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Attenuation of sn-1,2-diacylglycerol second messengers. Metabolism of exogenous diacylglycerols by human platelets.

The metabolism of exogenous [3H]diacylglycerols by intact human platelets was studied in order to examine: the metabolic fate of these second messengers in an intact cell, the effect of diacylglycerol kinase and diacylglycerol lipase inhibitors on this metabolism, the effect of agonist stimulation on metabolism, and the dependence of metabolism on diacylglycerol chain length. When 2.5 microM [3H]dioctanoylglycerol (diC8) was added to 10(9) platelets it was rapidly metabolized; 80% was converted to various products in 2.5 min. Initially, 40% was recovered as 3H-labeled phospholipid (predominantly phosphatidic acid) reflecting the action of diacylglycerol kinase, 20% was recovered as [3H]glycerol due to the action of diacylglycerol and monoacylglycerol lipases, and small amounts were recovered as triacylglycerol and monoacylglycerol. Thrombin stimulation of platelets did not affect the rate or pathway of metabolism. Pretreatment of platelets with the diacylglycerol kinase inhibitors, diC8ethyleneglycol or 1-monooleoylglycerol, inhibited 3H-labeled phospholipid production 47% and 75%, respectively, and resulted in a longer lived diC8 signal. The diacylglycerol lipase inhibitor, RHC 80267, inhibited the production of water-soluble metabolites 75%. Despite inhibition of the lipase, the overall metabolism of exogenous [3H]diC8 occurred at a similar rate as in control platelets due to an increased flux towards phospholipid. The ability of exogenous diacylglycerols to be metabolized by diacylglycerol kinase correlated well with their ability to activate protein kinase C in platelets. [3H]Dibutyroylglycerol, didodecanoylglycerol, and ditetradecanoylglycerol, were not metabolized by this route. These diacylglycerols were still metabolized via the lipase pathway. The results indicate that platelets possess potent attenuation systems to defend against the accumulation of diacylglycerol second messengers, and that the primary metabolic fate of cell-permeable, exogenous diacylglycerols is conversion to phosphatidic acid.

Blood Platelets↗

[Process of fumigatin and spinulosin formation by Aspergillus fumigatus Fres and polarographic assay of these toxins (author's transl)].

A strain of Aspergillus fumigatus (Fresenius) isolated from a milk food for calves was grown on a culture medium containing added saccharose. The purpose was to study the synthesis of two recently discovered mycotoxins, fumigatin and spinulosin. The work was performed under many different conditions of temperature, pH and inoculum. These mycotoxins were measured by analytical differential pulse polarography. Correlations were observed between the growth rate of A. fumigatus and variation in pH of the medium and the formation of fumigatin, which is only possible when pH falls to less than 4.0. Fumigatin appears promptly at the beginning of the growth phase of the fungus but quickly disappears. The production of metabolite depends on limited conditions of culture. Spinulosin, very similar to fumigatin, is substituted for fumigatin in slightly different conditions. During growth, the fungus degrades both metabolites. The nature of the substitution and the reason of these modifications have not been investigated. Fumigatin and spinulosin formation is observed in both toxigenic and non-toxigenic strains.

Animal Feed↗

Dependence of secretory responses to gonadotropin-releasing hormone on diacylglycerol metabolism. Studies with a diacylglycerol lipase inhibitor, RHC 80267.

The role of diacylglycerol (DG) as a source of arachidonic acid during gonadotropin-releasing hormone (GnRH) stimulation of gonadotropin secretion was analyzed in primary cultures of rat anterior pituitary cells. An inhibitor of DG lipase (RHC 80267, RHC) caused dose-dependent blockade of GnRH-stimulated luteinizing hormone (LH) and follicle-stimulating hormone (FSH) secretion. The DG lipase inhibitor did not alter gonadotropin responses to arachidonic acid, and addition of arachidonic acid reversed its inhibition of GnRH-stimulated LH and FSH release. In [3H]arachidonic acid-prelabeled cells, incubation with RHC increased the accumulation of [3H]DG. These results suggest that DG lipase participates in GnRH action and that arachidonic acid mobilization from DG is involved in the mechanism of gonadotropin release. Gonadotropin responses to tetradecanoyl phorbol acetate and dioctanoyl glycerol were not altered by RHC, and the addition of these activators of protein kinase C (Ca2+- and phospholipid-dependent enzyme) did not prevent the inhibition of GnRH-induced gonadotropin release by RHC. Activation of phospholipase A2 by melittin increased LH and FSH secretion, whereas blockade of this enzyme by quinacrine reduced GnRH-stimulated hormone release. However, RHC did not diminish the gonadotropin response to melittin. The inhibitory actions of RHC and quinacrine were additive and were reversed by concomitant treatment with arachidonic acid. Ionomycin also increased LH and FSH release, and the gonadotropin responses to the ionophore were unaltered by RHC but were reduced by quinacrine. Incubation of cells in Ca2+-depleted (+/- [ethylenebis(oxyethylenenitrilo)]tetraacetic acid) medium reduced but did not abolish the LH and FSH releasing activity of GnRH. Treatment with RHC also reduced the gonadotropin responses to GnRH under Ca2+-depleted conditions. These observations indicate that RHC inhibition of GnRH action is not due to nonspecific actions on Ca2+ entry, protein kinase C activation and actions, nor phospholipase A2 enzyme activity. The results of this study provide further evidence for an extracellular Ca2+-independent mechanism of GnRH action, and suggest that GnRH causes mobilization of arachidonic acid by two distinct lipases, namely, phospholipase A2 and DG lipase, during stimulation of gonadotropin secretion.

Animals↗

NMR and molecular orbital studies of isomerism and tautomerism in oximes of 2-acyl cyclic 1,3-diones.

Molecular orbital calculations and 13C and 15N NMR experiments have been performed on the O-methyl oximes of two types of 2-acyl cyclic 1,3-diones. One (III; X = CH2) was based on cyclohexane, and the other (X = O) on pyran. The data indicate that both the cyclohexane and pyran compounds prefer to exist as the oxime, rather than the enamine isomer. Two equivalent, interconverting, keto-enol tautomers exist in the cyclohexane compound. The pyran compound exists as the lactone-enol tautomer. Our results have implications in the design of herbicidal compounds and drugs containing similar tautomeric systems.

Cyclohexanes↗

[Hepatitis probably caused by Plethoryl. Apropos of 7 cases].

Seven patients developed acute hepatitis after receiving Plethoryl for obesity for 4 to 16 weeks. Jaundice was generally associated with or preceded by asthenia, nausea and pruritus. Serum aminotransferase activities were markedly increased whereas alkaline phosphatase and gamma-glutamyltransferase activities were moderately elevated. There was no hepatic failure. In all cases, Plethoryl administration was promptly discontinued. In 6 cases, jaundice disappeared within 2 to 4 weeks, and recovery occurred within 2 to 5 months. In one case, however, jaundice disappeared within 12 weeks and recovery took 10 months.

Acute Disease↗

The reaction mechanism of the novel vanadium-bromoperoxidase. A steady-state kinetic analysis.

The reaction of vanadium-bromoperoxidase from the brown alga Ascophyllum nodosum with hydrogen peroxide, bromide, and 2-chlorodimedone has been subjected to an extensive steady-state kinetic analysis. Systematic variation of pH and the concentrations of these three components demonstrate that the reaction model includes four enzyme species: native bromoperoxidase, a bromoperoxidase-bromide inhibitory complex, a bromoperoxidase-hydrogen peroxide intermediate, and a bromoperoxidase-HOBr species. This latter intermediate did not display any direct interaction with the nucleophilic reagent as oxidized bromine species (Br-3, Br2, and/or HOBr) were the primary reaction products. The generation of oxidized bromine species was as fast as the bromination of 2-chlorodimedone. The enzyme did not show any specificity with regard to bromination of various organic compounds. Formation of the bromoperoxidase-bromide inhibitory complex was competitive with the reaction between hydrogen peroxide and enzyme. From the steady-state kinetic data lower limits for the second-order rate constants at various pH values were calculated for individual steps in the catalytic cycle. This pH study showed that native enzyme must be unprotonated prior to binding of hydrogen peroxide (second-order association rate constant of 2.5.10(6) M-1.s-1 at pH greater than 6). The pKa for the functional group controlling the binding of hydrogen peroxide was 5.7 and is ascribed to a histidine residue. The reaction rate between bromide and enzyme-hydrogen peroxide intermediate also depended on pH (second-order association rate constant of 1.7.10(5) M-1.s-1 at pH 4.0).

Barbital↗

Modification of serum, pancreatic, and microbial lipase activities by phorbol diesters.

The influence of phorbol diesters on the in vitro hydrolysis of diacylglycerols was examined using enzymes from rat serum, porcine pancreas, and Rhizopus delemar. Two main phenomena were observed: 12-O-tetradecanoylphorbol-13-acetate (TPA), when added to the enzyme assay system, stimulated 2- to 3-fold the hydrolysis of [9,10-3H]dioleoylglycerol by serum lipase. The hydrolysis of dioleoylglycerol by either pancreatic or R. delemar lipase was, on the other hand, inhibited by TPA. A 50% inhibition of the pancreatic and R. delemar enzymes was attained with 10 and 2.0 microM TPA, respectively. The pattern of enzyme stimulation (rat serum), with regard to increasing TPA concentrations, was hyperbolic. Stimulation was not influenced by Triton X-100, but it was highly dependent on the structure of the phorbol ester: TPA greater than phorbol didecanoate greater than tetradecanoylphorbol. Phorbol dibutyrate, phorbol acetate, myristic acid, and mezerein were without influence. Lipase activity was inhibited most strongly by TPA and the nonpromoter 4-O-methyl-TPA; the weaker promoter, phorbol dibutyrate, was relatively inactive. The inhibition of R. delemar lipase by TPA was reversible. Collectively, these data show that phorbol diesters can interact with enzymes other than protein kinase C. It is believed, by virtue of their structural similarity to diacylglycerols, that phorbol diesters may serve directly as intracellular regulators of lipid metabolism. In such a manner phorbol esters could sustain or attenuate the second messenger signal by modifying diacylglycerol metabolism, a manifestation of the pleiotropic action.

Animals↗

Evidence for an essential arginine residue in the active site of Escherichia coli 2-keto-4-hydroxyglutarate aldolase. Modification with 1,2-cyclohexanedione.

Treatment of homogeneous preparations of Escherichia coli 2-keto-4-hydroxyglutarate aldolase with 1,2-cyclohexanedione, 2,3-butanedione, phenylglyoxal, or 2,4-pentanedione results in a time- and concentration-dependent loss of enzymatic activity; the kinetics of inactivation are pseudo-first order. Cyclohexanedione is the most effective modifier; a plot of log (1000/t 1/2) versus log [cyclohexanedione] gives a straight line with slope = 1.1, indicating that one molecule of modifier reacts with each active unit of enzyme. The kinetics of inactivation are first order with respect to cyclohexanedione, suggesting that the loss of activity is due to modification of 1 arginine residue/subunit. Controls establish that this inactivation is not due to modifier-induced dissociation or photoinduced structural alteration of the aldolase. The same Km but decreased Vmax values are obtained when partially inactivated enzyme is compared with native. Amino acid analyses of 95% inactivated aldolase show the loss of 1 arginine/subunit with no significant change in other amino acid residues. Considerable protection against inactivation is provided by the substrates 2-keto-4-hydroxyglutarate and pyruvate (75 and 50%, respectively) and to a lesser extent (40 and 35%, respectively) by analogs like 2-keto-4-hydroxybutyrate and 2-keto-3-deoxyarabonate. In contrast, formaldehyde or glycolaldehyde (analogs of glyoxylate) under similar conditions show no protective effect. These results indicate that an arginine residue is required for E. coli 2-keto-4-hydroxyglutarate aldolase activity; it most likely participates in the active site of the enzyme by interacting with the carboxylate anion of the pyruvate-forming moiety of 2-keto-4-hydroxyglutarate.

Amino Acids↗

UDP-glucose 4-epimerase from Saccharomyces fragilis. Presence of an essential arginine residue at the substrate-binding site of the enzyme.

UDP-glucose 4-epimerase from Saccharomyces fragilis was inactivated by the arginine-specific reagents phenylglyoxal, 1,2-cyclohexanedione, and 2,3-butanedione following pseudo first order reaction kinetics. The reaction order with respect to phenylglyoxal was 1.8 and that with respect to the other two diones was close to unity. Protection afforded by substrate and competitive inhibitors against inactivation by phenylglyoxal and the reduced interaction of 1-anilinonaphthalene 8-sulfonic acid, a fluorescent probe for the substrate-binding region after phenylglyoxal modification, suggested the presence of an essential arginine residue at the substrate-binding region. Experiments with [7-14C]phenylglyoxal in the presence of UMP, a ligand known to interact at the substrate-binding region, showed that only the arginine residue at the active site could be modified by phenylglyoxal. The characteristic coenzyme fluorescence of the yeast enzyme was found to be enhanced three times in phenylglyoxal-inactivated enzyme suggesting the incorporation of the phenyl ring near the pyridine moiety of NAD.

Arginine↗