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Effect of strophanthin G on peroxidase oxidation kinetics of slowly oxidizable peroxidase substrates.

Steady-state kinetics of thioproperazine, triftazine, aminazine, and o-dianisidine oxidation with hydrogen peroxide catalyzed by horseradish peroxidase were studied in the presence of strophanthin G. Values of the inhibition and activation constants (Ki, Ka) were determined in the pH range 5.0-7.5. At acidic pH, strophanthin G activated peroxidase during the oxidation of thioproperazine by the uncompetitive mechanism, and when triftazine was oxidized, the inhibition was noncompetitive. At pH > 6.0, the patterns of activation and inhibition changed to mixed-type during the peroxidase oxidation of thioproperazine and triftazine and to competitive inhibition of peroxidase with strophanthin G during the oxidation of aminazine. These effects are suggested to be due to an ionizable enzyme group of pK approximately 6.0. Strophanthin G inhibited free-radical oxidation of o-dianisidine via binding to the enzyme-substrate complex, preventing the generation of a stable semi-oxidized product of o-dianisidine, and thus inhibiting the enzyme by the anticompetitive mechanism. Mechanisms of oxidation of slowly and rapidly oxidizable substrates of peroxidase in the presence of strophanthin G are suggested.

Ascorbic Acid↗

A simplified method for the rapid preparation of peroxidase-anti peroxidase (PAP) complexes.

A modified method is described for the rapid production of peroxidase-antiperoxidase complexes to be used in immunocytochemistry. In this method anti-peroxidase antibodies are precipitated from crude serum with peroxidase at equivalence and subsequently resolubilized at low pH with excess peroxidase. The complexes are isolated from unbound immunoglobulin and peroxidase by gelfiltration. The method combines the advantages of both previously described preparation procedures. The resulting PAP-complex, when tested in indirect immunocytochemistry, is comparable to that obtained in established preparation procedures.

Animals↗

Detection of autoantigens by immunoblotting using a peroxidase-anti-peroxidase complex.

An immunoblotting procedure using a peroxidase-anti-peroxidase (PAP) complex was developed for the detection of autoantigens in crude mixtures by human autoimmune sera. Thymus proteins were transferred to a nitrocellulose sheet after electrophoresis in polyacrylamide gels and probed with a 1:100 dilution of serum. The location and extent of immunoglobulin G (IgG) binding was determined by sequential reaction with: rabbit anti-human IgG, goat anti-rabbit IgG and rabbit peroxidase-anti-peroxidase complex. The peroxidase was allowed to react with chloronaphthol and low levels of autoantigen/autoantibody complex were detectable with virtual absence of background colour. The inclusion of human IgG and its pepsin-generated fragment provided a means of controlling and calibrating the blotting procedure.

Animals↗

Quantitation of ABO mixed-cell populations by a peroxidase-anti-peroxidase immunoenzyme method.

The peroxidase-anti-peroxidase immunoenzyme method was applied to red blood cell ghosts for the detection of ABO mixed-red blood cell populations. Red blood cell ghosts produced by acid-glycine lysis eliminated previous problems due to distorted red blood cell and hemoglobin-associated peroxidase activity. Anti-A,B was used to discriminate between various mixtures of test cells in group O cells. The positive-stained minor population of test cells stained dark brown following application of the peroxidase-anti-peroxidase method and the nonreactive group O cells were counterstained light blue with Coomassie brilliant blue which facilitated quantitation. The expected and observed numbers of positive-stained cells per 1000 cells were not significantly different as computed by X2. As low as a 0.5 percent minor population in an ABO red blood cell mixture could be accurately quantitated by this method.

ABO Blood-Group System↗

Role of peroxidase in lignification of tobacco cells : I. Oxidation of nicotinamide adenine dinucleotide and formation of hydrogen peroxide by cell wall peroxidases.

The two peroxidase isoenzyme groups (G(I) and G(III)) localized in the cell walls of tobacco (Nicotiana tabacum L.) tissues were compared with respect to their capacity for NADH-dependent H(2)O(2) formation. Peroxidases of the G(III) group are slightly more active than those of the G(I) group when both are assayed under optimal conditions. This difference is probably not of major regulatory importance. NADH-dependent formation of H(2)O(2) required the presence of Mn(2+) and a phenol as cofactors. The addition of H(2)O(2) to the reaction mixture accelerated subsequent NADH-dependent H(2)O(2) formation. In the presence of both cofactors or Mn(2+) alone, catalase oxidized NADH. However, if the cofactors were absent or if only dichlorophenol was present, catalase inhibited NADH oxidation. No H(2)O(2) accumulation occurred in the presence of catalase. Superoxide dismutase inhibited NADH oxidation quite significantly indicating the involvement of the superoxide radical in the peroxidase reaction. These results are interpreted to mean that the reactions whereby tobacco cell wall peroxidases catalyze NADH-dependent H(2)O(2) formation are similar to those proposed for horseradish peroxidase (Halliwell 1978 Planta 140: 81-88).

Journal Article↗

The use of a peroxidase-anti-peroxidase complex for the visualization of monoclonal antibodies on the ultrastructural level.

Human peripheral blood mononuclear cell (PBMC) were treated with a panel of monoclonal antibodies (MoAbs) for the demonstration of membrane antigens at the ultrastructural level. The bound MoAbs were linked by rabbit anti-mouse IgG to a peroxidase-anti-peroxidase (PAP) complex composed of monoclonal mouse anti-peroxidase antibodies and horse radish peroxidase. This labelling method with a three step incubation procedure resulted in clear demonstration of the membrane antigens. Moreover, the use of the PAP complex as marker permitted the recognition of monocytes not only by morphology but also by their endogenous peroxidase pattern. In addition, it was observed that the MoAbs used, supposedly specific for T lymphocytes, reacted to a certain degree with monocytes.

Antibodies, Monoclonal↗

pH titration study of cytochrome c peroxidase and apocytochrome c peroxidase.

A pH titration study of cytochrome c peroxidase and apocytochrome c peroxidase was carried out at 25 degrees C and 0.1 M ionic strength. The net charge on cytochrome c peroxidase due to proton association and dissociation varies from +32 at pH 2 to --50.2 at pH 12, while that of apocytochrome c peroxidase varies between +24.5 at pH 3 to --48 at pH 12. The apoprotein tented to aggregate below pH 3. Between pH 4 and 8, the titration behavior of both the native enzyme and the apoenzyme are consistent with the semi-empirical Linderstrøm-Lang theory. Between pH 9 and 12, the titration behavior of both the holo- and apoproteins suggest they assume a more extended conformation which reduces the electrostatic interaction charged groups on the surface. In the acid region, between pH 4 and 3, a similar transition occurs in which the protein expands 40% based on the electrostatic factor of the Linderstrøm-Lang theory.

Apoenzymes↗

Vanadium effect on the activity of horseradish peroxidase, catalase, glutathione peroxidase, and superoxide dismutase in vitro.

The effect of vanadium (V) on the activity of horseradish peroxidase, catalase, glutathione peroxidase, and superoxide dismutase has been studied. A competitive inhibition pattern was evident for vanadate ions on the activity of horseradish peroxidase (Ki = 41.2 microM). No significant inhibitory effects were found when V(V) was tested with catalase and when either V(IV) or V(V) were assayed with glutathione peroxidase. For the latter, the effect of V on the different components of the reaction system was investigated. V(V) did not significantly affect SOD activity when assayed with the sulfite method, which is devoid of interferences with V(V); however, there was an apparent inhibitory dose-response pattern for either V(IV) or V(V) using the pyrogallol assay, owing to an interference of pyrogallol with the metal. Besides, no significant binding of V(IV) or V(V) to the enzyme could be demonstrated. The lack of a direct inhibitory effect of V on the activity of the main antioxidant enzymes suggests that many biological and toxicological effects of V may be mediated more by oxidative reactions of the metal or of its complexes with physiologically relevant biomolecules than by a direct modulation of enzymatic activities.

Catalase↗

Comparative studies on oestrogen-induced rat uterus peroxidase and rat eosinophil peroxidase.

Rat eosinophil peroxidase and rat uterine peroxidase II showed similar electrophoretic mobilities, molecular weights, specific activities and spectral properties and could be purified by essentially identical techniques. Antibodies raised against the uterine enzyme strongly inhibited the eosinophil enzyme. It is suggested that rat eosinophil peroxidase and rat uterine peroxidase II may well be one and the same enzyme.

Animals↗

Role of heme-protein covalent bonds in mammalian peroxidases. Protection of the heme by a single engineered heme-protein link in horseradish peroxidase.

Oxidation of SCN-, Br-, and Cl- (X-) by horseradish peroxidase (HRP) and other plant and fungal peroxidases results in the addition of HOX to the heme vinyl group. This reaction is not observed with lactoperoxidase (LPO), in which the heme is covalently bound to the protein via two ester bonds between carboxylic side chains and heme methyl groups. To test the hypothesis that the heme of LPO and other mammalian peroxidases is protected from vinyl group modification by the hemeprotein covalent bonds, we prepared the F41E mutant of HRP in which the heme is attached to the protein via a covalent bond between Glu41 and the heme 3-methyl. We also examined the E375D mutant of LPO in which only one of the two normal covalent heme links is retained. The prosthetic heme groups of F41E HRP and E375D LPO are essentially not modified by the HOBr produced by these enzymes. The double E375D/D225E mutant of LPO that can form no covalent bonds is inactive and could not be examined. These results unambiguously demonstrate that a single heme-protein link is sufficient to protect the heme from vinyl group modification even in a protein (HRP) that is normally highly susceptible to this reaction. The results directly establish that one function of the covalent heme-protein bonds in mammalian peroxidases is to protect their prosthetic group from their highly reactive metabolic products.

Animals↗

Homology modeling of a heme protein, lignin peroxidase, from the crystal structure of cytochrome c peroxidase.

A 3-dimensional model of lignin peroxidase (LiP) was constructed based on its sequence homology with other peroxidases, particularly cytochrome c peroxidase, the only protein with a known crystal structure in the peroxidase family. The construction of initial conformations of insertions and deletions was assisted by secondary structure predictions, amphipathic helix predictions, and consideration of the specific protein environment. A succession of molecular dynamics simulations of these regions with surrounding residues as constraints were carried out to relax the bond lengths and angles. Full protein molecular dynamics simulations with explicit consideration of bound waters were performed to relax the geometry and to identify dynamically flexible regions of the successive models for further refinement. Among the important functionally relevant structural features predicted are: (i) four disulfide bonds are predicted to be formed between Cys3 and Cys15, Cys14 and Cys285, Cys34 and Cys120 and Cys249 and Cys317; (ii) a glycosylation site, Asn257, was located on the surface; (iii) Glu40 was predicted to form a salt bridge with Arg43 on the distal side of the heme and was considered as a possible origin for the pH dependence of compound I formation; and (iv) two candidate substrate binding sites with a cluster of surface aromatic residues and flexible backbones were found in the refined model, consistent with the nature of known substrates of LiP. Based on these predicted structural features of the model, further theoretical and experimental studies are proposed to continue to elucidate the structure and function of LiP.

Amino Acid Sequence↗

Amino acid sequence studies of horseradish peroxidase. Amino and carboxyl termini, cyanogen bromide and tryptic fragments, the complete sequence, and some structural characteristics of horseradish peroxidase C.

Horseradish peroxidase C dominates quantitatively among the isoperoxidases of horseradish root and has an isoelectric point close to 9. It consists of a hemin prosthetic group, 2 Ca2+ and 308 amino acid residues, including 4 disulfide bridges, in a single polypeptide chain that carries 8 neutral carbohydrate side-chains. The molecular weight of the polypeptide chain is 33890. Assuming an average carbohydrate composition of (GlcNAc)2, Man3, Fuc, Xyl for each carbohydrate chain, the molecular weight of native horseradish peroxidase C is close to 44 000. Cyanogen bromide fragments of reduced and carboxymethylated apo-peroxidase were purified by a combination of gel filtration and isoelectric focusing in urea, and cystine-containing tryptic fragments of apo-peroxidase were purified by gel filtration followed by disulfide cleavage and rechromatography at the initial conditions. The present paper discusses (a) isoelectric points and charge distribution within the native protein, the apoprotein and the cyanogen bromide fragments, (b) a buried pyrrolidonecarboxylyl amino terminus, (c) heterogeneity at the carboxyl terminus, and (d) a possible domain structure, likely from partial tryptic digestion.

Amino Acid Sequence↗

An electrochemical assay system for peroxidase and peroxidase-couplers reactions based on a fluoride ion-selective electrode.

A sensitive and accurate potentiometric reaction-rate method for the assay of peroxidase (EC 1.11.1.7) and peroxidase-coupled reactions is described. The technique is based on the peroxidase-catalyzed rupture of the covalent C--F bond in certain organo-fluoro compounds in the presence of H2O2 and the measurement of liberated F- by a fluoride ion-selective electrode. In a study screening 26 organo-fluoro compounds, 12 were susceptible to C--F bond rupture. However, analytically useful reaction kinetics were observed only with 4-fluoroaniline, 5-fluor-2-methylaniline, 4-fluorophenol, 2,3,5,6-tetrafluorophenol, pentafluorophenol, and 3-fluoro-DL-tyrosine. With this assay system, peroxidase activity as low as 25 mU/L could be precisely measured within 2 min. The reaction was coupled to glucose oxidase and cholesterol oxidase for the determination of glucose and cholesterol. Glucose oxidase activity in solution (to 2 U/L) was measured to demonstrate the feasibility of the assay for oxidase enzymes. Only a few microliters of sample is required and most determinations can be completed within minutes. The assay system offers broad applications and is especially attractive for use in enzyme immunoassays.

Blood Glucose↗

Product of the Schistosoma mansoni glutathione peroxidase gene is a selenium containing phospholipid hydroperoxide glutathione peroxidase (PHGPx) sharing molecular weight and substrate specificity with its mammalian counterpart.

In the blood fluke Schistosoma mansoni a functionally active, monomeric, phospholipid hydroperoxide glutathione peroxidase (PHGPx) has been purified and characterized. This enzyme contains a catalytically active selenocysteine. The protein has been shown to be the product of a cloned gene, previously referred to as a glutathione peroxidase gene. S. mansoni PHGPx has been found 5 times more abundant in female than in male worm extract. As in vertebrate PHGPx, homology alignment indicates that the residues involved in the glutathione binding by the tetrametric cellular glutathione peroxidase are mutated in the S. mansoni enzyme. Thus, this aspect appears a landmark of the PHGPx-type of glutathione peroxidases, which might be of functional relevance.

Amino Acid Sequence↗

Evidence for a radical mechanism in peroxidase-catalyzed coupling. II. Single turnover experiments with horseradish peroxidase.

Single turnover experiments were performed with horseradish peroxidase (HRP) to study the mechanism of peroxidase-catalyzed coupling and its stimulation by low concentrations of free diiodotyrosine (DIT). HRP was used because, unlike thyroid peroxidase (TPO) and lactoperoxidase (LPO), the spectral properties of compounds I and II are readily distinguishable. This made it possible to correlate the kinetics and stoichiometry of T4 + T3 formation with spectral data. Incubation of 2 microM preformed HRP-I with 2 microM [125I]Tg (thyroglobulin of low hormone content, high iodotyrosine content) in the presence of 1 microM free DIT yielded about 0.8 residue T4 and 0.2 residue T3 per molecule of Tg. This represents the theoretical maximum for iodothyronine formation, indicating remarkably efficient use of the oxidizing equivalents in HRP-I for coupling. The time course for formation of T4 + T3 was biphasic. During a rapid initial phase (about 1 min), HRP-I was completely converted to HRP-II, coincident with the formation of about 0.65 residues of T4 + T3. During the second slower phase, lasting 10-15 min, HRP-II was completely reduced to the native enzyme, with formation of the remaining T4 + T3. In the absence of DIT, the coupling yield was reduced to 0.5-0.6 residue T4 + T3 per molecule Tg, and the reaction, although considerably slower, was still biphasic. The rapid phase again corresponded to the conversion of HRP-I to HRP-II, and the slower phase to the conversion of HRP-II to native enzyme. To gain insight into the mechanism of the stimulatory effect of free DIT on coupling, we studied the reaction of DIT with HRP-I and HRP-II. Free DIT reacted with both HRP-I and HRP-II in one-electron transfer reactions, and the time course for these reductions resembled those observed with DIT + Tg. These observations suggest that in DIT-stimulated coupling, free DIT radicals act as a shuttle for transferring oxidizing equivalents from the peroxidase intermediates to the DIT residues in Tg. The remarkable efficiency of the HRP-I-mediated coupling reaction implies that (i) only hormonogenic residues in Tg are oxidized and (ii) oxidation of two hormonogenic residues occurs within the same molecule of Tg. A scheme which attempts to explain both kinetic and stoichiometric features of the coupling reaction observed in this study is proposed. This scheme is based on a radical mechanism, consistent with the conclusions reached in the companion paper.

Anaerobiosis↗

Phospholipid hydroperoxide glutathione peroxidase: specific activity in tissues of rats of different age and comparison with other glutathione peroxidases.

The tissue distribution of phospholipid hydroperoxide glutathione peroxidase (PHGPX) was studied in rats of different ages. In the same samples the activities of Se-dependent glutathione peroxidase (GPX), and non-Se-dependent glutathione peroxidase (non Se-GPX) were also determined using specific substrates for each enzyme. Enzymatically generated phospholipid hydroperoxides were used as substrate for PHGPX, hydrogen peroxide for GPX, and cumene hydroperoxide for non-Se-GPX (after correction for the activity of GPX on this substrate). PHGPX specific activity in different organs is as follows: liver = kidney greater than heart = lung = brain greater than muscle. Furthermore, this activity is reasonably constant in different age groups, with a lower specific activity observed only in kidney and liver of young animals. GPX activity is expressed as follows: liver greater than kidney greater than heart greater than lung greater than brain = muscle, and substantial age-dependent differences have been observed (adult greater than old greater than young). Non-Se-GPX activity was present in significant amount only in liver greater than lung greater than heart and only in adult animals. These results suggest a tissue- and age-specific expression of different peroxidases.

Aging↗

Characterization of peroxidase:anti-peroxidase immune complexes by capillary zone electrophoresis and high-performance size-exclusion chromatography.

Determination of the molecular constituents of commercial peroxidase:anti-peroxidase (PAP) preparations is necessary for the proper interpretation of PAP applications based on competitive binding assay. Capillary zone electrophoresis with field 300 V/cm, 40 cm capillary length (20 cm effective length), and high-performance size exclusion chromatography equipped with Superose 12 HR10/30 column revealed that a PAP preparation used for Fc gamma receptor studies contained multiple sizes of immune complexes, an excess amount of free peroxidase, and little or no free anti-peroxidase antibody. The antibody:antigen ratios of the three major immune complex components were 2:2, 1:2, and 1:1. These techniques provide useful methods of qualitative, as well as quantitative analysis of PAP preparations.

Antigen-Antibody Complex↗

Arabidopsis ATP A2 peroxidase. Expression and high-resolution structure of a plant peroxidase with implications for lignification.

Lignins are phenolic biopolymers synthesized by terrestrial, vascular plants for mechanical support and in response to pathogen attack. Peroxidases have been proposed to catalyse the dehydrogenative polymerization of monolignols into lignins, although no specific isoenzyme has been shown to be involved in lignin biosynthesis. Recently we isolated an extracellular anionic peroxidase, ATP A2, from rapidly lignifying Arabidopsis cell suspension culture and cloned its cDNA. Here we show that the Atp A2 promoter directs GUS reporter gene expression in lignified tissues of transgenic plants. Moreover, an Arabidopsis mutant with increased lignin levels compared to wild type shows increased levels of ATP A2 mRNA and of a mRNA encoding an enzyme upstream in the lignin biosynthetic pathway. The substrate specificity of ATP A2 was analysed by X-ray crystallography and docking of lignin precursors. The structure of ATP A2 was solved to 1.45 A resolution at 100 K. Docking of p-coumaryl, coniferyl and sinapyl alcohol in the substrate binding site of ATP A2 were analysed on the basis of the crystal structure of a horseradish peroxidase C-CN-ferulic acid complex. The analysis indicates that the precursors p-coumaryl and coniferyl alcohols are preferred by ATP A2, while the oxidation of sinapyl alcohol will be sterically hindered in ATP A2 as well as in all other plant peroxidases due to an overlap with the conserved Pro-139. We suggest ATP A2 is involved in a complex regulation of the covalent cross-linking in the plant cell wall.

Arabidopsis↗