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Mechanism of peroxidase inactivation in liquid cultures of the ligninolytic fungus pleurotus pulmonarius

It has recently been reported that Pleurotus pulmonarius secretes a versatile peroxidase that oxidizes Mn2+, as well as different phenolic and nonphenolic aromatic compounds; this enzyme has also been detected in other Pleurotus species and in Bjerkandera species. During culture production of the enzyme, the activity of the main peak was as high as 1,000 U/liter (measured on the basis of the Mn3+-tartrate formation) but this peak was very ephemeral due to enzyme instability (up to 80% of the activity was lost within 15 h). In culture filtrates inactivation was even faster; all peroxidase activity was lost within a few hours. Using different inhibitor compounds, we found that proteases were not responsible for the decrease in peroxidase activity. Peroxidase instability coincided with an increase in the H2O2 concentration, which reached 200 μM when filtrates were incubated for several hours. It also coincided with the onset of biosynthesis of anisylic compounds and a decrease in the pH of the culture. Anisyl alcohol is the natural substrate of the enzyme aryl-alcohol oxidase, the main source of extracellular H2O2 in Pleurotus cultures, and addition of anisyl alcohol to filtrates containing stable peroxidase activity resulted in rapid inactivation. A decrease in the culture pH could also dramatically affect the stability of the P. pulmonarius peroxidase, as shown by using pH values ranging from 6 to 3.25, which resulted in an increase in the level of inactivation by 10 μM H2O2 from 5 to 80% after 1 h. Moreover, stabilization of the enzyme was observed after addition of catalase, Mn2+, or some phenols or after dialysis of the culture filtrate. We concluded that extracellular H2O2 produced by the fungus during oxidation of aromatic metabolites is responsible for inactivation of the peroxidase and that the enzyme can protect itself in the presence of different reducing substrates.

Journal Article↗

Monkey retinal ganglion cells: morphometric analysis and tracing of axonal projections, with a consideration of the peroxidase technique.

This paper presents evidence on the retinal distribution and central projections of retinal ganglion cells of various cell body sizes in the adult macaque monkey. The ganglion cell sizes have been determined by computer assisted measurement of camera lucida drawings at various eccentricities of both flat mounted and sectioned retinae. The pattern of projections of individual ganglion cells to the dorsal lateral geniculate nucleus and superior colliculus has been studied using retrograde axonal transport of horseradish peroxidase. Following peroxidase injections into the parvocellular laminae of the geniculate, virtually every ganglion cell was labeled within a circumscribed zone of the retina known to project to the region of the geniculate immediately surrounding the injection needle tip. After magnocellular injections, only the largest cells of the peripheral retina and approximately 26% of the ganglion cells of the parafovea were labeled. Peroxidase injections into the superior colliculus produced labeling of scattered ganglion cells of all sizes in the retina, although no labeled cells were found within the centralmost 10 degrees eccentricity. From these observations it is concluded that all ganglion cells of the macaque retina project to the parvocellular layers of the dorsal lateral geniculate, but that only the largest ganglion cells of the more peripheral retina and not all cells of the parafovea project to the magnocellular laminae. In contrast, only scattered ganglion cells, although these are of all sizes, appear to project to the superior colliculus. Two major problems with the peroxidase tracing technique are described: 1. The extent of stainable peroxidase activity around the injection site appears to be larger than the area of injected tracer actually available for uptake by axons to produce labeled cells. 2. Cut or damaged axons appear to incorporate peroxidase sufficiently to produce labeling of the cell body.

Animals↗

Oxidation of halides by peroxidases and their subsequent reductions.

The iodide oxidase activity and iodide-dependent pseudocatalatic activity of lignin peroxidase H2, an extracellular enzyme of the white rot fungus Phanerochaete chrysosporium, was inhibited by EDTA. The inhibition of iodide oxidase activity by EDTA was reversed at higher concentrations of iodide. Similar results were observed with a number of peroxidases. On further investigation, it was found that EDTA was decarboxylated in a reaction mixture containing a peroxidase, iodide, H2O2, and EDTA. EDTA was also decarboxylated by hypoiodite, a possible intermediate during oxidation of iodide by peroxidases. Iodide-dependent pseudocatalatic activity was increased with an increase in the concentration of H2O2 and inhibited at higher concentrations of iodide. EDTA was also oxidized by horseradish peroxidase, lactoperoxidase, and myeloperoxidase using iodide or bromide as a mediator. However, only myeloperoxidase was able to decarboxylate EDTA using chloride as a mediator. It is proposed that halide is oxidized to hypohalite by peroxidases. The hypohalite is then reduced by EDTA, H2O2, or halide. Reduction is associated with the decarboxylation of EDTA, oxidation of H2O2 to molecular oxygen, or oxidation of halide.

Agaricales↗

Comparative study on recombinant chloroplastic and cytosolic ascorbate peroxidase isozymes of spinach.

The spinach stromal, thylakoid-bound, and cytosolic ascorbate peroxidase isozymes (EC 1.11.1.11) were overexpressed in Escherichia coli, and their enzymatic properties were compared with the respective native isozymes. The purification of the recombinant stromal and cytosolic ascorbate peroxidases using the conventional column chromatography yielded 0.73 and 2.2 mg of protein/liter of bacteria culture with enzyme activities of 800 and 486 micromol min-1 mg protein-1, respectively. In every respect, the recombinant stromal, thylakoid-bound, and cytosolic ascorbate peroxidase isozymes exhibited identical enzymatic properties with each native isozyme. Specifically, the recombinant stromal and thylakoid-bound ascorbate peroxidase isozymes showed high utilization of ascorbate as an electron donor and had a very short lifetime in ascorbate-depleted medium. Polyclonal antibodies raised against both purified recombinant stromal and cytosolic ascorbate peroxidase isozymes were prepared. Both antibodies showed a cross-reaction with the recombinant and native ascorbate peroxidase isozymes.

Amino Acid Sequence↗

Expression of Arabidopsis cytosolic ascorbate peroxidase gene in response to ozone or sulfur dioxide.

The effects of ozone or sulfur dioxide on antioxidant enzymes were investigated in Arabidopsis thaliana. Plants were fumigated with 0.1-0.15 ppm ozone or sulfur dioxide up to about 1 week in an environment-controlled chamber. Both pollutants increased the activities of ascorbate peroxidase and guaiacol peroxidase in leaves, but had little effect on the activities of superoxide dismutase, catalase, monodehydroascorbate reductase, dehydroascorbate reductase or glutathione reductase. Ozone was more effective than sulfur dioxide in increasing the activities of the peroxidases. Ascorbate peroxidase activity increased 1.8-fold without a lag period during fumigation with 0.1 ppm ozone, while guaiacol peroxidase activity increased 4.4-fold with a 1-day lag. Expression of the APX1 gene encoding cytosolic ascorbate peroxidase was further investigated. Its protein levels in leaves exposed to 0.1 ppm ozone for 4 or 8 days were 1.5-fold higher than in controls. Both ozone and sulfur dioxide elevated APX1 mRNA levels in leaves at 4 and 7 days, whereas at 1 day only ozone was effective. The induction of APX1 mRNA levels by ozone (3.4- to 4.1-fold) was more prominent than that by sulfur dioxide (1.6- to 2.6-fold). The APX1 mRNA level increased by day and decreased by night. Exposure of plants to 0.1 ppm ozone enhanced the APX1 mRNA level within 3 h, which showed a diurnal rhythm similar to that of the control. These results demonstrate that near-ambient concentrations of ozone as well as similar concentrations of sulfur dioxide can induce APX1 gene expression in A. thaliana.

Air Pollutants↗

Superoxide dismutase, catalase, and glutathione peroxidase in the swim bladder of the physoclistous fish, Opsanus tau L.

The antioxidant enzymes superoxide dismutase, glutathione peroxidase, and catalase were measured in the rete mirabile and gas gland epithelium area of the swim bladder of the toadfish Opsanus tau. When the concentration of enzyme in the swim bladder was compared with the concentration in other organs (kidney, heart, gills) of the same fish, the swim bladder was found to have the highest concentration of superoxide dismutase but relatively low levels of glutathione peroxidase and catalase. Cytochemical assay for the peroxidatic activity of catalase confirmed that virtually no catalase is present in epithelial cells of the gas gland. A similar assay for peroxidase revealed a cyanide-sensitive peroxidase in the multilamellar bodies of these cells. Most of the catalase and peroxidase in the rete mirabile appears to be confined to the granules of neutrophils and the cytoplasm of erythrocytes. Enzyme activity in the neutrophils is not inhibited by 10(-1) M KCN. Cyanide does not appear to inhibit the peroxidase activity in erythrocytes but has little effect on catalase in these cells.

Air Sacs↗

A quantitative study of peroxidase activity in unfixed tissue sections of the guinea-pig thyroid gland.

A technique for the cytochemical demonstration of peroxidase activity in unfixed guinea-pig thyroid tissue is described in this paper. The substrate 3,3'-diaminobenzidine tetrahydrochloride (DAB) is oxidized by the peroxidase to form an insoluble reaction product. Optimal results were obtained after 20 min incubation at 37 degrees C in reaction medium containing 1.4 mM DAB (in 0.1 M Tris-HCl) and 0.15 mM hydrogen peroxide at pH 8.0. Peroxidase activity was seen in the thyroid follicle cells as a diffuse brown reaction product (which was more dense and granular in erythrocytes). The enzyme activity was quantified using a scanning-integrating microdensitometer, and the effects of two specific peroxidase inhibitors were evaluated. Both 3-amino-1,2,4-triazole and methimazole inhibited peroxidase activity in the follicle cells (enzyme activity was still seen in the erythrocytes), maximal inhibition occurring at 10 mM. Stimulation of peroxidase in the thyroid was observed in vivo (1 I.U. TSH administered every 8 h for two days), with the maximal stimulation occurring after 1 day.

3,3'-Diaminobenzidine↗

The distribution of peroxidases in the sciatic nerves of normal and hexachlorophene intoxicated developing rats.

Horseradish peroxidase (mol. wt. 40 000) or microperoxidase (mol. wt. 1900) were injected over the sciatic nerve of normal or hexachlorophene (HCP) intoxicated developing rats (3,7,14 and 21 days). Light and electron microscopic studies of nerves after histochemical staining for peroxidase revealed: a) the perineurial barrier to the two peroxidases was established in 21 day normal and HCP intoxicated rats; b) in animals 3-14 days, the perineurial barrier to both peroxidases was not formed and peroxidase staining was observed in the periaxonal space and in the space between paranodal loops of myelin; c) intramyelinic vacuoles, induced by HCP in animals 7-14 days did not show peroxidase staining. HCP-induced intramyelinic vacuolation is due to the separation of the myelin lamellae at the intraperiod line; although these vacuoles are potential extensions of the extracellular space, they are not stained with the extracellular markers horseradish or microperoxidase.

Age Factors↗

[Thermal inactivation and storage behavior of technologically important enzymes. III. Effect of reagents added to peroxidase and lipoxygenase].

The influence of milieu factors on the thermal inactivation of peroxidase and lipoxigenase was investigated. Cationogenic, anionogenic, non-ionogenic and amphoteric tensides were more or less effective in inactivating horseradish peroxidase. Most effective in this respect were lecithine and monoglyceride, both capable of swelling in water. In presence of lecithine, peroxidase was inactivated already at 0 degrees C and pH 4.0. Linoleic acid was more efficient in an oxygen stream than in presence of nitrogen, in a stream of nitrogen its influence was comparable to oleic acid. This suggests an additional effect by lipid peroxides which are formed of linoleic acid under the heating process. Tensides prevented the regeneration of the heated peroxidase. In the case of lipoxigenase, the authors investigated the influence of lecithine and various fatty acids on the thermal inactivation at 60 degrees and pH 7.0. Lecithine accelerated the inactivation less distinctly than with peroxidase. The accelerated the inactivation less distinctly than with peroxidase. The accelerating effect of the fatty acids decreased in the order oleic acid, linoleic acid, palmitic acid, myristic acid and stearic acid.

Drug Stability↗

Molecular biology and application of plant peroxidase genes.

Peroxidases are a family of isozymes found in all plants; they are heme-containing monomeric glycoproteins that utilize either H(2)O(2) or O(2) to oxidize a wide variety of molecules. These important enzymes are used in enzyme immunoassays, diagnostic assays and industrial enzymatic reactions. Peroxidase genes and their promoters can be used for molecular breeding of useful plants. Transgenic techniques have also been used to investigate the physiological and molecular functions of peroxidase genes in plants. Here, we review transgenic studies of peroxidase genes, including the functional analyses of the enzymes and their promoters. Regarding application of peroxidase genes, it has been reported that overexpression of the tomato TPX2 gene or the sweet potato swpa1 gene conferred increased salt-tolerance or oxidative-stress tolerance, respectively. The growth stimulation effect in transgenic tobacco and hybrid aspen upon overexpression of horseradish peroxidase gene is also discussed.

Enzyme Induction↗

Mechanism of horseradish peroxidase-catalyzed oxidation of malonaldehyde.

The mechanism of malonaldehyde oxidation by horseradish peroxidase in the presence of manganese(II) and acetate was investigated. Our results show that an apparent oxygenase behavior demonstrated by peroxidase in this system can be explained in terms of normal peroxidase activity. A free radical is generated from the reaction of malonaldehyde with compounds I and II of peroxidase; this radical is scavenged by dissolved molecular oxygen to give the appearance of peroxidase acting as an oxygenase. Oxygen consumption, absorbance spectra, and kinetic results show that the reaction is initiated by autoxidation of malonaldehyde to give a free radical. The radical reacts with oxygen and through the action of manganese(II), a peroxide is generated. This peroxide drives the peroxidase cycle to generate more free radicals which propagate the oxygen consumption reaction.

Acetates↗

The characterization of n-butanol-pseudosolubilized and trypsin-solubilized porcine thyroid iodide peroxidase.

Porcine thyroid peroxidase (Iodide: hydrogen-peroxide oxidoreductase, EC 1.11.1.8) was solubilized by proteolytic and non-proteolytic procedures. A kinetic and physical study was undertaken to ascertain the catalytic properties of the peroxidase prepared by the two purported solubilization procedures. Where possible, the properties of the two enzyme preparations were compared with the original microsomal preparation. The n-butanol-solubilized thyroid iodide peroxidase is not truly soluble, but exists as a large molecular weight lipoprotein aggregate. The trypsin-solubilized thyroid iodide peroxidase is truly soluble, active, and contains lipids. The microsomes, butanol-pseudosolubilized enzyme, and trypsin-solubilized enzyme have similar kinetic properties such as pH optima, Km for iodide and H2O2, sigmoid character of the saturation curves, substrate inhibition, and inhibition by 3,5-diiodotyrosine. Since the proteolytic solubilization procedure produced a soluble peroxidase with catalytic properties similar to the microsomal preparation, trypsin-solubilized peroxidase can be studied with reasonable assurance that its properties are essentially unaltered and are not artifacts of the solubilization procedure.

Animals↗

Peroxidase catalysed formation of prostaglandins from arachidonic acid.

Horseradish peroxidase and bovine lactoperoxidase (EC 1.11.1.7), when incubated aerobically with arachidonate, gave rise to the formation of substances identified by bioassay as prostaglandin F2 alpha (PGF2 alpha)- and prostaglandin E2 (PGE2)-like compounds. Boiling of enzymes, which suppressed their capacity to peroxidize guaiacol, also destroyed their capacity to convert arachidonate into PG-like compounds. The rates of formation of PG-like compounds rapidly declined with time, approaching zero after 10 and 20 min for PGE2 alpha- and PGE2-like compounds, respectively. Addition of more enzyme further promoted the reaction. Horseradish and lacto-peroxidases showed optimum pH values of 9.0 and 10.0, respectively. Both enzymes exhibited apparent Km values of about 5 x 10(-5) M for arachidonate. Some reducing agents such as ascorbic acid, NADH and adrenaline dose-dependently inhibited this reaction. The haem poison, phenylhydrazine, also inhibited, with an IC50 of 1 x 10(-7) M. Indomethacin inhibited only the formation of PGE2-like compounds with an IC50 of about 3 x 10(-6) M. As compared to a standard commercial preparation of horseradish peroxidase, the purified horseradish basic and acidic isoenzymes exhibited a higher activity, towards arachidonate whereas other haemoproteins, possessing peroxidase activity, were less active. TLC and GC-MS analyses performed on the reaction products led to the identification of PGF2 alpha, PGE2 and PG6K1 alpha and other unidentified arachidonate derivatives. At 25 degrees, pH 9.5, horseradish peroxidase, acting on saturating concentration of arachidonate, catalysed the formation of 60 mumol/min/mmole enzyme of PGE2 + PGF2 alpha. This appears to be the first report of the synthesis of prostaglandins catalysed by peroxidases.

Arachidonic Acid↗

Nonsteroidal antiinflammatory drugs interact with horseradish peroxidase in an in vitro assay system for hydrogen peroxide scavenging.

The established horseradish peroxidase/guaiacol in an in vitro assay system was used for investigation of the reactivity of nonsteroidal antiinflammatory drugs with hydrogen peroxide. Although the drugs rapidly seemed to react in the selected conditions, difficulties were encountered in attempts to quantify the reaction and an interaction with horseradish peroxidase was suspected. A more specific assay system based on the absolute specificity of the enzyme glutathione peroxidase for glutathione was subsequently used which demonstrated that none of the investigated nonsteroidal antiinflammatory drugs was able to scavenge hydrogen peroxide. An original procedure to further evidence the interaction was developed thereafter, based on the reaction of 5-aminosalicylic acid with similar hemoproteins. This led to the demonstration that nonsteroidal antiinflammatory drugs were substrates for horseradish peroxidase and explained their reactivity in the horseradish peroxidase/guaiacol assay system. The compound 5-aminosalicylic acid showed an unusual behaviour that was attributed to its ability to both scavenge hydrogen peroxide and interact with horseradish peroxidase. It was concluded that the lack of specificity of horseradish peroxidase for its donor substrate may lead to erroneous results in assays for hydrogen peroxide scavenging of some drugs. An alternative method is however available and a simple spectroscopic assay can evidence the interaction with horseradish peroxidase.

Anti-Inflammatory Agents, Non-Steroidal↗

Peroxidase activity in rat tracheal epithelium and gland.

Endogenous peroxidase activity in the upper tracheal epithelium and submucosal gland of specific pathogen-free rats was examined cytochemically using the DAB method in animals bred in a conventional room without special equipment for air filtration (conventional system), and those bred under a semibarriered system in which fresh air was filtered and controlled to flow in one way (semibarriered system). Peroxidase activity was consistently positive in the serous cells of the gland of all the rats in both groups. In 22 (71.0%) of the 31 rats in the conventional system, peroxidase activity was demonstrated also in ciliated cells, mucous cells, and goblet cells of the tracheal epithelium, and in mucous cells and duct cells of the tracheal submucosal gland. However, the activity was detected in these cells only in 2 (6.7%) of the 30 rats in the semibarriered system. Goblet cells were not observed in the latter group of rats. The fine localization of peroxidase activity was similar among the peroxidase positive cells, and was demonstrated in the cisternae of the nuclear envelope and rough-surfaced endoplasmic reticulum, some parts of Golgi apparatus, secretory granules, and in some cases in the intraductal spaces of the gland. The present study indicated that environmental conditions markedly influence peroxidase activity in the upper tracheal epithelium and gland of rats.

Air Conditioning↗

The conjugation of testosterone with horseradish peroxidase and a sensitive enzyme assay for the conjugate.

The formation of a horseradish peroxidase-testosterone conjugate for the enzyme-linked immunoassay of testosterone was investigated, using tritiated testosterone to follow the reaction. The formation of testosterone-3-(carboxymethyl) oxime-peroxidase by the mixed anhydride method was found to give a conjugate of high enzymatic activity and with three molecules of testosterone per molecule of peroxidase. The optimum conditions for the assay of peroxidase activity were studied and an assay capable of measuring 1 to 5 ng of the conjugate developed; the standard curve being virtually linear. The stability of the conjugate in solution and the effect of lyophilisation on enzymatic activity are also described. The peroxidase-testosterone conjugate was suitable for enzyme-linked immunoassay and the quantities measurable with the peroxidase assay covered the range necessary for a plasma testosterone assay. The stability of the conjugate was such that no particular precautions were necessary for its storage.

Aminosalicylic Acids↗

In vitro synthesis of glutathione peroxidase from selenite. Translational incorporation of selenocysteine.

The synthesis of glutathione peroxidase from [75Se]selenite was studied in slices and cell-free extracts from rat liver. The incorporation of [75Se]selenocysteine at the active site was detected by carboxymethylation and hydrolysis of partially purified glutathione peroxidase (glutathione:hydrogen peroxide oxidoreductase, EC 1.11.1.9) in the presence of [3H]selenocysteine and subsequent amino acid analysis. The synthesis of glutathione peroxidase in slices was inhibited by cycloheximide or puromycin and 75Se was incorporated from [75Se]selenite into free selenocysteine and selenocysteyl tRNA. Increasing concentrations of selenocystine caused a progressive dilution of the 75Se and a corresponding decrease in glutathione peroxidase labeling. In cell-free systems, [75Se]selenocysteyl tRNA was the best substrate for glutathione peroxidase synthesis. These results indicate the existence in rat liver of the de novo synthesis of free selenocysteine and a translational pathway of selenocysteine incorporation into glutathione peroxidase.

Animals↗

Adaptation to hyperoxia in the neonatal rat: kinetic parameters of the oxygen-mediated induction of lung superoxide dismutases, catalase and glutathione peroxidase.

The activities of the enzymes superoxide dismutase, catalase and glutathione peroxidase increase in the lungs of neonatal rats exposed to normobaric hyperoxia. The oxygen-mediated increase in activity of these enzymes, known from previous studies to be an inductive response, was studied in 10- and 25-day-old rats as a function of both oxygen concentration and length of time of exposure to greater than 95% oxygen. In the lungs of 10-day-old rats the increase in superoxide dismutase, catalase, and glutathione peroxidase occurs only at 80% ambient oxygen or greater. In 25-day-old rats a similar pattern of response occurs with pulmonary catalase and glutathione peroxidase. However, unlike the response in 10-day-old rats, pulmonary superoxide dismutase does not increase in oxygen-exposed 25-day-old rats. The time course of enzyme induction was different for 10-day-old rats compared with 25-day-old rats. Exposure of 10-day-old rats to 95+% oxygen resulted in a significant increase in activity of superoxide dismutase after only 4 h when compared with air-exposed control animals. Catalasee and glutathione peroxidase in the same age group increased significantly after 6 h and 12 h of exposure to oxygen, respectively. Maximal levels of superoxide dismutase, catalase and glutathione peroxidase were reached after 6, 12 and 24 h of exposure to hyperoxia, respectively. This level of activity was then maintained throughout the subsequent exposure time up to 96 h. The activity of pulmonary catalase and glutathione peroxidase in 25-day-old rats did not increase significantly after 6 h of exposure to hyperoxia. An apparent plateau of increased activity was reached after 24 h of exposure. As observed with the 3 enzymes in 10-day-old rats, maximal enzyme activities were maintained throughout the subsequent period of oxygen exposure up to 96 h.

Adaptation, Physiological↗