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Effects of vitamin E on the platelet aggregation induced by combined adenosine diphosphate and hydrogen peroxide.

Hydrogen peroxide can either induce or inhibit or enhance the platelet aggregation in vitro depending upon the experimental conditions. Vitamin E and vitamin E-nicotinate are found to be effective to inhibit, to some extent, the platelet aggregation induced by combined adenosine diphosphate (ADP) and hydrogen peroxide (H2O2), added simultaneously, to the platelet rich plasma (PRP). Vitamin E and vitamin E-nicotinate seemed, however, to be unable to prevent the reduction of platelet response to ADP, which was brought about by the pretreatment of PRP with H2O2 of a lower concentration.

Adenosine Diphosphate

[Mechanism of oxidation reaction of NADH models and phynylglyoxal with hydrogen peroxide. Hypothesis on separate transport of hydrogen and electron atom in certain enzymatic reactions with the participation of NADH and NADPH].

Kinetics of co-oxidation of 1-benzen-3-carbamido-1,4-dihydropyridine (BDN) and phenylglyoxal (PG) with hydrogen peroxide is studied. Dimeric product (di-e11-benzen-5-carbamido-1,2-dihydropyridyl-2]) is found to be formed at pH 9, and quaternal pyridinium salt (BNA)--at pH 7. Molecular oxigen is determined to participate in the reaction at pH 7. Copper (II) ions catalyze this process. Significant catalytic effect of p-dinitrobenzen (p-DNB) is found. The reaction mechanism is postulated to form hydroperoxide from PG and hydrogen peroxide which are capable to split the hydrogen attom from dihydropyridine, molecular oxigen or p-DNB being an acceptor of the electrone. Hypothesis on separate transfer of hydrogen atom and electrone in biological systems are proposed.

Aldehydes

The effect of hydrogen peroxide on spores of Clostridium bifermentans.

The effect of hydrogen peroxide on the germination, colony formation and structure of spores of Clostridium bifermentans was examined. Treatment with 0.35 M-hydrogen peroxide increased the germination rate at 25 degrees C but increasing the temperature or concentration of hydrogen peroxide decreased both the germination rate and colony formation. The presence of Cu2+ increased the lethal effect of hydrogen peroxide on colony formation as much as 3000-fold. Pre-incubation of spores with Cu2+ before treatment with hydrogen peroxide produced a similar increase, but this could be eliminated by washing the spores with dilute spores--apparently from the coat--and treatment with dithiothreitol, which also removes spore-coat protein, increased the lethal effect of hydrogen peroxide 500-fold, suggesting that spore-coat protein has a protective effect against hydrogen peroxide.

Clostridium

The formation of hydrogen peroxide during the oxidation of reduced nicotinamide adenine dinucleotide by cytochrome o from Vitreoscilla.

The formation of hydrogen peroxide during the oxidation of NADH by purified preparations of cytochrome o has been demonstrated by employing three independent methods: polarographic, colorimetric, and fluorometric. The first two methods were used to assay for the accumulation of hydrogen peroxide and showed that hydrogen peroxide did accumulate as a product, but only about 30% of the oxygen consumed or 15 to 20% of the NADH oxidized was recoverable as hydrogen peroxide. This lack of 1:1 stoichiometry was not due to residual catalase activity in these preparations which could be eliminated by freeze-thawing. Thus, hydrogen peroxide may not be the sole or primary product of the NADH-cytochrome o oxidase reaction. The fluorometric assay could be coupled directly to the NADH-cytochrome o oxidase reaction in one medium, and this method showed that hydrogen peroxide was generated continuously from the beginning of the reaction in a 1:1 stoichiometry, hydrogen peroxide generated to NADH oxidized. This result suggests that hydrogen peroxide is an intermediate that can be trapped efficiently under the conditions of the fluorometric assay, whereas under the conditions of the first two assays most of the hydrogen peroxide generated undergoes further reaction. Exogenously added FAD or FMN increased the percentage of hydrogen peroxide that accumulated in the NADHcytochrome o oxidase reaction. Flavin is believed to act on the reductase side of cytochrome o so the increased percentage of hydrogen peroxide is not likely to result from the direct reaction of reduced flavin with oxygen.

Bacteria

Hydrogen peroxide release by rat alveolar macrophages: comparison with blood neutrophils.

Hydrogen peroxide release was examined using biochemical and cytochemical techniques in rat alveolar macrophages, at rest and during phagocytosis, and compared with rat blood neutrophils. Using biochemical techniques, alveolar macrophages released small amounts of hydrogen peroxide at rest, and no increase was observed after challenge with opsonized and nonopsonized zymosan particles at several particle-cell ratios (1:1 to 1:1,000). Neutrophils released similar quantities of hydrogen peroxide at rest but showed a 12-fold increase in hydrogen peroxide release following exposure to opsonized zymosan particles. Using cytochemical techniques to localize sites of hydrogen peroxide release, resting neutrophils showed little deposition of reaction product at the cell surface and occasional deposits in endocytotic vesicles. After exposure to latex particles, a dense reaction product was observed between the particle and the cell membrane, indicating significant increases in hydrogen peroxide release at the sites of particle contact with the neutrophil. The resting macrophage displayed a light, uniform precipitation of cerium over the cell surface and lining intracellular channels and endocytotic vesicles and vacuoles. Following particle exposure, there was no significant difference in the density or distribution of reaction product. These findings, together with previous studies of oxidative metabolism, suggest that alveolar macrophages do not release increased quantities of hydrogen peroxide during phagocytosis. In contrast to neutrophils, oxidative-dependent metabolic pathways may not be of primary importance for microbial killing by alveolar macrophages.

Animals

Role of hydrogen peroxide and peroxidase in the cytotoxicity of Trypanosoma dionisii by human granulocytes.

The mechanism of the cytotoxic reaction of leukocytes to Trypanosoma dionisii was investigated. Cytotoxicity was measured by release of [99mTc]pertechnetate from labeled protozoa. Both granulocytes and lymphocytes were found to be cytotoxic to antibody-coated T. dionisii. The reaction was inhibited by diethyldithiocarbamate and by potassium cyanide, both of which inhibit myeloperoxidase. Myeloperoxidase from azurophil granules was toxic to T. dionisii, provided that hydrogen peroxide was also present. Hydrogen peroxide formation was induced in granulocytes and, to a lesser extent, in lymphocytes by antibody-coated T. dionisii. Inhibition of this hydrogen peroxide formation by treatment of the effector cell surface with p-diazobenzenesulfonic acid inhibited cytotoxicity. It is therefore concluded that granulocytes, and probably also lymphocytes, kill T. dionisii with hydrogen peroxide by a peroxidase-mediated reaction. Although hydrogen peroxide and myeloperoxidase alone were also cytotoxic to the lymphoblastoid cell line CLA4, it seems unlikely that this is the cytotoxic mechanism for this process because these cells were unable to induce hydrogen peroxide formation.

Animals

Studies on the factors influencing the hydrogen peroxide hemolysis test.

There seems to be a greater variation between laboratories in hydrogen peroxide hemolysis techniques than in other clinical laboratory procedures. In this report, factors influencing hemolytic values were examined and the effect of the combination of these factors on the results was analysed statistically by using the orthogonal array. Factors influencing hemolysis induced by hydrogen peroxide were as follows; the concentration of hydrogen peroxide, temperature in the peroxide reagent when added to the red cell suspension, the red cell concentration in the cell suspension and the addition of charcoal to the reaction mixture. However, addition of charcoal may not be essential to stabilize the hemolytic values and other factors such as keeping blood for 4 hours at room temperature before testing, the difference between investigators, a reaction time 2 or 3 hours and the technique of adding peroxide reagent to the cell suspension, had little effect on hemolysis. The most important factor was the temperature in hydrogen peroxide solution. The estimated hemolytic values by the orthogonal array linearly correlated with the plasma tocopherol levels.

Hemoglobins

[Effect of hydrogen peroxide and hydrated ferric oxides on the metabolism of soil microflora].

The effect of hydrogen peroxide and the mineral limonite on the rate of microbial processes was studied in poor and rich soils. The dynamics of CO2 evolution can be registered upon addition of hydrogen peroxide to chernozem samples, which confirms the existence of metabolism of soil microorganisms. In experiments with desert soil, the evolution of O2 increases rather than that of CO2, which is probably due to an increase in the number of microorganisms producing catalase. Limonite stimulates the metabolic activity of microrganisms. The cultural and morphological properties of microflora are described, which are typical of soils incubated in the presence of limonite and hydrogen peroxide. This work supports the conclusion that, theoretically, the ground of Mars may contain microorganisms which have adapted, in the course of evolution, to high concentrations of hydrogen peroxide and hydrated iron oxides (of the limonite type) in the surrounding medium.

Bacteria

The failure of hydrogen peroxide to improve function in ischemically depressed myocardium.

The hypothesis that hydrogen peroxide might lend inotropic support to ischemically depressed myocardium was critically tested in a canine model. A coronary branch was perfused at reduced flow to depress mechanical function. Since hydrogen peroxide infusion into the perfusate failed to alter the segment's contractile force, it was concluded that the previously described beneficial effects of hydrogen peroxide infusions are probably not related to a restoration of contractility in ischemic myocardium.

Animals

Competitive oxidation of 6-hydroxydopamine by oxygen and hydrogen peroxide.

Simultaneous oxygen electrode and conventional polarographic measurements show the net concentration of hydrogen peroxide produced by air oxidation of 6-hydroxydopamine is considerably less than that predicted from the known stoichiometry of the reaction. This is due to competitive oxidation of 6-hydroxydopamine by the generated hydrogen peroxide. The presence of ascorbic acid in this reaction also results in significant decreases of hydrogen peroxide under most conditions. The implications of these results to the molecular mechanism of 6-hydroxydopamine neurotoxicity are discussed.

Ascorbic Acid

Studies on vitamin E and selenium deficiency in young pigs. II. The hydrogen peroxide hemolysis test and the measure of red cell lipid peroxides as indices of vitamin E and selenium status.

The usefulness of the hydrogen peroxide hemolysis test and the measure of red cell lipid peroxides as indices of vitamin E and selenium deficiency in swine has been evaluated. Results indicated that although the hydrogen peroxide hemolysis test may be of some indication of the vitamin E status, it is not a reliable index of vitamin E deficiency in swine, at least on an individual basis. In contrast, the measure of red cell lipid peroxides can be considered a reliable test for vitamin E deficiency in swine. The hydrogen peroxide hemolysis test and the red cell lipid peroxides were not significantly affected by selenium deficiency.

Animals

Transformation of 2,2'-anhydro-1-beta-D-arabinofuranosylcytosine induced by hydrogen peroxide.

2,2'-Anhydro-1-beta-D-arabinofuranosylcytosine (I) is a more potent and less toxic antineoplastic agent than is cytarabine (1-beta-D-arabinofuranosylcytosine) (II). The anhydronucleoside (I) was found to be readily transformed by hydrogen peroxide into 2,2'-anhydro-5-hydroxy-1-beta-D-arabinofuranosylcytosine (III) by treatment with 0.025 M hydrogen peroxide at a neutral and slightly basic pH range (pH 6-9) and at room temperature. It was converted into non-UV-absorbing substance(s) by hydrogen peroxide at an alkaline pH (pH 11). Since hydrogen peroxide is produced by redox reactions in all living cells, it may be responsible for the alteration of I. Such transformations by hydrogen peroxide were not observed with cytarabine.

Buffers

Oxycytochrome P-450: its breakdown to superoxide for the formation of hydrogen peroxide.

Four different experimental studies are described which were designed to evaluate the role of oxycytochrome P-450 in the formation of superoxide anions and hydrogen peroxide. The use of lipophilic copper chelates with superoxide dismutase like activity revealed that the primary site of interaction of these agents is related to the inhibition of the flavoprotein. NADPH-cytochrome P-450 reductase. Measurements of the proton assisted nucleophilic displacement of superoxide from oxycytochrome P-450 by high concentrations of sodium azide indicated an increase in the rate of hydrogen peroxide formation concomitant with the inhibition of the N-demethylation of ethylmorphine. Studies on the effect of NADH on the rate of hydrogen peroxide formation during NADPH oxidation by liver microsomes failed to reveal a stimulatory or synergistic effect in a manner analogous to results obtained during the cytochrome P-450 dependent oxidation of substrates such as ethylmorphine. These results suggest that hydrogen peroxide formation may not require the reduction of oxycytochrome P-450 to peroxycytochrome P-450. Measurements of the reduction of succinylated cytochrome c using purified cytochrome P-450 and the flavoprotein, NADPH-cytochrome P-450 reductase, directly demonstrate the formation of superoxide anions. It is concluded that oxycytochrome P-450 may decompose to generate hydrogen peroxide.

Animals

Mechanism of cytochrome c peroxidase. O-benzoylhydroxylamine as an analog of hydrogen peroxide.

A number of reagents, some of which are electronic analogs of hydrogen peroxide, will replace it in the reactions of cytochrome c peroxidase. These compounds include N-bromosuccinimide, sodium hypochlorite, and the novel oxidizing agent O-benzoylhydroxylamine. If fragments of the oxidant played a functional role in the structure of the oxidized form of the enzyme, it would be expected that the product formed from O-benzoylhydroxylamine would differ from that formed from hydrogen peroxide. The products formed on reaction of the two oxidizing agents with cytochrome c peroxidase are indistinguishable. This results carries implications for the structure of the so-called ES compound. The extension in the range of specific substrates for cytochrome c peroxidase allows identification of the structure which compounds must possess to be oxidizing substrates for the enzyme. A mechanism for the first step of the reaction is suggested. O-Benzoylhydroxylamine is also a reducing agent, and its reaction with the enzyme is analogous to that of hydrogen peroxide with catalase. The final product of the reaction is the inert nitric oxide complex of ferrous cytochrome c peroxidase.

Benzoates

The reaction of ferrous leghemoglobin with hydrogen peroxide to form leghemoglobin(IV).

Ferrous leghemoglobin reacts with hydrogen peroxide to form the stable product, leghemoglobin(IV). The reaction follows second order kinetics (k = 2.24 X 10(4) M-1 S-1 at 20 degrees C) and may be regarded as a single-step, two-electron oxidation. Ferric leghemoglobin is not an intermediate. The oxidation state of leghemoglobin(IV) is established by reductive titration with dithionite; 2 eq of dithionite are required to convert 1 mol of leghemoglobin(IV) to ferrous leghemoglobin. An outstanding property of leghemoglobin(IV) is its stability, little change is noted after 12 h at 25 degrees C. Leghemoglobin(IV) differs from the higher oxidation states of other hemoglobins and myoglobins in that it does not react with hydrogen peroxide to form the oxygenated protein.

Dithionite

Hydrogen peroxide and superoxide radical formation in anaerobic broth media exposed to atmospheric oxygen.

Fourteen different broth media were autoclaved under anaerobic conditions and then exposed to atmospheric oxygen. The hydrogen peroxide and superoxide radical formation as well as the bactericidal effect of the media were studied. The rate of killing of Peptostreptococcus anaerobius VPI 4330-1 was high in media that rapidly autoxidized and accumulated hydrogen peroxide. In actinomyces broth (BBL), 50% of the cells were killed within 2 min, and in Brewer thioglycolate medium (Difco), 50% were killed within 11 min, whereas more than 50% of the cells survived for more than 2 h in Clausen medium (Oxoid), fluid thioglycolate medium (BBL), and thioglycolate medium without dextrose or indicator (Difco). Only media that contained phosphate and glucose had a tendency to accumulate hydrogen peroxide. A solution of phosphate and glucose autoxidized when it had been heated to 120 degrees C for at least 5 min and when the pH of the solution was higher than 6.5. Transitional metal ions catalyzed the autoxidation, but they were not necessary for the reaction to occur. Of the other substances heated in phosphate buffer, only alpha-hydroxycarbonyl compounds autoxidized with accumulation of hydrogen peroxide. Superoxide dismutase decreased the autoxidation rate of most of the broth media. This indicated that superoxide radicals were generated in these media.

Anaerobiosis