Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “CATALASE”

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 1,081 records · Page 60Linked to original sources

Pesticide/herbicide pollutants in the Kafue River and a preliminary investigation into their biological effect through catalase levels in fish.

The study determined the types of pesticide/herbicide pollutants in water, sediment and fish from the Kafue River. A preliminary investigation of the oxidative stress from these pesticides/herbicides was also assessed by measurement of catalase activity. Water, sediment and fish samples were collected upstream, midstream and downstream the Kafue river in Chingola, Kitwe, Kafue National Park and Kafue Town. Water, sediment and fish muscle were sampled and analysed for pesticides using Gas chromatography. For catalase activity fish liver samples only were examined. The pesticides/herbicides detected in all samples collectively included: Heptachlor, pp'-DDE, Cypermethrin, Chlordane, Toxaphene, Terbufos, Kelthane, Endosulfan, Dieldrin, pp'-DDD, pp'-DDT, Atrazine, Disulfoton, d-trans-Allethrin and Endrin. On the other hand, catalase activity was detected in all fish liver samples from all sites. Its levels increased significantly from Chingola upstream to sites downstream with highest being in Kafue town. This study therefore, demonstrates that there is widespread contamination of the Kafue River with pesticides/ herbicides. It also demonstrates that organochlorides are found throughout the river especially in fish samples. The spectrum of pesticides/herbicides was much wider in fish probably due to bioaccumulation. It was also observed that fish are subjected to oxidative stress as determined by catalase levels. The stress is more pronounced downstream where the catalase levels were significantly higher than Chingola. The observation that more pesticide varieties are also found downstream may suggest a likely causative effect of the pesticides on oxidative stress although this needs further investigation. This study further tentatively highlights the potential dangers of these agro-related substances to dependants of the Kafue River water body and the need to carry out risk assessments and thereafter institute corrective measures to help reduce contamination and adverse effects.

Animals↗

Recovery of the neonatal heart after normothermic ischemia. Effect of oxygen and catalase.

The objective of this study was to determine the effect of oxygen and the oxygen radical-scavenging enzyme catalase on the neonatal rabbit heart exposed to global ischemia. The experiments were performed with an isolated neonatal (7 to 10 days of age) working heart model in which normothermic (37 degrees C) ischemia was produced for 60 minutes. Left ventricular developed pressure, ratio of change of ventricular pressure to change in time, and aortic flow were measured before ischemia and 30 minutes after reperfusing the hearts with physiologic saline solution. In the control group (ischemia only), developed pressure and ratio of change of ventricular pressure to change in time recovered to 27% +/- 3% (mean +/- standard error of the mean) and 24% +/- 7% of baseline; the hearts were incapable of ejecting (aortic flow = 0). Treatment of hearts before and after ischemia with catalase (150 units/ml of perfusate) was studied in a second group (control plus catalase), but functional recovery (developed pressure = 32% +/- 1%; ratio of change of ventricular pressure to change in time = 24% +/- 2%, and aortic flow = 0) was not significantly different from the control group. The effect of washout midway through the ischemic period with a low oxygen (oxygen concentration less than 35 mm Hg) solution was measured in a third group (hypoxic physiologic saline solution). Functional recovery (developed pressure = 13% +/- 3%; ratio of change of ventricular su pressure to change in time = 13% + 2%; aortic flow = 0) was not significantly different from the control and control plus catalase groups. In marked contrast were the effects of washout with an oxygenated (oxygen concentration greater than 500 mm Hg) solution (oxygenated physiologic saline solution) in which functional recovery (developed pressure = 78% +/- 3%; ratio of change of ventricular pressure to change in time = 80% +/- 3%; aortic flow = 39% +/- 9%) was significantly better than in the control, control plus catalase, and hypoxic physiologic saline solution groups. Use of modified St. Thomas' Hospital cardioplegic solution (cardioplegic solution group) during the ischemic period also resulted in substantial functional recovery (developed pressure = 80% +/- 3%; ratio of change of ventricular pressure to change in time = 78% +/- 5%; aortic flow = 64% +/- 7%) that did not differ significantly from that in the oxygenated physiologic saline solution group.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Significance of catalase in peroxisomal fatty acyl-CoA beta-oxidation.

Catalase activity was inhibited by aminotriazole administration to rats in order to evaluate the influence of catalase on the peroxisomal fatty acyl-CoA beta-oxidation system. 2 h after the administration of aminotriazole, peroxisomes were prepared from rat liver, and the activities of catalase, the beta-oxidation system and individual enzymes of beta-oxidation (fatty acyl-CoA oxidase, crotonase, beta-hydroxybutyryl-CoA dehydrogenase and thiolase) were determined. Catalase activity was decreased to about 2% of the control. Among the individual enzymes of the beta-oxidation system, thiolase activity was decreased to 67%, but the activities of fatty acyl-CoA oxidase, crotonase and beta-hydroxybutyryl-CoA dehydrogenase were almost unchanged. The activity of the peroxisomal beta-oxidation system was assayed by measuring palmitoyl-CoA-dependent NADH formation, and the activity of the purified peroxisome preparation was found to be almost unaffected by the administration of aminotriazole. The activity of the system in the aminotriazole-treated preparation was, however, significantly decreased to 55% by addition of 0.1 mM H2O2 to the incubation mixture. Hydrogen peroxide (0.1 mM) reduced the thiolase activity of the aminotriazole-treated peroxisomes to approx. 40%, but did not affect the other activities of the system. Thiolase activity of the control preparation was decreased to 70% by addition of hydrogen peroxide (0.1 mM). The half-life of 0.1 mM H2O2 added to the thiolase assay mixture was 2.8 min in the case of aminotriazole-treated peroxisomes, and 4 s in control peroxisomes. The ultraviolet spectrum of acetoacetyl-CoA (substrate of thiolase) was clearly changed by addition of 0.1 mM H2O2 to the thiolase assay mixture without the enzyme preparation; the absorption bands at around 233 nm (possibly due to the thioester bond of acetoacetyl-CoA) and at around 303 nm (due to formation of the enolate ion) were both significantly decreased. These results suggest that H2O2 accumulated in peroxisomes after aminotriazole treatment may modify both thiolase and its substrate, and consequently suppress the fatty acyl-CoA beta-oxidation. Therefore, catalase may protect thiolase and its substrate, 3-ketoacyl-CoA, by removing H2O2, which is abundantly produced during peroxisomal enzyme reactions.

3-Hydroxyacyl CoA Dehydrogenases↗

[Peroxidase activity of catalase with respect to aromatic amines].

The catalase dissociation into subunits has been studied at pH less than 3.5 and greater than 11.0. This process is characterized by pseudo-first order rate constants, depending on the initial concentrations of the enzyme and H+. At pH 2.85, the steady-state kinetics of five aromatic amines oxidation by catalase monomers has been studied for orthodianisidine (o-DA), 3,5,3',5'-tetramethylbenzidine (TMB), ortho- and para-phenylene diamine (p-PDA) and 5-aminosalycilic acid. The optimal substrates for catalase in acidic solutions are o-DA, TMB and p-PDA. A comparison has been carried out for the catalase peroxidative activity, and the catalytic characteristics of horseradish peroxidase in the oxidation of the same substrate. The mechanisms of peroxidatic amines oxidation by catalase and horseradish peroxidase are discussed.

Amines↗

[Peroxidase activity of succinylated catalase].

The catalase succinylation by succinic anhydride excess results in an almost complete dissociation of the enzyme into subunits possessing no catalase activity. The catalase subunits show the peroxidatic activity on o-dianisidine oxidation. The oxidation kinetics of this substrate by the succinylated enzyme was studied at various temperatures. The activation energy for this process is 10.1 kcal/mole. Within the temperature range of 31-65.5 degrees, the succinylated enzyme thermostability was studied by monitoring the peroxidatic activity decrease upon o-dianisidine oxidation. The activation energy for the succinylated catalase thermoinactivation equals to 15.5 kcal/mole. The peroxidatic activity of catalase subunits obtained by enzyme succinylation and acidic solution treatment was compared to that of horseradish peroxidase in the oxidation of the same substrate, i.e., o-dianisidine.

Animals↗

Deficiency in the catalase activity of xeroderma pigmentosum cell and simian virus 40-transformed human cell extracts.

It has been previously shown that skin biopsies isolated from various xeroderma pigmentosum (XP) patients present a permanent decline in catalase activity from the onset of the disease to the tumor formation. We report here that cultured XP cell strains are also markedly deficient in the catalase activity with about only 25% of the activity measured in normal human cells. No direct correlation between catalatic activity and excision repair ability has been found, since a XP variant line is as deficient as an XP-C strain. The exact cause of the catalase deficiency is still unknown but could be due to the synthesis of a modified enzyme or to an abnormal regulation leading to a limited enzyme synthesis. Furthermore, simian virus 40 transformation of normal and radiosensitive cells (XP, ataxia telangiectasia) provokes a decrease in catalase activity of about 80% compared to the control derivatives. Mathematical analysis performed on our data shows a clearcut distinction between XP and normal cells while some of the XP heterozygote cells exhibit an intermediate behavior. Although most of the XP syndrome could be explained by the impairment in the excision repair ability, the decrease in catalase activity leading to a probable increase in intracellular H2O2 concentration and/or to a higher sensitivity to any oxygen-activated species could represent an additive effect in inducing the carcinogenic process.

Acatalasia↗

Immunocytochemical analysis of soluble epoxide hydrolase and catalase in mouse and rat hepatocytes demonstrates a peroxisomal localization before and after clofibrate treatment.

The intracellular localization of soluble epoxide hydrolase and catalase was investigated in hepatocytes from untreated and clofibrate-treated male C57B1/6 mice and from untreated male Sprague-Dawley rats. Polyclonal rabbit antibodies directed against purified mouse liver cytosolic epoxide hydrolase and rat liver catalase were used and their specificity ascertained by Ouchterlony immunodiffusion and immunoblotting. The IgG fraction was purified and incubated with cryosections of isolated hepatocytes or liver tissue, priorly fixed in 4% paraformaldehyde, and protein-A gold conjugates were used to visualize the antigen-antibody reaction. The soluble form(s) of epoxide hydrolase was found to be localized in the matrix of peroxisomes in hepatocytes from normal and clofibrate-treated mice and normal rats. No significant reactivity was found against plasma membrane, nuclei, mitochondria, the Golgi apparatus, endoplasmic reticulum, lysosomes, or cytosol. Catalase was also localized to peroxisomes in all samples investigated. Accordingly, both the catalase and the epoxide hydrolase activities routinely recovered in the high-speed supernatant after subfractionation of rat and mouse liver tissue mostly seemed to be due to extensive matrix leakage from peroxisomes, and this phenomenon may also be found in other species. Rat hepatocytes contained less epoxide hydrolase than mouse hepatocytes, as judged by both immunocytochemical labeling and biochemical data. Clofibrate treatment of mice decreased the labeling density of epoxide hydrolase and catalase in hepatocytes peroxisomes, as expected, and more unlabeled peroxisomes were observed.

Animals↗

The effect of superoxide dismutase and catalase on the extended preservation of the ex vivo heart for transplantation.

The applicability of heart transplantation remains limited in part by the inability to preserve the excised heart for long periods of time. Free radical scavengers have been shown to protect the anoxic myocardium by preventing damage to the cell membrane and may, therefore, be effective in extending successful preservation of donor hearts. We perfused 10 sheep hearts for 8 hours in an ex vivo perfusion system. The effect of superoxide dismutase combined with catalase, 60,000 units/L, was studied in five sheep, and five received placebo. Control determinations and determinations after 8 hours of preservation were obtained with the heart perfused with autologous blood at 37 degrees C at an aortic perfusion pressure of 60 mm Hg and flow of 180 to 200 ml/min. After control readings, the hearts were arrested and perfused with a cold (6 degrees to 8 degrees C) oxygenated buffered crystalloid solution with or without superoxide dismutase and catalase at a perfusion pressure of 30 cm H2O for 8 hours. Left and right ventricular compliance was measured sequentially with separate intraventricular balloons. After 8 hours of ex vivo preservation, hearts receiving superoxide dismutase and catalase had significantly better left and right ventricular performance, higher myocardial oxygen consumption, and lower lactate production than the control group. The hearts preserved with superoxide dismutase and catalase showed significantly better left and right ventricular compliance, much less increase in heart weight, and no change in the diastolic pressures. The results suggest that superoxide dismutase combined with catalase may be effective in extending ex vivo preservation of hearts for cardiac transplantation.

Animals↗

Effect of endogenous glutathione, superoxide dismutases, catalase, and glutathione peroxidase on adriamycin tolerance of Chinese hamster ovary cells.

Based on the concept that activated oxygen species are causally involved in Adriamycin toxicity, endogenous antioxidant defenses are expected to be important determinants of cellular Adriamycin tolerance. We have tested this prediction by making use of an oxygen-resistant variant subline of Chinese hamster ovary cells (CHOr), which is characterized by increased levels of glutathione, copper- and zinc-containing superoxide dismutase, manganese-containing superoxide dismutase, catalase, and glutathione peroxidase. The levels of antioxidant defenses in wild-type CHO (CHOs) cells were within the range reported for human tumor cell lines, except for catalase, which was comparatively high. Oxygen-tolerant CHOr cells, which contained 4.3-fold more catalase activity than CHOs cells, were proportionally more resistant to H2O2, indicating that catalase activity in wild-type CHOs cells was still limiting H2O2 tolerance. The Adriamycin sensitivity of CHOs cells was compared to that of CHOr cells by clonogenic cell survival. After correcting for differential drug uptake in CHOs and CHOr cells, no significant difference in Adriamycin sensitivity could be detected. Furthermore, drug-induced cyanide-resistant oxygen consumption and electron spin resonance data indicated that both cell strains were equally efficient in reducing Adriamycin to its semiquinone radical and in generating activated oxygen species through oxidation-reduction cycling. These results indicate that Adriamycin tolerance of wild-type CHO cells, as determined by clonogenic cell survival, is not limited by endogenous glutathione, copper- and zinc-containing superoxide dismutase, manganese-containing superoxide dismutase, catalase, or glutathione peroxidase.

Animals↗

Superoxide dismutase and catalase of calf trabecular meshwork.

Superoxide dismutase and catalase activities have been measured in cell-free extracts of calf trabecular meshwork, and for comparison, in calf iris, retina, lens, liver, and erythrocytes. Gel electrophoresis has been used to identify isozymes of each enzyme. The superoxide dismutase and catalase activities per milligram wet weight of calf trabecular meshwork, 0.184 and 0.884 U/mg wet wt, respectively, were comparable to those found in iris and retina, and much higher than those found in lens. Three isozymes of superoxide dismutase were identified in trabecular meshwork. Two of these presumably correspond to cytoplasmic superoxide dismutase, while the third corresponds to a mitochondrial isozyme. A presumably mitochondrial superoxide dismutase activity was also observed in iris and retina, but not in lens. A single catalase isozyme was found in all tissues examined. At physiologic H2O2 concentrations, catalase may have similar levels of activity to glutathione peroxidase. Superoxide dismutase, catalase, and glutathione peroxidase may constitute an important defense mechanism of trabecular meshwork against the toxic O2-. and H2O2 to which it must be continuously exposed from endogenous production as well as from the aqueous humor.

Animals↗

The localization of catalase in the pulmonary alveolar macrophage.

A combined biochemical and cytochemical study of catalase was performed on alveolar macrophages lavaged from the lungs of adult male rats. Biochemically, catalase activity was present in both a high-speed granule fraction and in the supernatant. The granule-associated activity exhibited latency. Two methods of cell breakage, sonication and homogenization, yielded similar levels and distributions of catalase activity. Catalase activity in whole cells was identified cytochemically by the alkaline diaminobenzidine method and was localized within membrane-lined cytoplasmic granules similar in size to microperoxisomes and associated with cisternae of smooth endoplasmic reticulum. Localization of the reaction product was inhibited by 0.04 M aminotriazole, by cyanide, and by boiling prior to incubation. The cytochemical reaction continued in the absence of exogenous peroxide, but could be prevented by addition of catalase or pyruvate to the peroxide-free medium. Enzyme activity was also localized within a portion of the membrane-bound granules present in the cell fractions used for the biochemical assays.

Amitrole↗

Increased myocardial catalase in rats fed ethanol.

The effects of chronic intake of dietary ethanol upon catalase, an enzyme capable of metabolizing ethanol, as well as upon myocardial morphology and hemodynamics, were studied in the rat. Ethanol, comprising 36% of dietary calories, administered to rats for 5 weeks, was associated with increased myocardial catalase of 45.9 +/- 3.7 IU/mg protein, compared to 21.0 +/- 1.8 IU/mg protein in pair-fed controls. The enzyme activity remained significantly elevated after 18 weeks of ethanol. Hepatic catalase did not differ in these groups. Parallel cytochemical studies confirmed the increase in myocardial catalase by demonstrating an increase in peroxisomes. Gross and light-microscopic examinations revealed no abnormalities at either 5 or 18 weeks. Remarkably few ultrastructural abnormalities were seen in this material fixed by vascular perfusion. Hemodynamic studies after 5 weeks of ethanol revealed decreased left ventricle systolic pressure and decreased mean arterial pressure but no change in ventricular filling pressure. The possibility of catalase playing a metabolic and potentially protective role in rat myocardium chronically exposed to ethanol is discussed.

Animals↗

Catalase and superoxide dismutase in Escherichia coli.

We assessed the roles of intrabacterial catalase and superoxide dismutase in the resistance of Escherichia coli to killing by neutrophils. E. coli in which the synthesis of superoxide dismutase and catalase were induced by paraquat 10-fold and 5-fold, respectively, did not resist killing by neutrophils. When bacteria were allowed to recover from the toxicity of paraquat for 1 h on ice and for 30 min at 37 degrees C, they still failed to resist killing by neutrophils. Induction of the synthesis of catalase 9-fold by growth in the presence of phenazine methosulfate did not render E. coli resistant to killing by either neutrophils or by H2O2 itself. The lack of protection by intrabacterial catalase from killing by neutrophils could not be attributed to an impermeable bacterial membrane; the evolution of O2 from H2O2 was no less rapid in suspensions of E. coli than in lysates. The failure of intrabacterial catalase or superoxide dismutase to protect bacteria from killing by neutrophils might indicate either that the flux of O-2 and H2O2 in the phagosome is too great for the intrabacterial enzymes to alter or that the site of injury is at the bacterial surface.

Catalase↗

[Inactivation and degradation of rat liver catalase by mitochondrial and lysosomal proteinases].

The initial phases of catalase degradation in rat hepatocytes were studied. Preparations of highly purified fractions of lysosomes and mitochondria from rat liver were obtained. The proteinase activity was measured by the radio-isotope method by the increase of the free amino groups or by the decrease of the catalase activity, using labelled catalase as a substrate. It was found that the initial step of catalase degradation occurs in the enzyme localized in the inner membrane as well as in the mitochondrial matrix and that the total degradation of catalase is completed in the lysosomal fraction of rat liver.

Animals↗

Isolation of human fibroblast catalase cDNA clones. Sequence of clones derived from spliced and unspliced mRNA.

We report the isolation and sequence of partial cDNA clones coding for human catalase. These clones were recovered from a human fibroblast cDNA library by screening with mixtures of oligonucleotide probes deduced from the amino acid sequence of human erythrocyte catalase. A comparison of their nucleotide sequence with the known protein sequence and mapping of homologous DNA sequences to the short arm of chromosome 11 in somatic cell hybrids confirmed that they coded for catalase. One of these clones contained a 462-base insertion interrupting the coding sequence with stop codons in all three reading frames. The 5' and 3' ends of the insertion correspond to the donor and acceptor consensus sequences of introns. Inspection of clones lacking the insertion confirm the location of the splice sites. We suggest this clone corresponds to the product of reverse transcription of an unspliced mRNA species. The catalase gene is the closest genetic marker mapped to Wilms tumor, one of the most prevalent of childhood cancers. Catalase cDNA probes will be useful to the examination of mitotic recombination in the etiology of this disease and may provide a useful starting point to the search for the putative Wilms tumor gene.

Amino Acid Sequence↗

[Spectral properties of the prosthetic group of Penicillium vitale catalase].

Differences in the absorption spectrum of the Penicillum vitale catalase in the visible region as compared to the absorption spectrum for catalase of animal origin are established to be due to the prosthetic group of the enzyme. A molecule of P. vitale catalase is determined to contain 0.051 +/- 0.0003% of iron. It corresponds to two iron atoms per enzyme molecule and to a twice as low content of iron as in a molecule of the bovine liver catalase. An assumption is advanced that the P. vitale catalase contains two hemin groups located in two protein subunits.

Catalase↗

Purification and characterization of a rat liver ferroactivator with catalase activity.

A rat liver protein with both phosphoenolpyruvate carboxykinase ferroactivator activity and catalase activity has been purified to near-homogeneity. The protein has a native molecular weight of 240,000 and is composed of four identical subunits containing ferriprotoporphyrin IX prosthetic groups. The visible spectrum has absorbance maxima at 403, 500, 530, and 620 nm; it is not reduced by dithionite. The spectrum, physical properties, and specific activity are almost identical with those of catalases from other sources, and the protein has been tentatively identified as rat liver catalase. The protein exhibited partial reactivity in double immunodiffusion plates to antiserum prepared against rat liver ferroactivator isolated by a previous method (Bentle, L. A., and Lardy, H. A. (1977) J. Biol. Chem. 252, 1431-1440) raising the possibility that the original ferroactivator and rat liver catalase are structurally related. Inactivation of catalase by 3-amino-1,2,4-triazole was accompanied by loss of ferroactivator activity as well. The apparent specific activity of ferroactivator, as well. The apparent specific activity of ferroactivator, whether heme-containing or not, can be increased between 2- and 100-fold by the inclusion of bovine serum albumin, HCO3-, or a combination of the two in the incubation.

Amino Acids↗

Kringle 4 of human apolipoprotein[a] shares a linear antigenic site with human catalase.

Monoclonal antibody (mab) 1A2, directed against human apolipoprotein[a] (apo[a]), revealed a strong reaction with peroxisomes as shown by immuno-gold labeled cryosections of human liver biopsies. This reactivity was not due to the presence of apo[a] in peroxisomes but to a cross-reactivity of mab 1A2. Immunoblot analysis of peroxisomal fractions and purified human catalase demonstrated that mab 1A2 reacts with catalase. Conversely, an anti-catalase antibody also recognized apo[a]. By sequence comparison we identified a 4-amino acid motif (Y-Y-P-N) that is shared between the highly repetitive kringle 4 motif of apo[a] and the carboxy-terminal third of the peroxisomal marker enzyme catalase. No other identical sequences were identified in these proteins. Results from the following experiments indicated that 1A2 recognizes this short linear epitope. i) Mab 1A2 reacted only with the 4 amino acid peptide sequence in a pin-ELISA using immobilized overlapping peptides. ii) A synthetic peptide including this sequence completely inhibited the 1A2 immunoreactivity to apo[a] and catalase. iii) A recombinant fusion protein tagged with the putative epitope was recognized by mab 1A2. Our findings demonstrate that unknown linear epitopes in native proteins can be identified by sequence comparison between known proteins. The practical implication is that antibodies against apo[a] must be controlled for this cross-reactivity before using them for immunohistochemical studies of intracellular apo[a] in tissues or cells.

Amino Acid Sequence↗