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J Moss

Publications and source records attributed to J Moss.

At least 577 records · Page 32Linked to original sources

Enzymatic and chemical oxidation of gangliosides in cultured cells: effects of choleragen.

Cell surface glycolipids of normal human fibroblasts and NCTC2071 cells (transformed mouse fibroblasts) were labeled by incubating the intact cells with either galactose oxidase or sodium periodate, followed by reduction of the oxidized sugar residues with NaB3H4. In intact human fibroblasts, incorporation of 3H was increased with increasing time of exposure to galactose oxidase prior to treatment with NaB3H4. Following limited exposure to galactose oxidase, more label was incorporated into the larger glycolipids. Although labeling of the monosialoganglioside GM1 was maximal by 16 h, not all of the GM1 in the intact cells appeared to be accessible to galactose oxidase, since 10 to 12 times more GM1 was labeled when cells were disrupted before incubation with the enzyme. The human fibroblasts contained approximately 8 X 10(6) molecules of GM1 per cell. Maximal binding of choleragen (5 X 10(5) molecules of [125I]choleragen per cell) completely prevented cholevented oxidation of GM1 in intact fibroblasts by galactose oxidase but only partially protected the sialic acid moiety of GM1 from oxidation by periodate. Choleragen had little effect on the enzymatic or chemical oxidation of other glycolipids. NCTC 2071 cells do not contain endogenous GM1 but incorporate exogenous GM1 from the culture medium. When bound to NCTC 2071 cells, exogenous GM1 was protected by choleragen from oxidation by galactose oxidase or whether endogenous or taken up from the incubation medium, are, after interaction with choleragen, less accessible to oxidation by periodate or galactose oxidase.

Animals↗

Mechanism of action of choleragen. Evidence for ADP-ribosyltransferase activity with arginine as an acceptor.

Choleragen catalyzed the hydrolysis of NAD to ADP-ribose and nicotinamide; nicotinamide production was dramatically increased by L-arginine methyl ester and to a lesser extent by D- or L-arginine, but not by other basic amino acids. Guanidine was also effective. Nicotinamide formation in the presence of L-arginine methyl ester was greatest under conditions previously shown to accelerate the hydrolysis of NAD by choleragen (Moss, J., Manganiello, V. C., and Vaughan, M. (1976) Proc. Natl. Acad. Sci. U.S.A. 73, 4424-4427). After incubation of [adenine-U14C]NAD and L[3H]arginine with coleragen, a product was isolated by thin layer chromatography that contained adenine and arginine in a 1:1 ratio and has been tentatively identified as ADP-ribose-L-arginine. Parallel experiments with [carbonyl-14C]NAD have demonstrated that formation of the ADP-ribosyl-L-arginine derivative was associated with the production of [carbonyl-14C]nicotinamide. As guanidine itself was active and D- and L-arginine was equally effective in promoting nicotinamide production, whereas citrulline, which possesses a ureido rather than a guanidino function, was inactive, it seems probable that the guanidino group rather than the alpha-amino moiety participated in the linkage to ADP-ribose. Based on the assumption that the ADP-ribosylation of L-arginine by choleragen is a model for the NAD-dependent activation of adenylate cyclase by choleragen, it is proposed that the active A protomer of choleragen catalyzes the ADP-ribosylation of an arginine, or related amino acid residue in a protein, which is the cyclase itself or is critical to its activation by choleragen.

Adenosine Diphosphate Sugars↗

Effect of the A and B protomers of choleragen on release of trapped glucose from liposomes containing or lacking ganglioside GM1.

Liposomes containing trapped glucose were used to examine the interaction of the A and B protomers of choleragen with ganglioside GM1 and lipid model membranes. The B protomer (choleragenoid) was as effective as choleragen in causing release of trapped glucose from liposomes containing GM1; the A protomer did not release glucose from GM1 liposomes. Neither choleragen nor the A or B protomers caused release of trapped glucose from glycolipid-free liposomes. Anti-choleragen and complement, however, caused release of trapped glucose from ganlioside-free liposomes previously incubated with the A protomer but not from those incubated with the B protomer or choleragen. These results suggest that the A protomer, but not intact choleragen or B protomer, bound to ganglioside-free liposomes. Presumably, the A protomer must be freed of the constraints present in the intact choleragen in order to interact with the liposomal model membrane system.

Bacterial Proteins↗

Effect of gangliosides and substrate analogues on the hydrolysis of nicotinamide adenine dinucleotide by choleragen.

Choleragen and its A protomer catalyzed the hydrolysis of NAD to ADP-ribose and nicotinamide. NADase activity was inhibited by gangliosides GM1 (galactosyl-N-acetylgalactosaminyl-[N-acetylneuraminyl]-galactosylglucosylceramide), GM2 (N-acetylgalactosaminyl-[N-acetylneuraminyl]-galactosylglucosylceramide), GM3 (N-acetylneuraminyl-galactosylglucosylceramide), and GD1a (N-acetylneuraminylgalactosyl-N-acetylgalactosaminyl-E1N-acetylneuraminyl]-galactosylglucosylceramide). These gangliosides also increased the intensity of the tryptophanyl fluorescence of the isolated A protomer (lambda max = 328 nm). GM1 but not GM2, GM3, and GD1a caused a "blue shift" in the fluorescence spectrum of the B protomer. These results are consistent with other evidence that the specificity of GM1 as the choleragen receptor resides in its carbohydrate moiety. The NADase activity of choleragen was similar to that of diphtheria toxin previously described [J. Kandel, R. J. Collier & D. W. Chung (1974) J. Biol. Chem. 249, 2088-2097]. As with diphtheria toxin, analogues of NAD were inhibitory, adenine being the most effective. Significant inhibition was also noted with adenosine, AMP, ADP-ribose, nicotinamide, nicotinamide mononucleotide, and NADP. NADP was hydrolyzed only slowly by choleragen. In the NADase reaction catalyzed by diphtheria toxin, water serves as an acceptor for the ADP-ribose moiety of NAD in lieu of the natural acceptor molecule, which is elongation factor II (Kandel et al., 1974). It seems probable that the natural protein acceptor for ADP-ribose in the reaction catalyzed by choleragen is adenylate cyclase or a protein component of a cyclase complex that regulates enzymatic activity.

Adenine↗

Choleragen activation of solubilized adenylate cyclase: requirement for GTP and protein activator for demonstration of enzymatic activity.

The requirements for choleragen activation of adenylate cyclase [ATP pyrophosphate-lyase (cyclizing), EC 4.6.1.1] were investigated by using an enzyme preparation solubilized with Triton X-100 from an extensively washed brain particulate fraction and partially purified with DEAE-cellulose. Unlike the particulate enzyme, this preparation was not activated after incubation with choleragen plus dithiothreitol, ATP, and NAD. Addition of the purified protein activator of cyclic nucleotide phosphodiesterase and calcium to the partially purified enzyme increased basal activity somewhat, but choleragen activation was minimal. When cyclase was incubated with GTP plus the protein activator (and calcium), choleragen markedly increased the activity 3- to 6-fold. When GppNHp and protein activator were incubated with the cyclase prior to assay, activity was elevated but no effect of choleragen was observed. GTP and GppNHp had relatively small effects on cyclase activity in the absence of protein activator or if they were added directly to the assay. Boiled brain supernatant was consistently more effective than protein activator (plus calcium) and GTP, suggesting that other factors are required for maximal cyclase activity after choleragen treatment. It appears that the cyclase system is dissociable into several components, all of which may be necessary for optimal regulation of activity. It is probable that one of these is the heat-stable calcium-dependent protein activator of cyclic nucleotide phosphodiesterase and adenylate cyclase that we have found is required along with GTP for demonstration of choleragen activation of partially purified brain adenylate cyclase.

Adenosine Triphosphate↗

Uptake and metabolism of gangliosides in transformed mouse fibroblasts. Relationship of ganglioside structure to choleragen response.

NCTC 2071 cells, transformed mouse fibroblasts, when grown in chemically defined medium, are deficient in gangliosides and do not respond to choleragen. The cells lack two biosynthetic enzymes, CMP-sialic acid:lactosylceramide sialyltransferase and UDP-galactose:GM2 (GalNAc-[AcNeu]-Gal-Glc-ceramide) galactosyltransferase, which are required for ganglioside synthesis. Following uptake of ganglioside GM1 (Gal-GalNAc-[AcNeu]-Gal-Glc-ceramide) from the medium, the cells respond to choleragen; however, they remain unresponsive following uptake of gangliosides GM2 (approximately 6 X 10(6) molecules/cell) and GM3 (AcNeu-Gal-Glc-ceramide) (approximately 2 X 10(6) molecules/cell). A response was observed when the cells had bound approximately 2 X 10(7) molecules of GM2/cell. After binding GD1a (AcNeu-Gal-GalNAc-[AcNeu]-Gal-Glc ceramide) (approximately 2 X 10(5) molecules/cell), cells exhibit some response to the toxin which can be attributed to enzymatic conversion of GD1a to GM1. A second line of NCTC 2071 cells which have 2.5 X 10(7) molecules of endogenous GM2/cell is slightly responsive to choleragen; adenosine 3':5'-monophosphate (cyclic AMP) levels rise 150%. However, when these cells have bound 4.4 X 10(4) molecules of GM1 per cell, cyclic AMP levels rise 7-fold following toxin treatment. GM1, which becomes functionally integrated into the cells, appears to be the natural receptor for choleragen and is 50 to 1000 times more effective than other gangliosides in eliciting a choleragen response.

Binding Sites↗

Choleragen-mediated release of trapped glucose from liposomes containing ganglioside GM1.

125I-Labeled choleragen was bound to liposomes containing galactosyl-N-acetylgalactosaminyl-(N-acetylneuraminyl)-galactosylglucosylceramide (GM1), but not in large amounts to ganglioside-free liposomes nor to those containing N-acetylneuraminylgalactosylglucosylceramide (GM3), N-acetylgalactosaminyl-(N-acetylneuraminyl)-galactosylglucosylceramide (GM2), or N-acetylneuraminylgalactosyl-N-acetylgalactosaminyl-(N-acetylneuraminyl)-galactosylglucosylceramide (GD1a). Choleragen released trapped glucose only from GM1-liposomes. This choleragen-induced glucose release from GM1-liposomes was relatively rapid for the first few minutes, then continued more slowly. The amount of glucose released from liposomes in 30 min was dependent on both the GM1 content and choleragen concentration. Prior incubation of GM1-liposomes with anti-GM1 antiserum prevented the choleragen-dependent release of trapped glucose. After incubation of GM1-liposomes with choleragen, addition of anticholeragen antibodies and complement led to more extensive glucose release. Under these latter conditions a much smaller glucose release was observed also from liposomes containing GM1 or N-acetylneuraminylgalactosyl-N-acetylgalactosaminyl-(N-acetylneuraminyl)-galactosylglucosylceramide in the absence of choleragen. These releases were attributed to naturally-occurring antiganglioside antibodies in the antiserum and complement. Ganglioside-free liposomes did not release glucose in response to anticholeragen and complement. It appears that choleragen in the absence of other proteins binds specifically to liposomes containing GM1 and can induce permeability changes.

Antigen-Antibody Reactions↗

Hydrolysis of nicotinamide adenine dinucleotide by choleragen and its A protomer: possible role in the activation of adenylate cyclase.

Choleragen and the isolated A protomer catalyzed the hydrolysis of NAD to ADP-ribose and nicotinamide. The protein with NADase activity (NAD nucleosidase; NAD glycohydrolase, EC 3-2-2-5) migrated on polyacrylamide gels with choleragen, and chromatographed on Bio-Gel P-60 columns with the A protomer. The NADase activity of choleragen and of the A protomer was increased markedly in acetate and phosphate buffers, and enhanced over 10-fold by dithiothreitol in high concentration. NAD hydrolysis was proportional to choleragen concentration; the Michaelis constant for NAD was about 4 mM with both choleragen and the A protomer. The demonstration that the A protomer of choleragen catalyzes an enzymatic reaction involving activation of the ribosyl-nicotinamide bond of NAD, a reaction analogols to those catalyzed by diphtheria toxin, supports the hypothesis that activation of adenylate cyclase by choleragen involves the ADP-ribosylation of an appropriate acceptor protein.

Adenylyl Cyclases↗

Functional incorporation of ganglioside into intact cells: induction of choleragen responsiveness.

NCTC 2071 cells are unable to synthesize the monosialoganglioside GM1. When grown in chemically defined medium these cells contained no detectable GM1 and did not accumulate 3': 5'-cyclic AMP in response to choleragen. Incubation of the cells with [3H]GM1 permitted quantification of ganglioside uptake which was dependent on time and concentration of [3H]GM1 in the medium. Responsiveness to choleragen was demonstrated with binding of as few as 17,000 molecules of [3H]GM1 per cell; a maximal response was observed with 10(5) molecules per cell. With increasing cellular content of GM1, the rate of rise in intracellular cyclic AMP in response to choleragen was increased. With greater than 1 X 10(5) molecules of GM1 per cell, the delay between addition of choleragen and the cyclic AMP response was inversely proportional to choleragen concentration; less than 250 molecules of choleragen per cell caused a significant increase in cyclic AMP after 8 hr of incubation. Although the responsiveness of intact cells to choleragen was dependent on GM1, choleragen activation of adenylate cyclase in homogenates with 0.6 mM NAD was independent of added ganglioside. These observations are consistent with the view that exogenous ganglioside GM1 can be functionally integrated into the surface membrane of intact cells and serve as the choleragen receptor. Furthermore, although exogenous GM1 is required for choleragen responsiveness in intact cells, the ganglioside does not play an obligatory role in cell homogenates, where the surface receptor can presumably be bypassed.

Adenylyl Cyclases↗

Thresholds of food odors in the elderly.

Thresholds for nine food odors were found for two groups of subjects, young and elderly. Dravniek's dynamic triangle olfactometer, which employs the forced-choice, triangle principle and controls for guessing was used. Elderly subjects were found to have a considerably reduced sensitivity to these odors compared with young subjects.

Adult↗

Inhibition by cyclopropane of release od norepinephrine, but not dopamine-beta-hydroxylase, from the guinea-pig vas deferens.

Like halothane, cyclopropane reduces stimulation-induced release of norepinephrine, but not release of dopamine-beta-hydroxylase, from the isolated guinea-pig vas deverens. The dissociation between transmitter release and enzyme release in the presence of cyclopropane may be the result of either an increase in the affinity of norepinephrine for binding sites on the vesicular membrane produced by cyclopropane, or a direct effect of cyclopropane on a mechanism of release of norepinephrine that could be controlled independently of release of dopamine-beta-hydroxylase.

Animals↗

Effect of salicylates on histamine and L-histidine metabolism. Inhibition of imidazoleacetate phosphoribosyl transferase.

In man and other animals, urinary excretion of the histidine and histamine metabolite, imidazoleacetate, is increased and that of its conjugated metabolite, ribosylimidazoleacetate, decreased by salicylates. Imidazoleacetate has been reported to produce analgesia and narcosis. Its accumulation as a result of transferase inhibition could play a part in the therapeutic effects of salicylates. To determine the locus of salicylate action, we have investigated the effect of anti-inflammatory drugs on imidazoleacetate phosphoribosyl transferase, the enzyme that catalyzes the ATP-dependent conjugation of imidazoleacetate with phosphoribosylpyrophosphate. As little as 0.2 mM aspirin produced 50% inhibition of the rat liver transferase. In vivo, a 30% decrease in the urinary excretion of ribosylimidazoleacetate has been observed with plasma salicylate concentrations of 0.4 mM. The enzyme was also inhibited by sodium salicylate but not by salicylamide, sodium gentisate, aminopyrine, phenacetin, phenylbutazone, or indomethacin. The last four drugs have been shown previously not to alter the excretion of ribosylimidazoleacetate when administered in vivo. Since both the drug specificity and inhibitory concentrations are similar in vivo and in vitro, it seems probable that the effect of salicylates on imidazoleacetate conjugation results from inhibition of imidazoleacetate phosphoribosyl transferase.

Anti-Inflammatory Agents↗

Inhibition of insulin rlease by scorpion toxin in rat pancreatic islets.

Toxin purified from venom of the scorpion Leiurus quinquestriatus was used to release the norepinephrine from adrenergic nerve terminals in isolated pancreatic islets perifused in vitro. Addition of toxin (10 mug./ml) to the perifusion medium caused a sixfold increase in release of norepinephrine in the presence or absence of 3 X 10(-5) M phenoxybenzamine. During 20 minutes of stimulation with toxin, the pancreatic islets released an average of 15 pg. of norepinephrine per islet, which represented 20 per cent of the normal content of norepinephrine in islets. Insulin secretory rates in response to either 1.0 or 3.0 mg./ml. glucose were inhibited similarly by scorpion toxin. Addition of phenoxybenzamine abolished the inhibition of insulin release caused by scorpion toxin. Phenoxybenzamine alone did not affect release of insulin. Neither the enhanced release of norepinephrine nor the decreased release of insulin was reversed by a 20-minute wash-out period after infusion of toxin. These results indicate that the sympathetic nerve terminals in the rat pancreatic islet contain considerable amounts of norepinephrine that can be released by scorpion toxin. The norepinephrine released from sympathetic nerve endings in the pancreatic islet can inhibit release of insulin through an alpha-adrenergic action that is blocked by phenoxybenzamine.

Animals↗

Inhibition by halothane of release of norepinephrine, but not of dopamine-beta-hydroxylase, from guinea-pig vas deferens.

Halothane strikingly decreases spontaneous and electrically stimulated release of norepinephrine from the isolated guinea pig hypogastric nerve--vas deferens preparation. This depression of adrenergic discharge appears to be a direct action on the sympathetic nerve endings and may in part account for the cardiovascular depression seen during halothane administration. Although halothane depressed stimulation-induced release of norepinephrine, it did not proportionately diminish release of dopamine-beta-hydroxylase. Possible mechanisms of the dissociation between catecholamine and enzyme release are discussed.

Animals↗

Biochemical and histofluorescence studies of catecholamines in superior cervical ganglia in organ culture.

The metabolism of catecholamines in rat superior cervical ganglia in organ culture was examined by biochemical and histofluorescence methods. Pronounced increases in both norepinephrine and dopamine content were observed in the cultured ganglia. Norepinephrine levels were more than doubled after 12 hours in culture and reached a maximum after 24 hours. The greatest increase in norepinephrine concentration occurred in the region of the postganglionic nerve trunks and was correlated with an accumulation of intense catecholamine fluorescence in the stumps of the severed postganglionic nerves. Since the rate of norepinephrine synthesis was unaltered, the increase in norepinephrine levels in cultured ganglia appears to be a result of blocked axoplasmic transport of this amine out of the ganglia. The dopamine content of the cultured preparations was not altered after 24 hours but increased rapidly thereafter and attained a maximum at 48 hours. The changes in dopamine did not parallel the changes in norepinephrine either in time course or distribution. The elevated levels of dopamine were accompanied by an increased rate of dopamine synthesis. It is suggested that the increased dopamine content in cultured ganglia is the result of an enhanced synthesis of this amine by specific dopaminergic cells.

Animals↗