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C C Reddy

Publications and source records attributed to C C Reddy.

At least 73 records · Page 4Linked to original sources

Immunological and sequence interrelationships between multiple human liver and rat glutathione S-transferases.

The 13 forms of human liver glutathione S-transferases (GST) (Vander Jagt, D. L., Hunsaker, L. A., Garcia, K. B., and Royer, R. E. (1985) J. Biol. Chem. 260, 11603-11610) are composed of subunits in two electrophoretic mobility groups: Mr = 26,000 (Ha) and Mr = 27,500 (Hb). Preparations purified from the S-hexyl GSH-linked Sepharose 4B affinity column revealed three additional peptides at Mr = 30,800, Mr = 31,200, and Mr = 32,200. Immunoprecipitation of human liver poly(A) RNAs in vitro translation products revealed three classes of GST subunits and related peptides at Mr = 26,000, Mr = 27,500, and Mr = 31,000. The Mr = 26,000 species (Ha) can be precipitated with antisera against a variety of rat liver GSTs containing Ya, Yb, and Yc subunits, whereas the Mr = 27,500 species (Hb) can be immunoprecipitated most efficiently by antiserum against the anionic isozymes as well as a second Yb-containing isozyme (peak V) from the rat liver. The Mr = 31,000 band can be immunoprecipitated by antisera preparations against sheep liver, rat liver, and rat testis isozymes. Human liver GSTs do not have any subunits of the rat liver Yc mobility. Antiserum against the human liver GSTs did not cross-react with the Yc subunits of rat livers or brains in immunoblotting experiments. The human liver GST cDNA clone, pGTH1, selected human liver poly(A) RNAs for the Ha subunit(s) in the hybrid-selected in vitro translation experiments. Southern blot hybridization results revealed cross-hybridization of pGTH1 with the Ya, Yb, and Yc subunit cDNA clones of rat liver GSTs. This sequence homology was substantiated further in that immobilized pGTH1 DNA selected rat liver poly(A) RNAs for the Ya, Yb, and Yc subunits with different efficiency as assayed by in vitro translation and immunoprecipitation. Therefore, we have demonstrated convincingly that sequence homology as well as immunological cross-reactivity exist between GST subunits from several rat tissues and the human liver. Also, the multiple forms of human liver GSTs are most likely encoded by a minimum of three different classes of mRNAs. These results suggest a genetic basis for the subunit heterogeneity of human liver GSTs.

Animals↗

Expression of glutathione S-transferases in rat brains.

The tissue-specific expression of glutathione S-transferases (GSTs) in rat brains has been studied by protein purification, in vitro translation of brain poly(A) RNAs, and RNA blot hybridization with cDNA clones of the Ya, Yb, and Yc subunit of rat liver GSTs. Four classes of GST subunits are expressed in rat brains at Mr 28,000 (Yc), Mr 27,000 (Yb), Mr 26,300, and Mr 25,000. The Mr 26,3000 species, or Y beta, has an electrophoretic mobility between that of Ya and Yb, similar to the liver Yn subunit(s) reported by Hayes (Hayes, J. D. (1984) Biochem. J. 224, 839-852). RNA blot hybridization of brain poly(A) RNAs with a liver Yb cDNA probe revealed two RNA species of approximately 1300 and approximately 1100 nucleotides. The band at approximately 1300 nucleotides was absent in liver poly(A) RNAs. The Mr 25,000 species, or Y delta, can be immunoprecipitated by antisera against rat heart and rat testis GSTs, but not by antiserum against rat liver GSTs. Therefore, the Y delta subunit may be related to the "Mr 22,000" subunit reported by Tu et al. (Tu, C.-P.D., Weiss, M.J., Li, N., and Reddy, C. C. (1983) J. Biol. Chem. 258, 4659-4662). The abundant liver GST subunits, Ya, are not expressed in rat brains as demonstrated by electrophoresis of purified brain GSTs and a lack of isomerase activity toward the Ya-specific substrate, delta 5-androstene-3,17-dione. This is apparently because of the absence of Ya mRNA expression prior to RNA processing. The data on the preferential expression of Yc subunits in rat brains, together with the differential phenobarbital inducibility of the Ya subunit(s) in rat liver reported by Pickett et al. (Pickett, C. B., Donohue, A. M., Lu, A. Y. H., and Hales, B. F. (1982) Arch. Biochem. Biophys. 215, 539-543), suggest that the Ya and Yc genes for rat GSTs are two functionally distinct gene families even though they share 68% DNA sequence homology. The expression of multiple GSTs in rat brains suggests that GSTs may be involved in physiological processes other than xenobiotics metabolism.

Animals↗

The effects of ozone inhalation on the immunological response of selenium- and vitamin E-deprived rats.

Deficiencies in vitamin E (E) or Se result in immune alterations, possibly due to reduction of antioxidant activity. Such reductions might greatly compromise the ability of the immune system to deal with additional oxidant stress, as encountered during exposure to air pollutants such as ozone (O3). To study possible interactions of these oxidative stresses on immune function, male Long-Evans hooded rats were maintained 5 weeks on torula yeast-based diets, with or without the addition of E or Se. Each dietary group was subdivided into O3-exposed and nonexposed groups. Two different regimens of O3 exposure were used: continuous (1.0 ppm, 8 hr/day for 7 days) or intermittent (2.0 ppm, 8 hr/day for 4 days, 2-4 days in ambient air followed by 1 day of exposure prior to sacrifice). Exposure to O3 in either regimen resulted in increased numbers of cells recovered by pulmonary lavage. With continuous exposure this increase was due to macrophage influx and, with intermittent exposure, due to influx of both macrophages and neutrophils. Combined deficiency of E and Se led to an enhanced ability of spleen and lung cells to mediate antibody-dependent cell-mediated cytotoxicity (ADCMC). In animals deficient in E, but not Se, O3 exposure depressed spleen cell ADCMC. Deficiencies of either E or Se also depressed lymphocyte response to mitogens. Although intermittent exposure to O3 caused no changes in mitogen response, in animals exposed continuously to O3 there was a significant enhancement of this response.

Animals↗

Inhibition of 5-lipoxygenase by vitamin E.

Purified 5-lipoxygenase from potato tubers was inhibited strongly by vitamin E and its analogs. The inhibition by d-alpha-tocopherol was found to be irreversible and non-competitive with respect to arachidonic acid. An IC50 of 5 microM was calculated for d-alpha-tocopherol. The inhibition appears to be unrelated to its antioxidant function. Binding studies with 14C-labelled d-alpha-tocopherol revealed that there is a strong interaction between vitamin E and 5-lipoxygenase. Tryptic digestion and peptide mapping of 5-lipoxygenase-vitamin E complex indicate that vitamin E binds strongly to a single peptide. These studies suggest that cellular vitamin E levels may have profound influence on the formation of leukotrienes.

Antioxidants↗

On the multiplicity of rat liver glutathione S-transferases.

Rat liver glutathione S-transferases have been purified to apparent electrophoretic homogeneity by S-hexylglutathione-linked Sepharose 6B affinity chromatography and CM-cellulose column chromatography. At least 11 transferase activity peaks can be resolved including five Yb size homodimeric isozymes, two Yc size homodimeric isozymes, one Ya homodimeric isozyme, one Y alpha homodimeric isozyme, and two Ya-Yc heterodimeric isozymes. Distribution of the GSH peroxidase activity among the CM-cellulose column fractions suggests the existence of further multiplicity in this isozyme family. Substrate specificity patterns of the Yb subunit isozymes revealed a possibility that each of the five Yb-containing isozymes is composed of a different homodimeric Yb size subunit composition. Our findings on the increasing multiplicity of glutathione S-transferase isozymes are consistent with the notion that multiple isozymes of overlapping substrate specificities are required to detoxify a multitude of xenobiotics in addition to serving other important physiological functions.

Animals↗

Effects of diethylhydroxylamine on hepatic microsomal lipid peroxidation and glutathione S-transferases.

The effects of diethylhydroxylamine (DEHA), a potent free-radical scavenger, on lipid peroxidation of rat liver microsomes were investigated in vitro. DEHA strongly inhibited ascorbate-dependent nonenzymatic microsomal lipid peroxidation. DEHA also completely inhibited nonenzymatic lipid peroxidation of heat-denatured microsomes, indicating that inhibition is protein-independent. DEHA only moderately inhibited NADPH-dependent enzymatic microsomal lipid peroxidation. DEHA has been shown to exhibit antitumorogenic properties. However, it had no significant effect on hepatic glutathione S-transferase, selenium-independent glutathione peroxidase, or selenium-dependent glutathione peroxidase activity in the DEHA-treated CD-1 (lCR) Br male mouse. This suggests that the mode of action of DEHA as an antitumorogenic agent may be different from that of butylated hydroxyanisole, whose antitumor function is attributed to induction of glutathione S-transferase activity.

Animals↗

Effects of vitamin E and selenium deficiencies on rat immune function.

The effects of dietary restriction of vitamin E and selenium were studied in male Long-Evans hooded rats. Weanling animals were maintained for 5-6 weeks on torula yeast-based diets, with or without the addition of vitamin E (150 IU/kg) or selenium (0.5 mg/kg), to form the following dietary groups: +E, +Se; +E, -Se; -E, +Se; -E, -Se, and a fifth group pair-fed with the -E, -Se group. This latter group exhibited a decreased rate of growth similar to the -E, -Se group. Lymphocyte blastogenesis in response to mitogens was decreased in animals fed the diets deficient in either vitamin E or selenium, and also in the pair-fed group. Very marked suppression of mitogen responses was seen in the doubly deficient group, as well as a greater loss of viability during culture. Spleen cell-mediated antibody-dependent lysis of chicken erythrocytes was increased in the doubly deficient group, although this difference could be abolished by the addition of catalase, but not indomethacin, to the culture medium. Dietary deficiency of vitamin E and selenium had no discernible effects on alveolar macrophage function, as measured by cell-mediated antibody-dependent cytolysis, killing of Staphylococcus aureus or regulation of T-lymphocyte blastogenesis.

Animals↗

The major rat heart glutathione S-transferases are anionic isozymes composed of Yb size subunits.

The GSH S-transferases from rat heart cytosol has been purified by S-hexylglutathione-linked Sepharose-6B affinity chromatography. The majority (approximately 80%) of these GSH S-transferases are anionic isozymes which can be resolved further by DEAE-cellulose column chromatography and isoelectric focusing. They are mainly composed of Yb size (Mr = 27,000) subunits with different substrate specificity patterns from the rat liver anionic GSH S-transferases. The major cationic GSH S-transferases from liver are not expressed in rat heart. Although some cationic GSH S-transferases from rat heart can be purified by CM-cellulose column chromatography they are composed of major subunits of Yb electrophoretic mobility.

Aging↗

The Yc and Ya subunits of rat liver glutathione S-transferases are the products of separate genes.

Rat liver glutathione S-transferases consist of binary combinations of three major classes of subunits designated as Ya (Mr = 25,600), Yb (Mr = 27,000) and Yc (Mr = 28,000). We have determined the nucleotide sequences of a cDNA insert in pGTR262 containing partial sequence of a Yc subunit. Sequence comparison with a Ya subunit cDNA clone pGTR261 revealed 70% nucleotide sequence homology and 65% amino acid sequence homology in the overlapping coding regions. Approximately 65% of the amino acid substitutions between these two subunits occur in clusters of two to eight residues. The 3' noncoding sequences of these two subunit cDNA clones are highly divergent in length and in sequences. The 3' noncoding region of pGTR262 cDNA contains open reading frames of 23, 39, and 13 amino acids which are in phase with the deduced Yc subunit sequences but interrupted by termination codons. By RNA blot hybridization analysis, we found that this Yc subunit sequence expression is tissue specific. It is expressed at a reduced level in kidney and testis as compared with liver and hardly at all in heart, lung, seminal vesicles, and spleen. We suggest that the mechanism for the tissue-specific expression of the Yc subunit of rat liver glutathione S-transferases may occur at or prior to the level of RNA processing. From the divergent DNA sequences between the Ya and Yc subunits reported in this communication and their differential induction upon acute phenobarbital administration reported by Pickett et al. (Pickett, C.B., Donohue, A. M., Lu, A. Y. H., and Hales, B. F. (1982) Arch. Biochem. Biophys. 215, 539-543) we propose that the Ya and Yc subunits of rat liver glutathione S-transferases are encoded by separate gene families or transcriptional units.

Amino Acid Sequence↗

Identification of a new glutathione S-transferase from rat liver cytosol.

A new glutathione S-transferase has been purified to homogeneity from 105,000 X g supernatant of Sprague-Dawley rat liver homogenates. The purified enzyme exhibited specific activities of approximately 1.8, and 0.12 mumoles X min-1 X mg-1 toward 1-chloro 2,4-dinitrobenzene and cumene hydroperoxide respectively. The SDS gel electrophoresis data on subunit composition revealed that the new transferase is composed of two subunits with an identical Mr of 24,400 (Y alpha Family). Our in vitro translation experiments with rat liver poly(A) RNAs and substrate specificity data suggest that this subunit is different from the previously reported Ya , Yb and Yc subunits of rat liver glutathione S-transferases. Comparatively, the new isozyme showed significant activity toward 1,2 epoxy-3-(P-nitrophenoxy)-propane, ethacrynic acid and P-nitrophenyl acetate, 0.4, 0.34 and 0.18 mumoles. min-1 X mg-1 respectively.

Animals↗

The nucleotide sequence of a rat liver glutathione S-transferase subunit cDNA clone.

We have determined the nucleotide sequence of a cloned cDNA derived from liver poly(A) RNA of pentobarbital-treated rats encoding a glutathione S-transferase subunit. This cDNA clone pGTR261 contains one open reading frame of 222 amino acids, a complete 3' noncoding region, and 63 nucleotides in the 5' noncoding region. The cloned DNA hybridizes to rat poly(A) RNA in a tissue-specific fashion, with strong signals to liver and kidney poly(A) RNA(s) of approximately 1100 and approximately 1400 nucleotides in size but little or no hybridization to poly(A) RNAs from heart, lung, seminal vesicles, spleen, or testis under stringent conditions. Our sequence covers the cDNA sequence of pGST94 which contains a partial coding sequence for a liver glutathione S-transferase subunit of Ya size. Comparison of sequences with our earlier clone pGTR112 suggests that there are at least two mRNA species coding for two different subunits of the Ya (Mr = 25,600) subunit family with very limited amino acid substitutions mainly of conserved polarity. The divergent 3' noncoding sequences should be useful molecular probes in differentiating these two different but otherwise very similar subunits in induction and genomic structure analyses. Our results suggest that tissue-specific expression of the glutathione S-transferase subunits represented by the sequences of pGTR261 and pGTR112 may occur at or prior to the level of RNA processing.

Amino Acid Sequence↗

Measurement of glutathione requiring enzymes involved in arachidonic acid cascade of rat basophilic leukemia cells.

Rat basophilic leukemia cells have frequently been employed for investigating the pathways of leukotriene biosynthesis, a class of biologically active arachidonic acid metabolites. However, information is lacking on the levels of selenium-dependent glutathione peroxidase (Se-GSH-Px), non-Se-GSH-Px and glutathione S-transferases (GSH-S-Trs), key enzymes involved in fatty acid hydroperoxide metabolism and leukotriene biosynthesis in these cells. Both GSH-S-Trs and non-Se-GSH-Px reactions are catalyzed by the same enzyme. In the present studies, we have measured the enzyme activities of GSH-Px(s) and GSH-S-Trs in the 105,000 X g supernatant fraction of sonified RBL-1 cells. The specific activities for GSH-Px(s) toward H2O2, cumene hydroperoxide, and 15S-hydroperoxy-eicosatetraenoic acid (15S-HPETE) are 12.6, 17.9 and 26.9 nmoles X min-1 X mg-1 protein, respectively. A specific activity of 18.9 nmoles X min-1 X mg-1 protein with 1-chloro-2,4-dinitrobenzene was estimated for the GSH-S-Trs. Therefore, the cell fraction that exhibits 5-lipoxygenase activity also contains selenium and non-selenium glutathione peroxidases.

Animals↗

Purification and characterization of the individual glutathione S-transferases from sheep liver.

The glutathione S-transferases (EC 2.5.1.18) have been purified to electrophoretic homogeneity from 105,000g supernatant of sheep liver homogenate by employing a combination of gel filtration on Sephadex G-150 and affinity chromatography on S-hexylglutathione-linked Sepharose-6B columns. Approximately 70% of the original glutathione S-transferase activity toward 1-chloro-2,4-dinitrobenzene and glutathione peroxidase activity toward cumene hydroperoxide could be recovered by this purification method. Of particular importance in developing this procedure was the fact that the enzyme preparation obtained after affinity column chromatography represented all the isozymes of sheep liver glutathione S-transferases. Further purification by CM-cellulose and DEAE-cellulose column chromatography resolved the glutathione S-transferases into seven distinct cationic isozymes designated C-1, C-2, C-3, C-4, C-5, C-6, and C-7 and five overlapping anionic transferases designated A-1, A-2, A-3, A-4, and A-5, respectively, in the order of their elution from the ion-exchange columns. The sodium dodecyl sulfate SDS-gel electrophoretic data on subunit composition revealed that cationic enzymes are composed of two subunits with an identical Mr of 24,000 whereas a predominant subunit with Mr of 26,000 was observed in all anionic isozyme peaks except A-1. Cationic isozymes accounted for approximately 98% of the total peroxidase activity associated with the glutathione S-transferase whereas only A-1 of the anionic isozymes displayed some peroxidase activity. Isozyme C-4 was found to be the most abundant glutathione S-transferase in the sheep liver. Characterization of the individual transferases by their specificity toward a number of selected substrates, subunit composition, and isoelectric points showed some similarities to those patterns for human liver glutathione S-transferases.

Animals↗

Tissue-specific expression of the rat glutathione S-transferases.

Tissue-specific patterns of rat glutathione S-transferase expression have been demonstrated by in vitro translation of purified poly(A) RNAs and by protein purification. Poly(A) RNAs from six rat tissues including heart, kidney, liver, lung, spleen, and testis were used to program in vitro translation with the rabbit reticulocyte lysate system and [35S]methionine. The glutathione S-transferase subunits synthesized in vitro were purified from the translation products by affinity chromatography on S-hexylglutathione-linked Sepharose 6B columns. The affinity bound fractions were analyzed by Na dodecyl SO4-polyacrylamide gel electrophoresis and fluorography. A subunit of Mr = 22,000 detected in the in vitro translation products of poly(A) RNAs from heart, kidney, lung, spleen, and testis is missing from the translation products of liver poly(A) RNAs. This Mr = 22,000 subunit is present only in the anionic glutathione S-transferase fraction purified from rat heart, kidney, lung, spleen, and testis. Purified anionic glutathione S-transferase from rat liver does not contain this subunit. The relative specific activities toward a dozen different substrates also demonstrate the nonidentity between liver and kidney anionic glutathione S-transferases. In addition, among the glutathione S-transferase subunits expressed in the liver, some of them could not be detected in the other tissues investigated. Our results indicate that tissue-specific expression of rat glutathione S-transferases may occur pretranslationally.

Animals↗

Isolation and characterization of an anionic glutathione S-transferase from rat liver cytosol.

An anionic glutathione S-transferase representing approximately 20% of the total glutathione S-transferase protein and 10% of the total transferase activity toward 1-chloro 2,4-dinitrobenzene has been purified to homogeneity from the 105,000 x g supernatant of rat liver homogenate. The SDS gel electrophoretic data on subunit composition revealed that the anionic isozyme is composed of two subunits with an identical Mr of 26,000. The Km values for 1-chloro 2,4-dinitrobenzene and reduced glutathione were determined to be 0.94 mM and 0.23 mM respectively. A significant amount of glutathione peroxidase activity toward cumene hydroperoxide is associated with the new isozyme.

Animals↗

Cloning and sequence analysis of a cDNA plasmid for one of the rat liver glutathione S-transferase subunits.

We describe the construction and characterization of a cDNA plasmid for one of the rat liver glutathione S-transferase subunits. Poly(A)-RNA isolated from rat livers was enriched for glutathione S-transferase mRNA activity and used as templates to synthesize double stranded cDNA. The double stranded cDNAs were annealed to pBR322 through terminal deoxynucleotidyl transferase generated GC-tails followed by transformation into E. coli. Several candidate clones were selected by colony hybridization using polynucleotide kinase labeled liver and testis poly(A)-RNA probes. These candidate clones were further characterized by hybrid-selected translation of mRNA followed by immunoprecipitation and SDS gel electrophoresis. The positive clone, pGTR112 was mapped with restriction endonuclease analysis and sequenced by the chemical method of Maxam and Gilbert. The largest upen reading frame contains 142 amino acids very rich in Arg and Lys residues. The C-terminal residue phenylalanine of this open reading frame is consistent with what was reported for one of the ligandin subunits by Bhargava et al., (J. Biol. Chem. 253, 4116-4119, 1978). Among the 352 nucleotides covered by both pGTR112 and pGST94 described by Kalinyak and Taylor (J. Biol. Chem. 257, 523-530, 1982), there are only 9 nucleotide differences resulting in four changes of amino acid sequences.

Amino Acid Sequence↗

Vitamin E dependent reduced glutathione inhibition of rat liver microsomal lipid peroxidation.

Effects of reduced glutathione (GSH) were investigated on in vitro lipid peroxidation of hepatic microsomes obtained from Long-Evans Hooded rats fed chemically defined, purified diets containing adequate or documented deficiencies of vitamin E (E), selenium (Se) or both. Glutathione inhibited lipid peroxidation mediated by both NADPH-dependent enzymatic and ascorbate-dependent non-enzymatic systems. The inhibitory effect of GSH was observed in microsomes obtained from E supplemented groups whereas it has no effect on microsomes from E deficient animals. Selenium status had no effect on GSH inhibition. Glutathione was found to be specific for the E dependent inhibition of lipid peroxidation and could not be substituted by other sulfhydryl compounds tested. Also, GSH did not inhibit non-enzymatic lipid peroxidation of heat-denatured microsomes from either E-supplemented groups or any of the other dietary regimens.

Animals↗