• Title/Summary/Keyword: glutathione peroxidase

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Effect of Garlic on the Hepatic Glutathione S-Transferase and Glutathione Peroxidase Activity in Rat - garlic effect on the glutathione S- transferase and glutathione peroxidase

  • Huh, Keun;Park, Jong-Min;Lee, Sang-Il
    • Archives of Pharmacal Research
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    • v.8 no.4
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    • pp.197-203
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    • 1985
  • It was attempted to observe the effect of garlic on the hepatic glutathione s-transferase and glutathione peroxidase activity in this study. Glutathione s-transferase (EC 2.5.1.18) are thought to play a physiological role in initiating the detoxication of potential alkylating agents, inclnding pharmacologically active compounds. Glutathione peroxidase (EC 1. 11. 1. 9) might play an important role in the protection of cellular structures against oxidative challenge. The activities of glutathione s-transferase and glutathione peroxidase in rat liver were increased by the treatment of garlic juice. Allicin fraction, heat-treated allicin fraction and garlic butanol fraction markedly inhibited glutathione s-transferase activity in vitro, whereas glutathione peroxidase activity was significantly increased in heat-treated allicin fraction and garlic butanol fraction.

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Effects of Diallyl Disulfide on the Hepatic Glutathione Peroxidase Activity in Rat (흰쥐 간 Glutathione peroxidase 활성에 미치는 Diallyl disulfide의 영향)

  • Huh, Keun;Lee, Sang-Il;Park, Jong-Min
    • The Korean Journal of Pharmacology
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    • v.22 no.2
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    • pp.144-150
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    • 1986
  • Glutathione peroxidase might play an important role in the protection of cellular structures against oxidative challange by hydrogen peroxide and several organic hydroperoxides. It is widely accepted that allicin is biological active component of garlic, and allicin is easily degraded to diallyl disulfide and other components. This study was attempted to elucidate the effect of diallyl disulfide on some biological activities. It was observed that the activity of serum transaminase and glutathione level in liver were not changed by the treatment of diallyl disulfide. The liver cytosolic glutathione peroxidase activity was significantly enhanced. Whereas, mitochondrial enzyme activity was slightly increased. In the presence of diallyl disulfide in vitro, $V_{max}$ value of glutathione peroxidase for hydrogen peroxide was increased. On the other hand, Km value was not changed.

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Purification and Characterization of Glutathione Peroxidase Isolated from Rat Erythrocyte and Histochemical Study of its Localization in Liver of White Rat (흰쥐 적혈구에 있는 Glutathione Peroxidase의 순화 및 성질과 간에서의 용작부위에 대한 조직화학적 연구)

  • 최임순;최춘근
    • The Korean Journal of Zoology
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    • v.29 no.2
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    • pp.141-158
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    • 1986
  • A glutathione peroxidase from white rat (Wistar strain)erythrocytes was partially purified and characterized. In addition, localization of this enzyme in the liver was studied by histochemical method. A glutathione peroxidase was purified approximately 33.5-folds by ammonium sulfate precipitation, Sephadex filtration column and DEAE-Sephadex column chromatography. The optimum temperature of the crude glutathione peroxidase was $40^\\circC$, and the optimum pH was 7.5. This crude glutathione peroxidase was most stable at $30^\\circC$ and the values of Km and Vmax were calculated to be 8.5mM and 15.6 $\\mu$moles/min for glutathione, and 40 $\\mu$M and 10.5 $\\mu$moles/min for hydrogen peroxide, respectively. The molecular weight of this enzyme was estimated by Sephadex G-200 gel filtration to be approximately 90, 000. By electron microscopic examination, histochemical reaction products were microbodies that were prominent in the peripheral parts of the lobule. The reaction products exhibited round shapes, the diameter of which varied $0.2\\sim0.7 \\muM$ and their boundary membranes were not distint.

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The Glutathione Peroxidase, Glutathione Reductase and Glutathione-s-Transferase Activity in Liver, Kidney and Testes of Male Rats Intoxicated by Cadmium Chloride and Effect of Leek(Allium Odorum L. ) (카드뮴에 중독된 웅성 흰 쥐의 간, 신장 및 고환의 Glutathione Peroxidase, Glutathione Reduetase, and Glutathione-s-Transferasea의 활성도와 부추의 효과)

  • 안령미
    • Journal of Environmental Health Sciences
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    • v.18 no.1
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    • pp.76-83
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    • 1992
  • Effect of freeze drying leek against cadmium poisoning on glutathione peroxidase, on glutathione reductase and on glutathione-s-transferase in liver, kidney and testes of the male rats during the administered period. In this experiment, male rats of Sprague-Dawley strain were used. The rats which were fed for 15 weeks were divided into 4 groups basal diet 3% leek added diet basal diet and cadmium in water and 3% leek added diet and cadmium in water. Cadmium was administered ad libitum 100ppm CdCl$_{2}$ in distilled water. The followings are the result of this experiment. 1. Leek enhanced the glutathione peroxidase activities which were reduced by cadmium treatment in liver, kidney and testes but not significance. 2. Leek reduced glutathione reductase activities which were incresed by cadmium in liver, kidney and testes. 3. Leek incresed the activities of glutathfone-s-transferase in liver but not in kidney and but not in testes. 4. Leek incresed glutathione concentration which was decresed by cadmium treatment in liver and kidney but not testes. This experiment showed that leek-addition group had protective effect against cadmium poisoning and alleviated GR and glutathione-s-transferase activities in tissues. Leek incresed activities of glutathione peroxidase in liver, kidney and testes but not significance. Therefore, this experiment concluded that leek defensive power against long term cadmium poisoning.

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Scavenge of superoxide and hydrogen peroxide by bovine intact red blood cells (한우 무손상 적혈구의 superoxide 및 과산화수소 제거능력)

  • Cho, Jong-hoo;Park, Sang-youel
    • Korean Journal of Veterinary Research
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    • v.38 no.2
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    • pp.273-279
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    • 1998
  • The ability of bovine intact red blood cells to scavenge superoxide and hydrogen peroxide by superoxide dismutase, catalase and glutathione peroxidase was investigated. Intact red cells(up to 0.4%) suspensions did not inhibit ferricytochrome c reduction by superoxide in the superoxide generating system. On the other hand, intact red cell(0.4%) suspensions almost completely inhibit ferrocytochrome c oxidation by hydrogen peroxide. The ability of intact red cells to scavenge hydrogen peroxide was mainly attributed to either membrane bound catalase or glutathione peroxidase. The scavenge of hydrogen peroxide by 0.1~0.2% intact red cells showed a trend of dependence on mainly glutathione peroxidase. However, at blood cell concentration higher than 0.3%, the process depended upon peroxidase-independent scavengers like catalase. Enhancement of ferrocytochrome c oxidation by red cells treated with aminotriazole proved that the protection against hydrogen peroxide was due to catalase, while the protection in the presence of glutathione indicated scavenging effect of glutathione peroxidase against hydrogen peroxide.

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Effects of Adriamycin on Cardiac Ultrastructure and Glutathione-Glutathione Peroxidase System in Mouse (Adriamycin이 생쥐 심근 미세구조 및 Glutathione-Glutathione Peroxidase계에 미치는 영향)

  • Park, Won-Hark;Chung, Hyeung-Jae;Kim, Ssang-Yong;Lee, Yong-Deok;Choi, Jeung-Mog
    • Applied Microscopy
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    • v.19 no.2
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    • pp.99-118
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    • 1989
  • The cardiotoxic effects of acute and chronic administration of adriamycin (ADR) were evaluated in A/J Swiss albino mice. In acute studies, male mice received intravenous ADR, 5mg or 15mg/kg per day for 3 or 1day and were sacrifice 12 hours later. Because the glutathione-glutathione peroxidase system is major pathway for free radical detoxication, glutathione levels and glutathione peroxidase activity was measured. In acute studies, ADR-treated mice exhibited significantly decreased levels(p<0.05) of total glutathione and unchanged levels of oxidized glutathione and percentage of oxidized glutathione. The earliest myocardial fine structural alterations included swelling and degeneration of mitochondria and dilatation of sarcoplasmic reticulum at all dosage of acute models. In chronic studies, mice received 5mg/kg ADR once a week for up to 16 weeks. Levels of total and reduced glutathione were decreased significantly(p<0.01) and oxidized glutathione and percentage of oxidized glutathione were increased significantly (p<0.05). Chronic myocardial lesions included perinuclear vacuolization, seperation of myofibrils and the fasciae adherens of intercalated disc and hypercontraction band within myocyte. Glutathione peroxidase activity reduced significantly (p<0.01) in any group of acute and chronic ADR-treated animals. Test for lipid peroxidation(malondialdehyde) was increased significantly(P<0.01). Thus, we conclude 1) ADR significantly lowers glutathione levels in heart tissue, and 2) cellular damage progress produced by alteration of this system in mouse models of ADR cardiotoxicity. These results suggest that the glutathione-glutathione peroxidase system may be involved in the modulation of ADR-induced cardiotoxicity.

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Activities of scavenging enzymes of oxygen radicals in early maturation stages of Paragonimus westermani (산소 라디칼 관련 효소의 폐흡충 발육 단계별 활성도 변화)

  • 정영배;이희성
    • Parasites, Hosts and Diseases
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    • v.30 no.4
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    • pp.355-358
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    • 1992
  • In early maturation stages of Paragonimus westermani (metacercariae, 4-, 8-, 12-week old worms), activities of antioxidant enzymes, such as superoxide dismutase, catalase, peroxidase and glutathione peroxidase, were examined. Specific activity of catalase was the highest in metacercariae and decreasing with age. That of superoxide dismutase was higher in metacercariae and 4-week worms. Specific activity of peroxidase was at its peak in 4-week worms while that of glutathione peroxidase was in 8-week worms. Specific activities of all these antioxidant enzymes were decreased to their lowest in 12-week old adults.

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Distinct functional roles of peroxiredoxin isozymes and glutathione peroxidase from fission yeast, Schizosaccharomyces pombe

  • Kim, Ji-Sun;Bang, Mi-Ae;Lee, Song-Mi;Chae, Ho-Zoon;Kim, Kang-Hwa
    • BMB Reports
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    • v.43 no.3
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    • pp.170-175
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    • 2010
  • Chaperone;Glutathione peroxidase;Peroxiredoxin;Schizosaccharomyces pombe;Thioredoxin peroxidase;To investigate the differences in the functional roles of peroxiredoxins (Prxs) and glutathione peroxidase (GPx) of Schizosaccharomyces pombe, we examined the peroxidase and molecular chaperone properties of the recombinant proteins. TPx (thioredoxin peroxidase) exhibited a capacity for peroxide reduction with the thioredoxin system. GPx also showed thioreoxin-dependent peroxidase activity rather than GPx activity. The peroxidase activity of BCP (bacterioferritin comigratory protein) was similar to that of TPx. However, peroxidase activity was not observed for PMP20 (peroxisomal membrane protein 20). TPx, PMP20, and GPx inhibited thermal aggregation of citrate synthase at 43$^{\circ}C$, but BCP failed to inhibit the aggregation. The chaperone activities of PMP20 and GPx were weaker than that of TPx. The peroxidase and chaperone properties of TPx, BCP, and GPx of the fission yeast are similar to those of Saccharomyces cerevisiae. The fission yeast PMP20 without thioredoxin-dependent peroxidase activity may act as a molecular chaperone.

Studies on red cell fragility and glutathione peroxidase activities in Korean native cattle of Chonbuk region (전북지역 한우의 red cell fragility와 glutathione peroxidase활성에 관한 연구)

  • Cho, Jong-hoo;Lee, Seong-hee
    • Korean Journal of Veterinary Research
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    • v.30 no.3
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    • pp.271-275
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    • 1990
  • The tests related to red cell fragility were performed. Samples of blood anticoagulated with heparin were obtained from Korean native cattle in Chonbuk region abattoir, and classified by the district(Kun) with reference to breeding location. Hemolysis test for red cell fragility was performed with whole blood and glutathione peroxidase activity was measured spectrophotometrically. Blood concentration of selenium, inorganic component of glutathione peroxidase, was also determined fluorophotometrically. The results obtained were summerized as follows; 1. Percent hemolysis of erythrocytes ranged from 13.53 to 20.74%, and its mean Palue was low as $17.11{\pm}9.91%$. Means in all were not district(Kun) in Chonbuk region significantly different. 2. Glutathione peroxidase activity ranged from 2,881 to 4,000mU/ml, and high mean values, $3,352{\pm}1,872mU/ml$, reflected low percent hemolysis. 3. There was a highly negative correlation between the red cell fragility(Y) and blood glutathione peroxidase activity(X). The linear regression equation for these data was: Y=29.86-3.75X with a correlation coefficient of r=-.6886 (p<0.01) 4. Blood selenium concentration ranged from 0.16 to $0.24{\mu}g/ml$, and mean values was normal level as $0.2{\pm}0.11{\mu}g/ml$. 5. There was a highly positive correlation between blood selenium concentration(X), and blood glutathione peroxidase activity(Y). The linear regression for these data was: Y=230+15,790X, with a correlation coefficient officient of r=0. 8635.

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Effect of Selenium on Pulmonary Glutathione Peroxidase and Alveolarization of Neonatal Rats

  • Kim, Hye-Young
    • Korean Journal of Environmental Biology
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    • v.21 no.3
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    • pp.297-302
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    • 2003
  • This study was designed to determine whether selenium (Se) nutrition affects pulmonary glutathione peroxidase and alveolarization in the neonatal rat. Twenty-four female Sprague Dawley rats were bred and fed a semipurified Se-deficient (0.04 ppm, Se-) or a Se-adequate (0.5 ppm, Se+) diet through pregnancy and lactation. Pulmonary DNA synthesis was slightly higher in Se+ pups than in Se- pups on d 6 and d 9 of lactation, but significant difference was not found. As pulmonary alveolarization progressed, mean air space size decreased and internal surface area and lung volume increased. No difference in pulmonary alveolarization was found between Se- and Se+ pups by age. Pulmonary Se concentration was higher in Se+ pups than in Se- pups at all age. Glutathione peroxidase activity in lung tissur reflected Se status and was lower in Se- pups than in Se+ pups. In conclusion, selenium has no significant effect on alveolarization of neonatal lungs. but it is necessary for adequate supply of pulmonary antioxidant, glutathione peroxidase.