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Kinetics and mechanism of the iron phthalocyanine catalyzed reduction of nitrite by dithionite and sulfoxylate in aqueous solution.

The reactions of sodium nitrite with sodium dithionite and sulfoxylate ion were studied in the presence of iron(III) tetrasulfophthalocyanine, Fe(III)(TSPc)3-, in aqueous alkaline solution. Kinetic parameters for the different reaction steps in the catalytic reduction by dithionite were determined. The final product of the reaction was found to be nitrous oxide. Contrary to this, the product of the catalytic reduction of nitrite by sulfoxylate was found to be ammonia. The striking difference in the reaction products is accounted for in terms of different structures of the intermediate complexes formed during the reduction by dithionite and sulfoxylate, in which nitrite is suggested to coordinate to the iron complex via nitrogen and oxygen, respectively. Sulfoxylate is shown to be a convenient reductant for the synthesis of the highly reduced iron phthalocyanine species Fe(I)(TSPc*)6- in aqueous solution. The kinetics of the reduction of Fe(I)(TSPc)5- to Fe(I)(TSPc*)6-, as well as the oxidation of the latter species by nitrite, was studied in detail.

Journal Article↗

Drug residue formation from ronidazole, a 5-nitroimidazole. V. Cysteine adducts formed upon reduction of ronidazole by dithionite or rat liver enzymes in the presence of cysteine.

When ronidazole (1-methyl-5-nitroimidazole-2-methanol carbamate) is reduced by either dithionite or rat liver microsomal enzymes in the presence of cysteine, ronidazole-cysteine adducts can be isolated. Upon reduction with dithionite ronidazole can react with either one or two molecules of cysteine to yield either a monosubstituted ronidazole-cysteine adduct substituted at the 4-position or a disubstituted ronidazole-cysteine adduct substituted at both the 4-position and the 2-methylene position. In both products the carbamoyl group of ronidazole has been lost. The use of rat liver microsomes to reduce ronidazole led to the formation of the disubstituted ronidazole-cysteine adduct. These data indicate that upon the reduction of ronidazole one or more reactive species can be formed which can bind covalently to cysteine. The proposed reactive intermediates formed under these conditions may account for the observed binding of ronidazole to microsomal protein and the presence of intractable drug residues in the tissues of animals treated with this compound. They may also account for the mutagenicity of this compound in bacteria.

Animals↗

Dithionite penetration through phospholipid bilayers as a measure of defects in lipid molecular packing.

The permeability of dithionite through bilayers was utilized to probe the structural defects in the bilayers of these lipids through their respective gel-fluid and bilayer-hexagonal phase transitions. The water soluble dithionite ion penetrates intact bilayers very slowly. The rate of irreversible quenching of the fluorescence of NBD-PE labelled liposomes may thus be used as an indicator of the permeability of this ion through bilayers. The quenching rate has a fast and a slow component, the fast one corresponds to the quenching of fluorophores immediately accessible to the quencher, i.e. those on the outer surface of liposomes. The slower component represents the average rate of penetration of the quencher through the bilayer, to quench those fluorophores at the inner shells of the multilamellar vesicles. Both rates may be approximated by a single exponential function. The slow exponent is simply related to the permeability. The permeability of DMPC as a function of temperature shows a peak at the gel-fluid phase transition at 24 degrees C, but returns to about the pre-transition value at temperatures above the phase transition. The permeability of egg PE shows a hump at 45 degrees C before the hexagonal phase transition at 65 degrees C is reached and becomes infinite at the hexagonal phase transition as all fluorophores are immediately accessible to the quencher. We believe that the permeability measured by this method relates more to the molecular packing defects which maximizes at the gel-fluid phase transition temperatures just below the bilayer-hexagonal phase transition, rather than the general packing order which simply changes with structural phases.

Cell Membrane Permeability↗

Kinetics of dithionite-dependent reduction of cytochrome P450 3A4: heterogeneity of the enzyme caused by its oligomerization.

To explore the basis of apparent conformational heterogeneity of cytochrome P450 3A4 (CYP3A4), the kinetics of dithionite-dependent reduction was studied in solution, in proteoliposomes, and in Nanodiscs. In CYP3A4 oligomers in solution the kinetics obeys a three-exponential equation with similar amplitudes of each of the phases. Addition of substrate (bromocriptine) displaces the phase distribution toward the slow phase at the expense of the fast one, while the middle phase remains unaffected. The fraction reduced in the fast phase, either with or without substrate, is represented by the low-spin heme protein only, while the slow-reducible fraction is enriched in the high-spin CYP3A4. Upon monomerization by 0.15% Emulgen-913, or by incorporation into Nanodiscs or into large proteoliposomes with a high lipid-to-protein (L/P) ratio (726:1 mol/mol), the kinetics observed in the absence of substrate becomes very rapid and virtually monoexponential. In Nanodiscs and in lipid-rich liposomes bromocriptine decreases the rate of reduction via appearance of the second (slow) phase, the amplitude of which reaches 100% at saturating bromocriptine. In contrast, in P450-rich liposomes (L/P = 112 mol/mol), where the surface molar density of the enzyme is comparable to that observed in liver microsomes, CYP3A4 behaves similarly to that observed in solution. These results suggest that in CYP3A4 oligomers in solution and in the membrane the enzyme is distributed between two persistent conformers with different accessibility of the heme for the reductant (SO*-(2) anion monomer). One of the apparent conformers exists in a substrate-dependent equilibrium between two states with different rate constants of reduction by dithionite, while the second conformer shows no response to substrate binding.

Biopolymers↗

The reactivity of alpha-hydroxyhaem and verdohaem bound to haem oxygenase-1 to dioxygen and sodium dithionite.

Recently we have shown that ferric alpha-hydroxyhaem bound to haem oxygenase-1 can be converted to ferrous verdohaem by approximately an equimolar amount of O2 in the absence of exogenous electrons [Sakamoto, H., Omata, Y., Palmer, G., and Noguchi, M. (1999) J. Biol. Chem.274, 18196-18200]. Contrary to those results, other studies have claimed that the conversion requires both O2 and an electron. More recently, Migita et al. have reported that the major reaction product of ferric alpha-hydroxyhaem with O2 is a ferric porphyrin cation radical that can be converted to ferrous alpha-hydroxyhaem with sodium dithionite [Migita, C. T., Fujii, H., Matera, K. M., Takahashi, S., Zhou, H., and Yoshida, T. (1999) Biochim. Biophys. Acta1432, 203-213]. To clarify the reason(s) for the discrepancy, we compared the reactions; i.e. alpha-hydroxyhaem to verdohaem and verdohaem to biliverdin, under various conditions as well as according to the procedures of Migita. We find that complex formation of alpha-hydroxyhaem with haem oxygenase may be small and a substantial amount of free alpha-hydroxyhaem may remain, depending on the reconstitution conditions; this could lead to a misinterpretation of the experimental results. We also find that ferrous verdohaem appears to be air-sensitive and is therefore easily converted to a further oxidized species with excess O2. Finally, we find that dithionite seems to be inappropriate for investigating the haem oxygenase reaction, because it reduces ferrous verdohaem to a further reduced species that has not been seen in the haem degradation system driven by NADPH-cytochrome P450 reductase.

Carbon Monoxide↗

The reduction by dithionite of Fe(III) myoglobin derivatives with different ligands attached to the iron atom. A study by rapid-wavelength-scanning stopped-flow spectrophotometry.

1. The reductions of a number of sperm whale Fe(III) myoglobin-ligand complexes by sodium dithionite in a phosphate buffer pH 6.4, were investigated by using rapid-wavelength-scanning stopped-flow spectrophotometry. The ligands were azide, cyanide, fluoride, imidazole, thiocyanate and water. 2. The reduction of Fe(III) myoglobin cyanide led to the transient formation of Fe(II) myoglobin cyanide but no intermediate species were observable during the reductions of the other derivatives. The final product of the reaction in all cases was unliganded Fe(II)myoglobin. 3. Invesigation of the effect of dithionite concentration on the rate of reduction indicated that the SO2- radical ion was the active species in reducing the azide, cyanide, fluoride and thiocyanate derivatives. 4. Comparison of the observed rates of reduction at different ligand concentrations with those predicted for a pathway of reduction involving prior dissociation of the ligand, allowed us to estimate the rate of reduction with the ligand in position (outer-sphere reduction). There was a large variation in the relative rates of outer-sphere reduction in the order imidazole greater than CN- greater than SCN- greater than N3- greater than F-. The fluoride derivative was so resistant to outer-sphere reduction that the reaction with SO2- proceeded only by a pathway involving dissociation of F- before reduction. It was calculated that any direct reduction of this complex was at least 100 times slower than that of the azide derivative. 5. The results are discussed in terms of the possible rôle of the axial ligands in haem proteins and it is suggested that the pathway of the electron to the Fe(III) centre may be via the ppi orbitals of these ligands.

Animals↗

Kinetics of reduction by substrate or dithionite and heme-heme electron transfer in the multiheme hydroxylamine oxidoreductase.

Hydroxylamine oxidoreductase of Nitrosomonas catalyzes the dehydrogenation of NH2OH. It contains hemes c553, c559 and P460 in the ratio 5:2:1. At equilibrium four or five c hemes are reduced by NH2OH or NH2NH2, respectively. Heme P460 is the site of electron entry into the enzyme; electrons exit via P460 to O2 or H2O2 with rate constants of 30s-1. We report that hydroxylamine oxidoreductase has two categories of electron-accepting sites: (a) heme P460, an H2O2-sensitive site, which is reactive with NH2OH (2.2 hemes c557 and 2 hemes c559 are reduced) or NH2NH2 (3.3 heme c 553 and 2 heme c559 are reduced) and (b) an H2O2-insensitive site(s) which is reactive with H2O2 (approximately 0.15 heme c553 is reduced); hydroquinone, pyrogallol, N-methyl hydroxylamine, pyocyanine, and ascorbate (approximately 0.8 heme c553 is reduced); or Na2S2O4 or EDTA-photoreduction with proflavin, deazalumiflavin or acridine orange and methylviologen (all hemes are reduced). The rate constants at 19 degrees C for reduction by dithionite were: 0.7 heme c553 (7s-1), 4.3 hemes c553 (0.07 s-1), 0.7 heme c559 (0.8s-1), 1.3 hemes c559 (0.1s-1), P460 (0.013s-1). At 2 degrees C the rate constant for 0.8 heme c559 was 1.7s-1. The data indicate that one heme c552 is reduced by dithionite at the same rate as mammalian cytochrome c; other hemes are reduced much more slowly and are possibly inaccessible to the solvent. The rate constants at 2 degrees C for reduction by NH2OH were: 1.8 hemes c553 (30s-1), 0.2 heme c553 (2.4s-1), 1.7 hemes c559 (19s-1), 0.3 heme c559 (1.4s-1). For reduction by NH2NH2 the values were: 2.6 hemes c553 (23s-1), 0.7 heme c553 (1.6s-1), 1.3 hemes c559 (22s-1), 0.7 heme c559 (4.2s-1). Thus reduction by NH2OH at the substrate site was at least an order of magnitude faster than reduction of hydroxylamine oxidoreductase heme by Na2S2O4. Comparison of rates of heme-heme electron transfer on the enzyme during reoxidation by O2 or H2O2, reduction by Na2S2O4 and reduction by NH2OH or NH2NH2 indicates that the enzyme can exist in distinct states which result in different rates of heme-heme electron transfer. Comparison of the rate of substrate reduction of c hemes of hydroxylamine oxidoreductase (HAO) with the turnover of the enzyme in vivo is consistent with the electron path NH2OH----HAO P460----HAO c hemes----biological electron acceptor.

Anaerobiosis↗

Lactoperoxidase, a dithionite ion dismutase.

The dithionite ion is catalytically disproportionated by lactoperoxidase with Km = 0.36 mM in 100 mM glycine HCl pH 3.0. The products formed are thiosulfate and hydrogensulfite ions. The rate of reaction is considerably increased at low pH with a pKa at 3-3.5 possibly indicating the involvement of a carboxyl group. The reaction is competitively inhibited by hydrogensulfite, Ki = 5.5 mM in 100 mM glycine HCl pH 3.50. Four different spectral forms of reduced lactoperoxidase appear during the reaction. The first two forms are found during the lag phase of the reaction. The third form, which is interpreted as a ternary complex, exists under the dismutation phase. After exhaustion of the substrate a visible spectrum similar to that of lactoperoxidase H2O2 compound III appears. A mechanistic model for the lactoperoxidase dismutation of the dithionite ion is proposed and discussed.

Animals↗

Reduction of lactoperoxidase by the dithionite anion monomer.

The reduction of lactoperoxidase with sodium dithionite has been studied by means of stopped-flow spectrophotometry in an anaerobic system. Under pseudo-first-order conditions the rate constant was found to be linearly dependent on the square root of the dithionite concentration, which confirms the monomeric radical, SO2- as the reducing species. The second-order rate constant is moderately influenced by increased ionic strength but drastically increased at lower pH. The pH dependence supports the previously suggested existence of a carboxyl group, essential to the different enzymatic functions of lactoperoxidase. The second-order rate constant for the reduction of lactoperoxidase at pH 7.0 (kappa 1 = 1.3 X 10(5) M-1 s-1) was about three times higher than the rate constant for the reduction of cyanide-bound lactoperoxidase and two times the rate constant for the reduction of the fluoride-lactoperoxidase complex.

Dithionite↗

Kinetic characterization of the redox components in solubilized membranes from porcine neutrophils: reduction with dithionite and photoexcited NAD(P)H.

Cytochrome b558 in solubilized membranes prepared from porcine neutrophils was reduced by dithionite with a second-order rate constant of 2.5 x 10(6) M-1 s-1 at pH 7.4 and 20 degrees C accompanied by spectral changes with peaks at 428 nm and 560 nm and isosbestic points at 420 and 441 nm. When an anaerobic mixture of solubilized membranes and NAD(P)H was exposed to a white light, cytochrome b558 was reduced biphasically but with almost the same spectral profiles as in the dithionite reduction. Thus, participation of redox component(s) of unknown nature in the photochemical reduction was suggested. The NAD(P). radical generated by photoexcitation of NAD(P)H with a 355 nm laser pulse under anaerobic conditions also reduced cytochrome b558 with a high rate constant of 4.3 x 10(8) M-1 s-1 at pH 7.4 and 20 degrees C. The reduction of cytochrome b558 accompanied a simultaneous reduction of a component having an absorption band around 420 nm, suggesting participation of an iron-sulfur (Fe-S) cluster. The cytochrome b558 reduction was followed by its reoxidation by another component with an apparent second-order rate constant of 6.5 x 10(5) M-1 s-1. During the reoxidation, the Fe-S-like component remained in the reduced state, and thus its role other than as electron mediator in neutrophils NADPH oxidase is suggested. Not only the rate constant but also the extent of cytochrome b558 reoxidation decreased as the same reaction mixture was exposed to the laser pulse repeatedly. This result clearly indicates that an electron accumulates in this electron-accepting component designated tentatively as the omega component.

Animals↗

DLO2 in excised lungs perfused with blood containing sodium dithionite (Na2S2O4).

If the excised lung is perfused with blood containing the chemical sodium dithionite (DDT), the PO2 of pulmonary capillary blood is everywhere zero and the membrane diffusing capacity for O2 (DmO2) can be measured by a standard rebreathing technique. The reaction rate of DDT with O2 is not rate limiting in the DmO2. In 15--25 kg dogs anesthetized with pentobarbital sodium (30 mg/kg, iv), left lower lobe was excised, suspended horizontally and perfused with autologous blood at 25--27 degrees C. DDT was added to the blood and the rebreathing alveolar disappearance curves for O2 were measured. The DmO2 ranged from 6 to 43 (ml/min.Torr, STPD) at lung volumes of 240--780 ml (FRC at 6 cmH2O end-expiratory pressure). Lung weight, pulmonary artery pressure, and the DmO2 were stable in the presence of DDT. Histopathology indicates that dithionite in the concentrations used does not harm the lung. Effects of inequalities in the distributions of ventilation, volume, and diffusing capacity were examined in a two-compartment model and compared with the experimental findings.

Animals↗

Translocation of phospholipids and dithionite permeability in liquid-ordered and liquid-disordered membranes.

We present a detailed study of the translocation rate of two headgroup-labeled phospholipid derivatives, one with two acyl chains, NBD-DMPE, and the other with a single acyl chain, NBD-lysoMPE, in lipid bilayer membranes in the liquid-disordered state (POPC) and in the liquid-ordered states (POPC/cholesterol (Chol), molar ratio 1:1, and sphingomyelin (SpM)/Chol, molar ratio 6:4). The study was performed as a function of temperature and the thermodynamic parameters of the translocation process have been obtained. The most important findings are 1), the translocation of NBD-DMPE is significantly faster than the translocation of NBD-lysoMPE for all bilayer compositions and temperatures tested; and 2), for both phospholipid derivatives, the translocation in POPC bilayers is approximately 1 order of magnitude faster than in POPC/Chol (1:1) bilayers and approximately 2-3 orders of magnitude faster than in SpM/Chol (6:4) bilayers. The permeability of the lipid bilayers to dithionite has also been measured. In liquid disordered membranes, the permeability rate constant obtained is comparable to the translocation rate constant of NBD-DMPE. However, in liquid-ordered bilayers, the permeability of dithionite is significantly faster then the translocation of NBD-DMPE. The change in enthalpy and entropy associated with the formation of the activated state in the translocation and permeation processes has also been obtained.

Biological Transport↗

Induction of Heinz body formation by sodium dithionite.

Incubation of normal erythrocytes with sodium dithionite resulted in the formation of Heinz bodies, but incubation with sodium metabisulfite did not. Addition f superoxide dismutase to the incubation medium increased the formation of Heinz bodies by sodium dithionite. Addition of catalase to suspensions of erythrocytes in the presence and absence of superoxide dismutase inhibited the formation of Heinz bodies. These findings indicate that hydrogen peroxide, not superoxide, is the active oxidant in Heinz body formation.

Adult↗

Biohydrogenation of unsaturated fatty acids. Presence of dithionite and an endogenous electron donor in Butyrivibrio fibrisolvens.

Two oxygen-consuming substances were isolated from cell-free extracts of the rumen anaerobe, Butyrivibrio fibrisolvens. The major fraction comprising 97% of the total activity was characterized as a three-component mixture of glucose, maltose, and dithionite. The minor activity fraction contained an electron donor for the reduction of cis-9,trans-11-octadecadienoate to trans-11-octadecenoate. After oxidation, the electron donor could be reduced by the dithionite, thereby accounting for the previously observed capacity of cell-free extracts of the bacterium to carry out the biohydrogenation of the conjugated dienoic fatty acid.

Dithionite↗

[Comparative study of the reaction kinetics of cytochrome P-450 reduction by NADPH-cytochrome P-450 reductase and dithionite].

The reactions of NADPH- or dithionite-dependent reduction of cytochrome P-450 were studied using a stopped flow technique. It was found that the kinetic curves for both reactions may be fitted by a sum of the two exponents. The arrhenius plots for the fast phase rate constants are linear for both reactions. On the contrary, the breaks on the corresponding plots for the slow phase rate constants are observed at 22 and 33 degrees C for cytochrome P-450 reduction by dithionite and at 31 degrees C for NADPH-dependent reduction of cytochrome P-450. The coincidence of the values of the rate constants and activation energy (56 +/- 5 kJ/mol) for the fast phase of NADPH-dependent reduction of cytochrome P-450 with values of catalytic constants and activation energy for demethylation of tertiary amines suggests that the first electron transfer process from NADPH-cytochrome P-450 reductase to cytochrome P-450 may be the rate-limiting step. A diverse character of the kinetic parameters for the two cytochrome P-450 reduction reactions is indicative of different nature of biphasity of these processes.

Animals↗

Reduction of metmyoglobin derivatives by dithionite ion.

The rate constants for reduction by dithionite of a number of metmyoglobin species Mb+X(X=H2O, imidazole, OH-, F-, N3-, CNO-, SCN-, HCO2-, NO2-, and CN-) were measured at 25 degrees by stopped flow spectrophotometry. The dependence of the rate was [S2O42-]1/2, and the SO2- radical was considered to be the active reductant. Except for X=imidazole and CN-, reduction occurred through dissociation of Mb+X. Values for the dissociative rate constant obtained from dithionite reduction were in good agreement with those obtained directly. Reduction of the dissociated fragment (assumed Mb+H2O) by SO2- is 3+/-1 X 10(6) M-1S-1 at pH 8.2 for all Mb+X species examined. Reduction of Mb+ imidazole and Mb+CN- occurs directly with SO2-, and Mb0CN- (Mb0, deoxymyoglobin) is characterized as an intermediate in reduction of the latter.

Dithionite↗

Kinetics and mechanism of the cobalt phthalocyanine catalyzed reduction of nitrite and nitrate by dithionite in aqueous solution.

The reaction of sodium nitrite with sodium dithionite was studied in the presence of cobalt(II) tetrasulfophthalocyanine, COII(TSPc)4-, in aqueous alkaline solution. The overall mechanism comprises the reduction of CoII(TSPc)4- by dithionite, followed by the formation of an intermediate complex between COI(TSPc)5- and nitrite, which undergoes two parallel subsequent reactions with and without nitrite as a reagent. Kinetic parameters for the different reaction steps of the catalytic process were determined. The final product of the reaction was found to be ammonia. Contrary to those found for the catalytic reduction of nitrite, the products of the catalytic reduction of nitrate were found to be dinitrogen and nitrous oxide. The possible catalytic reduction of nitrous oxide was confirmed by independent experiments. The striking differences in the reduction products of nitrite and nitrate are explained in terms of different structures of the intermediate complex between CoI(TSPc)5- and substrate, in which nitrite and nitrate are suggested to coordinate via nitrogen and oxygen, respectively.

Journal Article↗

Improvement and simplification of low-background silver staining of proteins by using sodium dithionite.

High sensitivity and low background, the attractive characteristics of the procedure of Blum et al., Electrophoresis 1987, 8, 93-99, for silver staining of proteins in polyacrylamide gels have been improved by sensitizing the gels with sodium dithionite instead of sodium thiosulfate and by equilibration in water after fixation and prior to sensitization. These modifications decrease the background and allow for a longer development period, which in turn increases sensitivity and color contrast. In addition, the colors of the spots are shifted toward colder tones when compared with the original method.

Animals↗