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Characterization of human platelet glutathione reductase.

Glutathione reductase (NAD(P)h:oxidized glutathione oxidoreductase, EC 1.6.4.2) has been purified 1000-fold from the cytoplasmic fraction of human platelets. Salts, including the heretofore unreported effect of sodium citrate, activate the NADPH-dependent reduction of oxidized glutathione. Sodium citrate and monovalent salt activation appears to involve multiple sites having different binding affinities. At sub-saturating sodium phosphate, non-linear double reciprocal plots indicative of substrate activation by oxidized glutathione were observed. Initial velocity double reciprocal plots at sub-saturating and saturating concentrations of phosphate generate a family of converging lines. NADP+ is a partial inhibitor, indicating that the reduction of oxidized glutathione can proceed by more than one pathway. FMN, FAD, and riboflavin inhibit platelet glutathione reductase by influencing only the V while nitrofurantoin inhibition is associated with an increase Koxidized glutathione and a decreased V.

Binding Sites

Levels of glutathione, glutathione reductase and glutathione S-transferase activities in rat lung and liver.

Levels of glutathione, glutathione reductase and glutathione S-transferase activities in rat lung and liver have been investigated. After perfusing the lung to remove contaminating blood, this organ was found to have an apparent concentration of glutathione (2mM) which is approx. 20% of that found in the liver. Both organs contain very low levels of glutathione disulfide. Neither phenobarbital nor methylcholanthrene had a significant effect on the levels of reduced glutathione in lung and liver. In addition, the activities of some glutathione-metabolizing enzymes--glutathione reductase and glutathione S-transferase activity assayed with four different substrates--were observed to be 5-to 60-fold lower in lung tissue than in the liver.

Animals

Purification of thioredoxin, thioredoxin reductase, and glutathione reductase by affinity chromatography.

A scheme is described for the large scale purification of thioredoxin, thioredoxin reductase, and glutathione reductase. The scheme is based on an initial separation of thioredoxin from the two reductases by affinity chromatography on agarose-bound N6-(6-aminohexyl)-adenosine 2',5'-bisphosphate (agarose-2',5'-ADP). The two reductases were then separated by hydrophobic chromatography and purified separately to homogeneity. Thioredoxin was purified to homogeneity by immunoadsorption to agarose containing immobilized goat anti-thioredoxin. Overall yields for thioredoxin, thioredoxin reductase, and glutathione reductase exceeded 80% in each case. Both reductases exhibit an absorption band at approximately 320 nm which appears due to a residual amount of tightly bound NADP. Presence of this absorption band has no apparent effect on the specific activity of either enzyme.

Bacterial Proteins

[Interference by glutathione reductase in the "CK-MB-inhibition-test": elimination of the catalytic activity of glutathione reductase by anti-glutathione reductase (author's transl)].

Glutathione reductase interferes in the determiniation of creatine kinase-MB by the "CK-MB-inhibition-test". In 36 out of 55 serum samples with normal and elevated catalytic activities of creatine kinase, "negative" values greater than 14 U/l were obtained for the creatine kinase-MB. This interference by glutathione reductase is avoided by preincubation of the serum samples for 5 min with anti-glutathione reductase.

Catalysis

[Optimized determination and properties of NADPH-dependent glutathione reductase in serum. Studies on serum glutathione reductase, I. (author's transl)].

Reaction conditions were optimized for the determination of serum glutathione reductase, which has not yet been investigated systematically. Imidazole was found to be the most suitable buffer material; the highest glutathione reductase activity in serum was always obtained with imidazole/HCl buffer, which, in contrast to all other tested buffers, also resulted in the maximal enzyme activity without preincubation. In imidazole buffer, the pH-activity curve of serum glutathione reductase shows a broad optimum between pH 6.5 and 6.9. A GSSG concentration of 2 mmol/l and a NADPH concentration of 0.43 mmol/l gave maximal enzyme activity and a linear reaction over 10 min up to 20 U/l test solution. An investigation of serum glutathione reductase activity from 100 clinically healthy probands gave values between 20 and 50 U/l. In the optimized assay system the glutathione reductase in the serum reacts specifically with GSSG and NADPH.

Autoanalysis

[Multiple forms of NADPH-dependent glutathione reductase in serum. Studies on the NADPH-dependent glutathione-reductase in serum II. (author's transl)].

Sera with elevated activities of glutathione reductase were investigated by gel electrophoresis in agar or polyacrylamide, and by gel filtration. In both separation methods the glutathione reductase activity in individual samples was resolved, showing up to three fractions differing in rate of migration and molecular size. The fractions with the lowest and highest molecular weight, corresponded respectively to the slowest and fastest migrating bands in agar gel electrophoresis. Preincubation of the serum samples with FAD or neuraminidase had no effect on the rate of migration of the three fractions. After the addition of beta-mercaptoethanol to the serum, gel electrophoresis and gel filtration showed only the enzyme fraction with the slowest rate of migration and the lowest molecular weight (140,000). The other two fractions reappeared after removal of the thiol from the serum. Further studies on the isolated (agar gel electrophoresis) fractions showed the existence of oligomeric forms of the enzyme, which are reversibly interconvertible.

Electrophoresis, Agar Gel

Effect of cystamine on rat tissue GSH level and glutathione reductase activity.

Reduced glutathione (GSH) level and glutathione reductase activity were determined by means of the spectrophotometric method in various rat tissues after i.p. administration of cystamine (50 mg/kg and 20 mg/kg). GSH amount dropped in the spleen and kidney at 10 and 20 min; following this interval, an increase of GSH level was observed in the liver at 20--30 min, in the spleen and kidney at 60 min after the treatment with a radioprotective cystamine dose (50 mg/kg). The changes in GSH level induced by a non-radioprotective cystamine dose (20 mg/kg) had an opposite tendency. The activity of glutathione reductase was decreased in all tissues studied. As to the mechanism of the radioprotective action, both the inactivation of glutathione reductase activity and the changes in GSH level seem to be the factors contributing to the radioprotective effect of cystamine by strengthening the cellular radioresistance.

Animals

Stimulatory effect of histone on glutathione reductase of human erythrocytes.

Glutathione reductase of hemolyzates, as well as intact erythrocytes from normal individuals can be activated by the addition of human leukocyte nuclear histones and histone subfractions f1 and f3. Intact erythrocytes incubated with histone show also in their hemolyzates a high glutathione reductase activity as compared with such not treated with histone cells. The degree of stimulation of glutathione reductase by histones is comparable to that caused by flavin adenosine diphosphate (FAD). Histones and FAD show a competitive stimulatory effect on glutathione reductase activity. ATP shows an inhibitory effect on glutathione reductase activity, which can be reversed by addition of histone.

Adenosine Triphosphate

Mouse-liver glutathione reductase. Purification, kinetics, and regulation.

Glutathione reductase from the liver of DBA/2J mice was purified to homogeneity by means of ammonium sulfate fractionation and two subsequent affinity chromatography steps using 8-(6-aminohexyl)-amino-2'-phospho-adenosine diphosphoribose and N6-(6-aminohexyl)-adenosine 2',5'-biphosphate-Sephadex columns. A facile procedure for the synthesis of 8-(6-aminohexyl)-amino-2'-phospho-adenosine diphosphoribose is also presented. The purified enzyme exhibits a specific activity of 158 U/mg and an A280/A460 of 6.8. It was shown to be a dimer of Mr 105000 with a Stokes radius of 4.18 nm and an isoelectric point of 6.46. Amino acid composition revealed some similarity between the mouse and the human enzyme. Antibodies against mouse glutathione reductase were raised in rabbits and exhibited high specificity. The catalytic properties of mouse liver glutathione reductase have been studied under a variety of experimental conditions. As with the same enzyme from other sources, the kinetic data are consistent with a 'branched' mechanism. The enzyme was stabilized against thermal inactivation at 80 degrees C by GSSG and less markedly by NADP+ and GSH, but not by NADPH or FAD. Incubation of mouse glutathione reductase in the presence of NADPH or NADH, but not NADP+ or NAD+, produced an almost complete inactivation. The inactivation by NADPH was time, pH and concentration dependent. Oxidized glutathione protected the enzyme against inactivation, which could also be reversed by GSSG or other electron acceptors. The enzyme remained in the inactive state even after eliminating the excess NADPH. The inactive enzyme showed the same molecular weight as the active glutathione reductase. The spectral properties of the inactive enzyme have also been studied. It is proposed that auto-inactivation of glutathione reductase by NADPH and the protection as well as reactivation by GSSG play in vivo an important regulatory role.

Amino Acids

Purification and characterization of the flavoenzyme glutathione reductase from rat liver.

Glutathione reductase from rat liver has been purified greater than 5000-fold in a yield of 20%. The molecular weights of the enzyme and its subunits were estimated to be 125,000 and 60,000, respectively, indicating that the native enzyme is a dimer. The enzyme molecular contains 2 FAD molecules, which are reducible by NADPH, GSH or dithioerythritol. The reduced flavin is instantaneously reoxidized by addition of GSSG. The steady state kinetic data are consistent with a branching reaction mechanism previously proposed for glutathione reductase from yeast (MANNERVIK, B. (1973) Biochem. Biophy. Res. Commun. 53, 1151-1158). This mechanism is also favored by the nonlinear inhibition pattern produced by NADP-+. However, at low GSSG concentrations the rate equation can be approximated by that of a simple ping pong mechanism. NADPH and the mixed disulfide of coenzyme A and GSH were about 10% as active as NADPH and GSSG, respectively, whereas some sulfenyl derivatives related to GSSG were less active as substrates. The pH activity profiles of these substrates differed from that of the NADPH-GSSG substrate pair.

Animals

Human erythrocyte glutathione reductase. I. Purification and properties.

1. Glutathione reductase (NAD(P)H:oxidized-glutathione oxidoreductase, EC. 1.6.4.2) from human erythrocytes was purified 49 000-fold with an overall yield of 15% and a 280/460 nm absorbance ratio of 6.03. The procedure used was the method of Worthington and Rosemeyer modified by addition of heating and recrystallization. 2. It was concluded from the results of purification, electrofocusing and inhibition studies that glutathione reductase is a single enzyme which used both NADPH and NADH as hydrogen donors. 3. Apoenzyme cross-reacts with the antibody to the holoenzyme but has a slightly reduced affinity to the antibody. Apoenzyme can be removed from the hemolysate by heating and centrifugation without loss of holoenzyme. 4. Indirect immunological assay of the specific activity of the erythrocyte glutathione reductase is possible in the enzyme saturated with FAD.

Erythrocytes

Glutathione reductase in the red blood cells.

Glutathione reductase plays an important role in protecting hemoglobin, red cell enzymes, and biological cell membranes against oxidative damage by increasing the level of reduced glutathone (GSSGR) in the process of aerobic glycolysis. The enzyme deficiency may result in mild to moderately severe hemolytic anemia upon exposure to certain drugs or chemicals. However, hereditary deficiency of the enzyme is extremely rare. Recent studies on glutathione reductase in the red cell have shown more insight in the understanding of red cell metabolism and interactions with other enzymes, especially glucose-6-phosphate dehydrogenase (G-6-PD). Glutathione reducatase in serum may be a source of error in any clinical laboratory test in which an enzyme activity is determined indirectly by measuring the change in reduced nicotinamide-adenine dinucleotide (NADH) or reduced nicotinamide adenine dinucleotide phosphate (NADPH) absorbance. Glutathione reductase levels are reduced in banked blood when citrate-phosphate-dextrose (CPD) is used as a preservative. Reviewed is the role of glutathione reductase in the metabolism of the red cell and its clinical implication and usefulness.

Erythrocytes

Characterization of glutathione reductase from porcine erythrocytes.

Glutathione reductase (NAD(P)H: oxidized-glutathione oxidoreductase, EC 1.6.4.2) was purified to homogeneity from porcine erythrocytes by use of affinity chromatography on 2',5'-ADP-Sepharose 4-B. Analytical ultracentrifugation experiments were analysed to give the following physical parameters for the enzyme: s20,w = 5.7 S, D20,w = 50 microgram2/s, and Mw = 103 000 (protein concentration, 0.5 mg/ml). The frictional ratio was 1.37 and the Stokes radius was 4.3 nm. The enzyme molecule is a dimer composed of subunits of equal size each containing a FAD molecule. The amino acid compositions and circular dichroism spectra of the porcine and human enzymes indicated extensive structural similarities. The isoelectric point was at pH 6.85 (at 4 degrees C). The absorption spectrum of the oxidized enzyme had maxima at 377 and 462 nm. In vivo the enzyme appears to be partially reduced. At a physiological concentration of reduced glutathione the apparent Michaelis constants for glutathione disulfide and NADPH were higher than in the absence of reduced glutathione. At 0.15 M ionic strength the catalytic activity obtained with NADPH as reductant was optimal at pH 7 and more than 200 times higher than that obtained with NADH. S-sulfoglutathione and some mixed disulfides of glutathione were poor substrates with the exception of the mixed disulfide of coenzyme A and reduced glutathione. The purified enzyme displayed low transhydrogenase activity with oxidized pyridine nucleotide analogs and diaphorase activity with 2,6-dichlorophenolindophenol as acceptor substrates; both NADPH and NADH served as donors.

Amino Acids

The effect of riboflavin deficiency on white cell glutathione reductase in rats.

1. The measurement of glutathione reductase in white cells from peripheral rat blood is described; the contribution from red cell glutathione reductase was virtually eliminated. 2. The activation of the white cell enzyme by flavin adenine dinucleotide (FAD) in vitro was measured during an eight week period of dietary riboflavin deficiency in weanling rats. 3. The activation increased progressively during the deficiency reaching about fifty per cent after eight weeks, at which time liver FAD levels had declined to 30% of the control levels and clinical symptoms of deficiency were beginning to appear. No increase in activation of white cell glutathione reductase was observed in pair-fed controls, over this time period. 4. These observations suggest that the measurement of the activation coefficient of white cell glutathione reductase could usefully supplement that of the red cell enzyme, in defining riboflavin status.

Animals

Acid-volatile selenium formation catalyzed by glutathione reductase.

The production of acid-volatile selenide (apparently H2Se) was catalyzed by glutathione reductase in an anaerobic system containing 20 mM glutathione, 0.05 mM sodium selenite, a TPNH-generating system, and microgram quantities of highly purified yeast glutathione reductase. H2Se production in this system was proportional to glutathione reductase concentration and was maximal at pH 7. Significant nonenzymic H2Se production occurred in the system lacking glutathione reductase and TNPH. A concentration of arsenite (0.1 mM) which does not inhibit glutathione reductase inhibited selenide volatilization, as did bovine serum albumin (1.67 mg/ml). Both appear to inhibit Se volatilization by reacting with the selenide product(s). The selenotrisulfide derivative of glutathione (GSSeSG) was readily converted to H2Se by glutathione reductase and TPNH without the addition of glutathione. These results suggest that GSSeSG formed nonenzymically from glutathione and selenic undergoes stepwise reduction by glutathione reductase (or excess GSH) to GSSeH and finally to H2Se. The same pathway operates when glutathione is used as the reducing agent but to a lesser extent.

Animals

Purification and properties of the glutathione reductase of Chromatium vinosum.

The Chromatium vinosum glutathione reductase [NAD(P)H: glutathione disulfide oxidoreductase, EC 1.6.4.2] was purified to apparent homogeneity. The enzyme was found to require reduced nicotinamide adenine dinucleotide (NADH) as a reductant and to be specific for oxidized glutathione (GSSG). The polypeptide molecular weight in sodium dodecyl sulfate was found to be 52,000. Incubation of enzyme with NADH in the absence of GSSG resulted in a significant loss in activity. The enzyme was stimulated by phosphate and sulfate ion, but was inhibited by chloride ion, heavy metals, and sulfhydryl reagents. Adenylate nucleotides were inhibitory, and the data suggested that they were acting as competitive inhibitors of flavin adenine dinucleotide (FAD). The Km values of 7 X 10-3 for GSSG and 6 X 10-5 M for NADH were the highest reported of any previously investigated glutathione reductase. The order of addition of components markedly affected the response of the enzyme to FAD. A requirement for FAD (Km 5.2 X 10-7 M) was seen if the enzyme was incubated with NADH prior to GSSG addition, whereas no FAD was required if the order was reversed.

Adenosine

Mammalian erythrocyte glutathione reductase: kinetic constants and saturation with cofactor.

Glutathione reductase (GR) was studied in erythrocytes of horses, cats, dogs, and man. Glutathione reductase activity was measured in hemolysates with and without preincubation of hemolysates with flavinadenine dinucleotide. The percentage saturation of GR apoenzyme with cofactor (flavin-adenine dinucleotide) was lower in cats and dogs than in horses or man. The greatest amount of inactive apoenzyme was in feline erythrocytes. Total GR activity listed in order by species is cat greater than man greater than dog greater than horse. Kinetic constants for oxidized glutathione and reduced nicotinamide-adenine dinucleotide phosphate were determined in each species. Although kinetic constant (reduced nicotinamide-adenine dinucleotide phosphate) values for GR were similar, considerable species variation was observed in the kinetic constant (oxidized glutathione) for GR. The kinetic constant (oxidized glutathione) for equine GR was approximately 3 times that for human GR, with intermediate values determined for feline and canine GR.

Animals