Prooxidant and antioxidant mechanisms in aquatic organisms
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[1] R. Ablett,et al. Enzymatic Lipid Peroxidation in the Gonadal and Hepatopancreatic Microsomal Fraction of Cultivated Mussels (Mytilus edulis L.) , 1987 .
[2] A A Radi,et al. Effects of metal ions on the antioxidant enzyme activities, protein contents and lipid peroxidation of carp tissues. , 1988, Comparative biochemistry and physiology. C, Comparative pharmacology and toxicology.
[3] A. Aksnes,et al. Catalase, glutathione peroxidase and superoxide dismutase in different fish species , 1981 .
[4] Y. Bano,et al. Mercury induced time-dependent alterations in lipid profiles and lipid peroxidation in different body organs of cat-fish Heteropneustes fossilis. , 1989, Journal of environmental science and health. Part. B, Pesticides, food contaminants, and agricultural wastes.
[5] B. Matkovics,et al. Paraquat as an agent affecting antioxidant enzymes of common carp erythrocytes. , 1987, Comparative biochemistry and physiology. C, Comparative pharmacology and toxicology.
[6] R. Wenning,et al. Biochemical responses in aquatic animals: A review of determinants of oxidative stress , 1989 .
[7] J. Heisinger,et al. Effect of selenium deficiency on liver and blood glutathione peroxidase activity in the black bullhead , 1983 .
[8] A. Cederbaum,et al. Microsomal interactions between iron, paraquat, and menadione: effect on hydroxyl radical production and alcohol oxidation. , 1985, Archives of biochemistry and biophysics.
[9] K. Schaich,et al. Cytotoxicity from Coupled Redox Cycling of Autoxidizing Xenobiotics and Metals: A Selective Critical Review and Commentary on Work‐in‐Progress , 1984 .
[10] G. Winston,et al. NAD(P)H-dependent oxidation of the hydroxyl radical scavenging agent 2-keto-4-thiomethylbutyric acid (KMBA) by microsomal fractions from the hepatopancreas of the red swamp crayfish, Procambarus clarkii , 1988 .
[11] B. Shapiro,et al. Superoxide peroxidase activity of ovoperoxidase, the cross-linking enzyme of fertilization. , 1990, The Journal of biological chemistry.
[12] C. Secombes,et al. Superoxide anion production by rainbow trout macrophages detected by the reduction of ferricytochrome C. , 1988, Developmental and comparative immunology.
[13] J. Liston,et al. Lipid Peroxidation and Phospholipid Hydrolysis in Fish Muscle Microsomes and Frozen Fish , 1987 .
[14] A. Cederbaum,et al. Differential effects of the cytochrome P-450/reductase ratio on the oxidation of ethanol and the hydroxyl radical scavenging agent 2-keto-4-thiomethylbutyric acid (KMBA). , 1986, Biochemical pharmacology.
[15] J. R. Hoffert,et al. Superoxide dismutase provides protection against the hyperoxia in the retina of the rainbow trout (Salmo gairdneri). , 1983, Comparative biochemistry and physiology. B, Comparative biochemistry.
[16] K. A. Newman,et al. Volatile Halogenated Organic Compounds Released to Seawater from Temperate Marine Macroalgae , 1985, Science.
[17] J. Kennish,et al. The role of iron chelates in the NAD(P)H-dependent oxidation of 2-keto-4-thiomethylbutyric acid (KMBA) by rainbow trout and pacific salmon microsomal fractions , 1989 .
[18] J. Stegeman,et al. Benzo[a]pyrene metabolism and aspects of oxygen radical generation in the common mussel (Mytilus edulis L.) , 1988 .
[19] T. Bartolomé,et al. Purification and properties of glutathione reductase from hepatopancreas of Mytilus edulis L. , 1983 .
[20] M. Roberts,et al. Temporal changes in AHH and SOD activities in feral spot from the Elizabeth River, a polluted sub-estuary☆ , 1987 .
[21] J. Stegeman. Benzo[a]pyrene oxidation and microsomal enzyme activity in the mussel (Mytilus edulis) and other bivalve mollusc species from the Western North Atlantic , 1985 .
[22] D. Ribera,et al. Oxyradical production as a pollution-mediated mechanism of toxicity in the common mussel, Mytilus edulis L., and other molluscs , 1990 .
[23] A. Mason,et al. Metal detoxification and bioaccumulation in molluscs , 1982 .
[24] A. Cederbaum,et al. The role of iron chelates in hydroxyl radical production by rat liver microsomes, NADPH-cytochrome P-450 reductase and xanthine oxidase. , 1984, Archives of biochemistry and biophysics.
[25] R. Crichton,et al. Reductive mobilisation of ferritin iron. , 1985, European journal of biochemistry.
[26] H. Hultin,et al. MEMBRANE LIPID OXIDATION IN A MUCROSOMAL FRACTION OF RED HAKE MUSCLE , 1980 .
[27] A. C. Smith,et al. Catalase in fish red blood cells. , 1976, Comparative biochemistry and physiology. B, Comparative biochemistry.
[28] J. McCord,et al. The pathophysiology of superoxide: roles in inflammation and ischemia. , 1982, Canadian journal of physiology and pharmacology.
[29] I. Fridovich,et al. Enzymatic defenses against oxygen toxicity in the hydrothermal vent animals Riftia pachyptila and Calyptogena magnifica. , 1984, Archives of biochemistry and biophysics.
[30] G. Winston,et al. Characterization of the microsomal mixed-function oxygenase system of the hepatopancreas and green gland of the red swamp crayfish, Procambarus clarkii. , 1989, Comparative biochemistry and physiology. B, Comparative biochemistry.
[31] Ȧ. Larsson,et al. Physiological Disturbances in Fish Living in Coastal Water Polluted with Bleached Kraft Pulp Mill Effluents , 1988 .
[32] A. Zwaan. 4 – Carbohydrate Catabolism in Bivalves , 1983 .
[33] T. Grover,et al. Influence of flavin addition and removal on the formation of superoxide by NADPH-Cytochrome P-450 reductase: a spin-trap study. , 1981, Archives of biochemistry and biophysics.
[34] P. Thomas,et al. Effect of xenobiotics on peroxidation of hepatic microsormal lipids from striped mullet (Mugil cephalus) and Atlantic croaker (Micropogonias undulatus) , 1988 .
[35] M. Moore. Cytochemical responses of the lysosomal system and NADPH-ferrihemoprotein reductase in molluscan digestive cells to environmental and experimental exposure to xenobiotics , 1988 .
[36] C. Walling. Fenton's reagent revisited , 1975 .
[37] Richard T. Di Giulio,et al. Oxidant-mediated biochemical effects of paraquat in the ribbed mussel, Geukensia demissa , 1988 .
[38] G. Cohen,et al. Free radical mediated cell toxicity by redox cycling chemicals. , 1987, The British journal of cancer. Supplement.
[39] D. Livingstone. Seasonal responses to diesel oil and subsequent recovery of the cytocgrome P-450 monooxygenase system in the common mussel, Mytilus edulis L., and the periwinkle, Littorina littorea L , 1987 .
[40] E. Cadenas. CHAPTER 7 – Low-Level Chemiluminescence of Biological Systems , 1984 .
[41] F. Korte,et al. Prediction of ecotoxicological behaviour of chemicals: Relationship between physico-chemical properties and bioaccumulation of organic chemicals in the mussel Mytilus edulis , 1982 .
[42] A. Shrift,et al. Phylogenetic distribution of glutathione peroxidase. , 1979, Comparative biochemistry and physiology. B, Comparative biochemistry.
[43] S. Aust,et al. Ferritin and superoxide-dependent lipid peroxidation. , 1985, The Journal of biological chemistry.
[44] B. Halliwell,et al. Oxygen toxicity, oxygen radicals, transition metals and disease. , 1984, The Biochemical journal.
[45] S. Aust,et al. CHAPTER 1 – The Role of Iron in Enzymatic Lipid Peroxidation , 1982 .
[46] V. Pecoraro,et al. Ferric ion sequestering agents: kinetics of iron release from ferritin to catechoylamides. , 1981, Biochimica et biophysica acta.
[47] J. V. Bannister,et al. Cytosol superoxide dismutase from swordfish (Xiphias gladius L.) liver , 1977 .
[48] L. Piette,et al. Spin-trapping studies of hydroxyl radical production involved in lipid peroxidation. , 1978, Archives of biochemistry and biophysics.
[49] P. Thomas,et al. Effects of metals and organic compounds on hepatic glutathione, cysteine, and acid-soluble thiol levels in mullet (Mugil cephalus L.). , 1984, Toxicology and applied pharmacology.
[50] J. Dykens,et al. Relevance of purine catabolism to hypoxia and recovery in euryoxic and stenoxic marine invertebrates, particularly bivalve molluscs , 1988 .
[51] H. Hultin,et al. MICROSOMAL LIPID PEROXIDAHON SYSTEM FROM HERRING LIGHT AND DARK MUSCLE: EFFECT OF CYTOSOLIC FACTORS , 1983 .
[52] S. Orrenius,et al. 5 – Quinone-Induced Oxidative Injury to Cells and Tissues , 1985 .
[53] P. Thomas,et al. EFFECT OF CADMIUM ON GLUTATHIONE CONTENT OF MULLET (MUGIL CEPHALUS) TISSUES , 1982 .
[54] H. Witas,et al. Comparative studies on superoxide dismutase, catalase and peroxidase levels in erythrocytes of different fish species☆ , 1981 .
[55] B. Matkovics,et al. Comparative antioxidant enzyme study in freshwater fish with different types of feeding behaviour. , 1985, Comparative biochemistry and physiology. C, Comparative pharmacology and toxicology.
[56] P. Thomas,et al. Comparison of microsomal lipid peroxidation in fish and rats , 1985 .
[57] Shinjiro Kobayashi. CHANGES IN CATALASE ACTIVITY OF THE TISSUES AND BLOOD OF “MASU”, ONCORHYNCHUS MASOU, WHEN TRANSFERRED FROM FRESH-WATER TO SEA WATER , 1955 .
[58] O. Jones,et al. The generation of active oxygen species by stimulated rainbow trout leucocytes in whole blood , 1984 .
[59] D. Livingstone,et al. Oxygen reduction metabolism by the digestive gland of the common marine mussel, Mytilus edulis L. , 1990 .
[60] Aldo Viarengo,et al. Lipid peroxidation and level of antioxidant compounds (GSH, vitamin E) in the digestive glands of mussels of three different age groups exposed to anaerobic and aerobic conditions , 1989 .
[61] J. Nemcsók,et al. The effects of hypoxia and paraquat on the superoxide dismutase activity in different organs of carp, Cyprinus carpio L. , 1989 .
[62] Livingstone. Responses Of Microsomal Nadph-Cytochrome-C Reductase-Activity And Cytochrome-P-450 In Digestive Glands Of Mytilus-Edulis And Littorina-Littorea To Environmental And Experimental Exposure To Pollutants , 1988 .
[63] T. Gabryelak,et al. Seasonal variations in the activities of peroxide metabolism enzymes in erythrocytes of freshwater fish species. , 1983, Comparative biochemistry and physiology. C, Comparative pharmacology and toxicology.
[64] R. Shewfelt,et al. Effect of Phospholipid Hydrolysis on Lipid Oxidation in Flounder Muscle Microsomes , 1981 .
[65] R. Boyer,et al. Superoxide ion as a primary reductant in ascorbate-mediated ferritin iron release. , 1987, Free radical biology & medicine.
[66] G. Winston,et al. Oxyradical production by hepatopancreas microsomes from the red swamp crayfish, Procambarus clarkii , 1989 .
[67] D. Ribera,et al. Characterisation, tissue distribution and sexual differences of some parameters related to lipid peroxidation in mussels , 1989 .
[68] M. Migaud,et al. PAH-metabolizing enzymes in whole mussels as biochemical tests for chemical pollution monitoring , 1988 .
[69] B. Matkovics,et al. Effects of a herbicide on the peroxide metabolism enzymes and lipid peroxidation in carp fish (Hypophthalmichthys molitrix). , 1984, Acta biologica Hungarica.
[70] J. G. Bell,et al. Some effects of vitamin E and selenium deprivation on tissue enzyme levels and indices of tissue peroxidation in rainbow trout (Salmo gairdneri) , 1985, British Journal of Nutrition.
[71] W. Troll,et al. The role of oxygen radicals as a possible mechanism of tumor promotion. , 1985, Annual review of pharmacology and toxicology.
[72] W. Leyko,et al. Studies on superoxide dismutase from cod (Gadus morhua) liver. , 1981, The International journal of biochemistry.
[73] R. T. Giulio,et al. Microsomal enzyme activities, superoxide production, and antioxidant defenses in ribbed mussels (Geukensia demissa) and wedge clams (Rangia cuneata) , 1988 .
[74] H. Bergman,et al. Exposure‐related patterns of biochemical indicators in rainbow trout exposed to no. 2 fuel oil , 1991 .
[75] Fritz Haber,et al. The catalytic decomposition of hydrogen peroxide by iron salts , 1934 .
[76] B. Halliwell. Biochemical mechanisms accounting for the toxic action of oxygen on living organisms: the key role of superoxide dismutase. , 1978, Cell biology international reports.
[77] D. Livingstone,et al. Menadione-stimulated oxyradical formation in digestive gland musomes of the common mussel, Mytilus edulis L. , 1989 .
[78] R. D. Di Giulio,et al. Nitrofurantoin-stimulated superoxide production by channel catfish (Ictalurus punctatus) hepatic microsomal and soluble fractions. , 1988, Toxicology and applied pharmacology.
[79] S. Aust,et al. Role of metals in oxygen radical reactions. , 1985, Journal of free radicals in biology & medicine.
[80] H. Rennenberg. Glutathione metabolism and possible biological roles in higher plants , 1980 .
[81] T. Gabryelak,et al. The effect of paraquat on the peroxide metabolism enzymes in erythrocytes of freshwater fish species. , 1985, Comparative biochemistry and physiology. C, Comparative pharmacology and toxicology.
[82] P. Cerutti. Prooxidant states and tumor promotion. , 1985, Science.
[83] C. B. Cowey,et al. The effect of low dietary manganese intake on rainbow trout (Salmo gairdneri) , 1981, British Journal of Nutrition.
[84] M. Connock,et al. Assay and subcellular localization of H2O2 generating mannitol oxidase in the terrestrial slug Arion ater , 1987 .
[85] A. Tappel,et al. Glutathione peroxidase activities of animal tissues. , 1982, Comparative biochemistry and physiology. B, Comparative biochemistry.
[86] I. Fridovich,et al. The toxicology of molecular oxygen. , 1984, Critical reviews in toxicology.
[87] H. Inaba,et al. Generation of O− 2 and tyrosine cation‐mediated chemiluminescence during the fertilization of sea urchin eggs , 1989 .
[88] G. Ostrander,et al. A novel DNA lesion in neoplastic livers of feral fish: 2,6-diamino-4-hydroxy-5-formamidopyrimidine. , 1990, Carcinogenesis.
[89] R. R. Wilson,et al. Temperature adaptation of fish hemoglobins reflected in rates of autoxidation. , 1987, Archives of biochemistry and biophysics.
[90] B. Shapiro,et al. The relationship between a novel NAD(P)H oxidase activity of ovoperoxidase and the CN- -resistant respiratory burst that follows fertilization of sea urchin eggs. , 1985, The Journal of biological chemistry.
[91] A. Cederbaum,et al. NADPH-dependent production of oxy radicals by purified components of the rat liver mixed function oxidase system. I. Oxidation of hydroxyl radical scavenging agents. , 1983, The Journal of biological chemistry.
[92] J. Maral,et al. Distribution of superoxide dismutase and glutathione peroxidase in the carp: erythrocyte manganese SOD. , 1979, Biochemical and biophysical research communications.
[93] A. Cederbaum,et al. NADPH-dependent production of oxy radicals by purified components of the rat liver mixed function oxidase system. II. Role in microsomal oxidation of ethanol. , 1983, The Journal of biological chemistry.
[94] A. Wiseman,et al. Cytochrome P-450 and oxidative metabolism in molluscs. , 1989, Xenobiotica; the fate of foreign compounds in biological systems.
[95] R. T. Giulio,et al. Oxidant, mixed-function oxidase and peroxisomal responses in channel catfish exposed to a bleached kraft mill effluent , 1991, Archives of environmental contamination and toxicology.
[96] C. Winterbourn. The ability of scavengers to distinguish OH. production in the iron-catalyzed Haber-Weiss reaction: comparison of four assays for OH. , 1987, Free radical biology & medicine.
[97] R. Ulvik,et al. Reduction of exogenous FMN by isolated rat liver mitochondria. Significance to the mobilization of iron from ferritin. , 1981, Biochimica et biophysica acta.
[98] H. Kappus. Overview of enzyme systems involved in bio-reduction of drugs and in redox cycling. , 1986, Biochemical pharmacology.
[99] Aldo Viarengo,et al. Effects of heavy metals on lipid peroxidation in mussel tissues , 1988 .
[100] B. Matkovics,et al. A comparative study of some more important experimental animal peroxide metabolism enzymes. , 1977, Comparative biochemistry and physiology. B, Comparative biochemistry.
[101] M. Alonso-Bedate,et al. Different levels of hyperoxia reversibly induce catalase activity in amphibian tadpoles. , 1987, Free radical biology & medicine.
[102] R. T. Giulio,et al. Stimulation of superoxide production by nitrofurantoin, p‐nitrobenzoic acid and m‐dinitrobenzene in hepatic microsomes of three species of freshwater fish , 1989 .
[103] B. Shapiro,et al. Release of ovoperoxidase from sea urchin eggs hardens the fertilization membrane with tyrosine crosslinks. , 1977, Proceedings of the National Academy of Sciences of the United States of America.
[104] O. Karrar,et al. Evolution of catalase in fish. , 1972, Comparative biochemistry and physiology. A, Comparative physiology.
[105] Mark S. Myers,et al. Neoplastic and other diseases in fish in relation to toxic chemicals: an overview☆ , 1988 .