin, pretreatment with H2O2 led to a decreased isoprenaline response relative to the response to dibutyryl-cAMP or forskolin. This might indicate that exposure to H2O2 leads to a disturbance in receptor-mediated cAMP production. The adenylate cyclase unit is probably not affected since the response to forskolin is relatively resistant to H2O2. Our conclusion is that pretreatment of isolated intestinal segments with H2O2 leads to disturbed beta-adrenoceptor coupling, probably due to altered membrane integrity.

Animals↗

Hydrogen peroxide preferentially enhances the tyrosine phosphorylation of epidermal growth factor receptor.

We found that hydrogen peroxide (H2O2) enhances EGF receptor tyrosine phosphorylation in intact cells as well as solubilized membrane of an EGF receptor hyperproducing cell line NA. An antioxidant MnCl2 effectively inhibited this enhancement. Interestingly, overall phosphorylation of the EGF receptor enhanced by H2O2 was half that of the EGF-enhanced phosphorylation when the receptor immunoprecipitated from [32P]orthophosphate-labeled cells was examined. Tryptic phospho-peptide mapping of these receptors revealed that EGF enhanced the phosphorylation on five specific residues including serine 671, 1,046 and 1,047, threonine 669 and tyrosine 1,173, whereas H2O2 enhanced the phosphorylation remarkably on tyrosine 1,173 and three other residues and only moderately on serine 1,046 and 1,047 and threonine 669. Thus, H2O2 preferentially enhances the tyrosine phosphorylation of EGF receptor through oxidant stress.

Amino Acid Sequence↗

Myocardial dysfunction and ultrastructural alterations mediated by oxygen metabolites.

The direct effect of oxygen metabolites was studied on isolated perfused rat hearts. Superoxide anion (O2-.) and hydrogen peroxide (H2O2) were generated by adding purine (2.3 mM) and purified xanthine oxidase (0.06 U/ml) to Krebs-Henseleit buffer (pH 7.4). Xanthine oxidase was added to the purine-containing perfusate either near the aorta (group A, which gave H2O2 less than 10 microM) or at a distant point from the aorta (group B, which gave 250 to 300 microM H2O2). The generation rate of O2-. was 31.7 +/- 1.0 nmol/ml/min in the experimental conditions. Contractile function, tissue adenosine triphosphate (ATP), and ultrastructure were not affected in group A. In contrast, hearts in group B showed marked decrease in contractility (+dP/dt) to 24.4 +/- 4.3% of control values. ATP levels were also markedly reduced from control values of 23.4 +/- 0.7 to 7.4 +/- 0.7 mumol/g dry tissue. Ultrastructure in group B hearts revealed "wavy" and disintegrated sarcolemma, depletion of glycogen deposits, and swelling and disruption of mitochondria. Release of the thiobarbituric acid reactive products including malondialdehyde was significant in the effluent (1.68 +/- 0.17 nmol/min/g wet tissue). These changes were almost completely prevented by catalase, but not by superoxide dismutase and deferoxamine. Moreover, exogenous H2O2 perfusion (300 microM) showed results similar to group B hearts. These observations suggest that H2O2 plays a major role in the injury. O2- does not appear to damage hearts directly, although it is important as a precursor of H2O2 and other radical species including hydroxyl radical.

Adenosine Triphosphate↗

Quantitative analysis of the hydrogen peroxide formed in aqueous cigarette tar extracts.

We have established, for the first time, a reliable method to quantitate hydrogen peroxide (H2O2) generated in aqueous extracts of cigarette smoke tar. The aqueous tar extract was passed through a short reverse-phase column and its H2O2 concentration determined by differential pulse polarography using an automatic reference subtraction system. The H2O2 concentration increased with aging, pH and temperature; the presence of superoxide dismutase lead to lower H2O2 concentrations. This method was applied to many kinds of research and commercial cigarettes. With a few exceptions, the amount of H2O2 formed after a fixed time from each cigarette smoke was proportional to its tar yield.

Hydrogen Peroxide↗

[Iatrogenic gas embolism following surgical lavage of a wound with hydrogen peroxide].

The use of hydrogen peroxide (H2O2) in surgery for its antiseptic properties has been associated with life-threatening complications. We report a case of severe oxygen embolism after wound irrigation with H2O2 in a 17-year-old boy undergoing surgical dressing of a large thigh trauma under general anaesthesia. During muscle lavage with 400 mL of H2O2 3%, severe shock suddenly occurred. On the basis of clinical presentation, the diagnosis of pulmonary gas embolism was strongly suspected. Symptomatic treatment initiated immediately, restaured a normal haemodynamic state within a few minutes and the patient recovered without sequelae. The degradation of H2O2 results in considerable amounts of gaseous oxygen. One mL of H2O2 can produce in the tissues 10 mL of oxygen. This gas can enter the circulation and determine severe embolism. The treatment should be initiated without delay. The administration of H2O2 under pressure is contraindicated during surgery.

Adolescent↗

Hydrogen peroxide production by monoamine oxidase during ischemia-reperfusion in the rat brain.

Monoamine oxidase (MAO) as a source of hydrogen peroxide (H2O2) was evaluated during ischemia-reperfusion in vivo in the rat brain. H2O2 production was assessed with and without inhibition of MAO during and after 15 min of ischemia. Metabolism of H2O2 by catalase during ischemia and reperfusion was measured in forebrain homogenates using aminotriazole (ATZ), an irreversible H2O2-dependent inhibitor of catalase. Catecholamine and glutathione concentrations in forebrain were measured with and without MAO inhibitors. During ischemia, forebrain blood flow was reduced to 8% of baseline and H2O2 production decreased as measured at the microperoxisome. During reperfusion, a rapid increase in H2O2 generation occurred within 5 min as measured by a threefold increase in oxidized glutathione (GSSG). The H2O2-dependent rates of ATZ inactivation of catalase between control and ischemia-reperfusion were similar, indicating that H2O2 was more available to glutathione peroxidase than to catalase in this model. MAO inhibitors eliminated the biochemical indications of increased H2O2 production and increased the catecholamine concentrations. Mortality was 67% at 48 h after ischemia-reperfusion, and there was no improvement in survival after inhibition of MAO. We conclude that MAO is an important source of H2O2 generation early in brain reperfusion, but inhibition of the enzyme does not improve survival in this model despite ablating H2O2 production.

Amitrole↗

Extracellular release of hydrogen peroxide by human alveolar macrophages: the relationship to cigarette smoking and lower respiratory tract infections.

It has been suggested that oxidants from pulmonary inflammatory cells may contribute to the development of emphysema by (i) direct tissue toxicity and (ii) inhibition of alpha 1-antitrypsin, thus diminishing protection of the lung from proteolytic damage. The extracellular release of hydrogen peroxide (H2O2) by human alveolar macrophages (AM) has been measured. AM were obtained by bronchoalveolar lavage and adherence from 24 smokers and 17 non-smokers. Smokers' AM released significantly more H2O2 (3.83 nmol h-1 micrograms-1 of DNA; SEM 0.44) than those of non-smokers' (2.33 nmol h-1 microgram-1 of DNA; SEM 0.40) (P less than 0.05). AM from donors with a recent lower respiratory tract infection released increased quantities of H2O2 (5.22 nmol h-1 microgram-1 of DNA; SEM 0.72; P less than 0.01) even when allowance was made for smoking habits. These findings are consistent with the hypothesis that H2O2 of AM origin contributes to the development of emphysema in smokers.

Adult↗

Effects of hydrogen peroxide on the transient outward current in rabbit atrial myocytes.

1. In the present study, we investigated the effects of hydrogen peroxide (H2O2) on the 4-aminopyridine-sensitive transient outward current (I(TO)) in rabbit atrial myocytes using the amphotericin B-perforated patch voltage-clamp method. 2. Superfusion of myocytes with H2O2 at 100 micromol/L gradually slowed the time-course of inactivation of I(TO) and increased the peak by 9% (n = 9). The H2O2-induced slowing of I(TO) inactivation was concentration dependent (over the concentration range 10 micromol/L to 1 mmol/L). These effects were hardly reversed by washout of H2O2, but were quickly abolished by dithiothreitol (2 mmol/L). 3. Bisindolylmaleimide (100 nmol/L), an inhibitor of protein kinase C, significantly attenuated the H2O2-induced effects on I(TO). 4. These results suggest that rabbit atrial I(TO) is susceptible to oxidation by H2O2 at concentrations relevant to those encountered during ischaemia/reperfusion and that protein kinase C modulates the effects of H2O2.

4-Aminopyridine↗

Comparison of the cytotoxicity of different hydroperoxides to V79 cells.

We compared the cytotoxicity of hydrogen peroxide (H2O2), tertiary butyl hydroperoxide (t-BHP) and methyl linoleate hydroperoxide (MLHP) to V79 cells, using a colony formation assay. In all cases L-buthionine-(S,R)-sulphoximine enhanced the cytotoxicity, and Quin 2 inhibited it. Nordihydroguaiaretic acid (NDGA) and o-phenanthroline suppressed the cytotoxicity of H2O2 and t-BHP, but they had no effect on the cytotoxicity of MLHP. These results suggest that the biological effects of t-BHP are similar to those of H2O2 and not to those of lipid hydroperoxides. In the course of the experiments, we found that NDGA, an antioxidant and food additive, was a potent inhibitor of cytotoxicity of H2O2.

Aminoquinolines↗

Production of hydroxyl-free radical by reaction of hydrogen peroxide with N-methyl-N'-nitro-N-nitrosoguanidine.

Production of a hydroxyl free radical (.OH) by reaction of hydrogen peroxide (H2O2) with N-methyl-N'-nitro-N-nitrosoguanidine (MNNG) was examined by electron spin resonance using the X OH spin trapping agent 5,5-dimethyl-1-pyrroline-1-oxide (DMPO). The electron spin resonance spectra of the H2O2-MNNG-DMPO system after exposure to light at an intensity of 0.03 mW/cm2 for 5 min, and the DMPO- (.OH) spin adduct (2-hydroxy-5,5-dimethyl-1-pyrroline-1-oxide) generated by use of Fenton's reagent showed the same hyperfine structure and g-value. The signal of the DMPO adduct obtained in the H2O2-MNNG-DMPO system disappeared on addition of the .OH scavenger sodium benzoate. The addition of another .OH scavenger, ethanol, resulted in the appearance of a new signal due to trapping of the alpha-hydroxyethyl radical. These results show that .OH was formed in the H2O2-MNNG-DMPO system. The typical signal of the DMPO-(.OH) spin adduct was not observed in the system in the absence of light. The amount of DMPO-(.OH) spin adduct increased with increase in the concentration of H2O2 when the MNNG level was kept constant, and it changed with the concentration of MNNG at a constant H2O2 level, indicating that .OH was produced by the interaction of MNNG with H2O2. In the absence of H2O2, complicated trapped signals appeared in the spectrum of the MNNG-DMPO system in the light, but these signals were not observed when the system was kept in the dark. In the absence of MNNG, the H2O2-DMPO system did not show any signal, even in the light. These results indicate that interaction of free radicals derived from MNNG with H2O2 on exposure to light resulted in .OH production.

Chemical Phenomena↗

Liposome-mediated augmentation of catalase in alveolar type II cells protects against H2O2 injury.

Oxidant injury to the alveolar epithelium can be mediated by exposure to oxidant gases such as O2 at high concentrations and O3, inflammatory cell-derived reactive O2 species, and the intracellular metabolism of xenobiotics such as paraquat. An in vitro model of alveolar epithelial oxidant injury was developed based on exposure of cultured rat type II pneumocytes to superoxide and hydrogen peroxide (H2O2) enzymatically generated in the culture medium. Cytotoxicity was assessed by the release of lactate dehydrogenase (LDH) into the culture medium, which was a more reliable indicator of damage than release of 51Cr by prelabeled cells. Incubation of cells for 6-8 h with xanthine plus xanthine oxidase and glucose plus glucose oxidase induced the release of greater than 50% of total intracellular LDH. Oxidant exposure also resulted in significant detachment of cells from culture dishes. Modulation of oxidant damage was accomplished using liposomes as vectors for the delivery of catalase. Treatment of cells with catalase liposomes for 2 h resulted in augmentation of cellular catalase specific activities up to 631% of controls. Catalase was partitioned into intracellular and surface-associated compartments in catalase liposome-treated cells. Partial and complete protection against oxidant injury, induced by xanthine plus xanthine oxidase and glucose plus glucose oxidase, respectively, was achieved by pretreatment of cells with catalase liposomes. LDH release during oxidant exposure was inversely related to augmentation of cellular catalase activities. Catalase liposome-treated cells also exhibited an enhanced ability to scavenge enzymatically generated H2O2 from the culture medium. These observations suggest a useful approach to modulation of alveolar injury induced by reactive O2 species.

Animals↗

Dimethylthiourea consumption reflects H2O2 concentrations and severity of acute lung injury.

Even though dimethylthiourea (DMTU) effectively scavenges O2 metabolites in vitro, it is often unclear if scavenging of O2 metabolites is the mechanism by which DMTU decreases tissue injury in biological models. Since DMTU not only scavenges O2 metabolites but is also consumed in a dose-response manner following reaction with hydrogen peroxide (H2O2) in vitro, we wondered whether DMTU would also be consumed by O2 metabolites in biological systems and if DMTU consumption would then reflect O2 metabolite concentrations and O2 metabolite-mediated injury. Our results supported this possibility. We found that selected nonprotecting concentrations of DMTU were consumed in isolated rat lungs perfused with H2O2 and that the amounts of DMTU consumed reflected both the added amounts of H2O2 and the corresponding degrees of H2O2-induced acute edematous injury. DMTU consumption was relatively specific for reaction with H2O2 occurring in isolated lungs that were injured by H2O2 but not lungs injured by elastase, oleic acid, histamine, or a venous pressure challenge. Our results suggest that measurement of DMTU consumption may be useful for assessing the presence and toxicity of O2 metabolites and the specificity of the protective effects of DMTU in biological systems.

Animals↗

Reactive oxygen metabolites promote cholesterol crystal formation in model bile: role of lipid peroxidation.

In animal models of gallstone disease inflammatory alterations of the gallbladder mucosa are regularly found before the first appearance of cholesterol monohydrate crystals in bile. At sites of inflammation granulocytes generate reactive oxygen metabolites (ROM). The aim of our study was to investigate whether ROM may influence the cholesterol monohydrate crystal formation in supersaturated model bile. Superoxide anions (O2-), hydrogen peroxide (H2O2), and hydroxyl radicals (.OH) were generated by the interaction of Fe(3+)-EDTA with ascorbic acid (Asc). The influence of ROM on cholesterol crystal formation was studied by measurement of the nucleation time. To check whether lipid peroxidation was induced by the ROM generation, production of malondialdehyde equivalents was measured in bile with the thiobarbituric assay. Furthermore, the lipid pattern of bile after ROM exposure was analyzed by thin layer chromatography. Addition of Fe(3+)-EDTA/Asc to model bile markedly decreased the cholesterol nucleation time (NT) (p < 0.01), caused a significant increase in malonidialdehyde equivalents (p < 0.001) and induced the generation of 4-hydroxy-2,3-trans-nonenal (4-HNE). In an attempt to identify a specific oxygen metabolite responsible for the alterations in bile, the effects of various oxygen radical scavengers were tested. Desferal, which prevents -OH generation by chelation of ferrous iron, completely protected bile against Fe(3+)-EDTA/Asc-induced decrease in NT (p < 0.001), increase in lipid peroxidation (p < 0.001) and generation of 4-HNE. Our results indicate that formation of cholesterol crystals in model bile is enhanced by ROM. Hydroxyl radical induced lipid peroxidation appears to be the mechanism responsible for the crystallisation promoting activity of ROM.

Ascorbic Acid↗

Oxidant-antioxidant imbalance in the experimental interstitial lung disease induced in sheep by visna-maedi virus.

Infection of sheep by visna-maedi virus causes an interstitial pneumonitis similar to that associated with human immunodeficiency virus type-1 (HIV-1). Visna-maedi virus infection of alveolar macrophages leads to their activation. In this study we determined whether an imbalance in oxidant-antioxidant activity may be involved in the pathogenesis of the disease. We investigated the spontaneous and phorbol myristate acetate (PMA)-induced release of hydrogen peroxide (H2O2), and the activities of superoxide dismutase and glutathione peroxidase in alveolar macrophages from lambs experimentally-infected with visna-maedi virus, and in ovine alveolar macrophages infected in vitro. Alveolar macrophages from lambs experimentally-infected in vivo exhibited normal spontaneous H2O2 release and had superoxide dismutase and glutathione peroxidase activities similar to those from control animals. In contrast, after in vitro stimulation with PMA the H2O2 production by macrophages from experimentally-infected lambs was significantly increased. Similarly, spontaneous and PMA-induced H2O2 production by in vitro infected macrophages was significantly increased as compared to controls. In conclusion, the increased capacity of alveolar macrophages infected with the human immunodeficiency virus type-1-related visna-maedi virus to release hydrogen peroxide on stimulation suggests an oxidant-antioxidant imbalance, which may contribute to the pathogenesis of the observed chronic interstitial pneumonitis.

Animals↗

Elevation of intracellular calcium ions is essential for the H2O2-induced activation of SAPK/JNK but not for that of p38 and ERK in Chinese hamster V79 cells.

The mitogen-activated protein kinases (MAPK), including stress-activated protein kinase/c-Jun N-terminal kinase (SAPK/JNK), p38, and extracellular signal-related kinase (ERK), are believed to be important biomolecules in cell proliferation, survival, and apoptosis induced by extracellular stimuli. In Chinese hamster V79 cells exposed to hydrogen peroxide (H2O2), we recently demonstrated that SAPK/JNK was activated by tyrosine kinase and intracellular Ca2+ ([Ca2+]i). In this study, we report that [Ca2+]i release from intracellular stores is important in the activation of SAPK/JNK but not p38 and ERK. H2O2-induced elevation of [Ca2+]i was observed in Ca2+-free medium. Pretreatment with thapsigargin, a Ca2+-ATPase inhibition of endoplasmic reticulum (ER), did not influence H2O2-induced elevation of [Ca2+]i in the absence of external Ca2+. An intracellular Ca2+ chelator (BAPTA-AM) inhibited H2O2-induced phosphorylation of SAPK/JNK, but an extracellular Ca2+ chelator (EDTA) or a Ca2+ entry blocker (NiCl2) did not. Activation of p38 and ERK in V79 cells exposed to H2O2 was observed in the presence of these inhibitors. These results suggest that [Ca2+]i release from intracellular stores such as mitochondria or nuclei but not ER, occurred after H2O2 treatment and Ca2+-dependent tyrosine kinase-induced activation of SAPK/JNK, although [Ca2+]i was unnecessary for the H2O2-induced activation of p38 and ERK.

Animals↗