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Inhibition of protein and DNA synthesis in tissue culture cells by a derivative of methyl glyoxal and ascorbate.

The inhibitory effect of a methyl glyoxal-ascorbate (MGA) adduct (NFCR 278021) on protein and DNA synthesis in monolayer cultures of GPK epithelial cells has been compared with the inhibitory action of methyl glyoxal (MG). GPK cells exhibited an ID50 of 0.98 microM MG for both protein and DNA synthesis compared with an ID50 of 0.92 mM for the adduct. Hill plots demonstrate that the characteristics of the receptor saturation are the same for MG and MGA, suggesting that the action of the two agents is mediated through the MG moiety which is modified by the presence of the ascorbate portion of the molecule in MGA. It is shown that MGA undergoes spontaneous oxidation in solution and is a substrate for ascorbate oxidase, but that no additional MG activity is released by total enzymic oxidation of MGA, and oxidised MGA possesses the same inhibitory characteristics as MGA. Inhibition of protein synthesis by ascorbate or dehydroascorbate were not demonstrated in the dose range employed for MGA. The inhibitory effect of the adduct on protein synthesis was found to be diminished in the presence of glutathione and glyoxalase I (Glo I) and II( Glo II).

Aldehydes↗

Inhibitory effects of methyl glyoxal on DNA, RNA and protein synthesis in cultured guinea pig keratocytes.

The inhibitory action of methyl glyoxal upon protein, RNA and DNA synthesis in guinea pig keratocytes has been investigated. Methyl glyoxal directly inhibits each of these processes. Inhibition of protein synthesis results from an action upon initiation of translation. Methyl glyoxal induces polysome degradation which is prevented by pretreatment with cycloheximide. Further analysis of translation indicates that elongation and termination are not affected. Inhibition of ribosomal RNA synthesis results from inhibition of maturation. Methyl glyoxal was found to inhibit the appearance of 28S rRNA in the cytoplasm from pulse-labelled precursors. The significance of these results is discussed in relation to cell injury by ketals.

Aldehydes↗

Effect of two aliphatic aldehydes, methylglyoxal and 4-hydroxypentenal, on the growth of Yoshida ascites hepatoma AH-130.

The influence of a ketoaldehyde, methylglyoxal (MG), and a hydroxyalkenal, 4-hydroxypentenal (HPE), on the growth of a highly-deviated tumour has been investigated. MG and HPE, administered intraperitoneally, strongly depressed in rats the proliferative activity of the Yoshida ascites hepatoma AH-130, reducing its mitotic and labelling indices as well as the proportion of cycling cells (growth fraction). Monitoring the effects on the cell cycle by the labelled mitoses method showed that the percentage of labelled mitoses was markedly lowered after either aldehyde, which is indicative for a blocking effect in the S phase. In addition, the mean cell cycle time was slightly prolonged by MG, probably due to accumulation of cells in G1, whereas HPE delayed the first mitotic peak and increased the mean DNA synthetic period without modifying the overall cycle time. The effects of HPE on the cell cycle were prevented by pretreatment with polyamines. Repeated doses of MG significantly increased the fraction of tumour-bearing rats surviving at 90 days ('indefinite' survivors) as well as the survival time of those which succumbed, implying that the carcinostatic effect of MG persisted over several cell cycles. By contrast, HPE did not significantly modify the survival of AH-130-bearing rats, suggesting that its influence on tumour growth was rapidly reversible.

Aldehydes↗

Factors affecting polyamine excretion from mammalian cells in culture. Inhibitors of polyamine biosynthesis.

Canavanine, diaminopropane, alpha-methylornithine and methylglyoxal bis(guanylhydrazone) decreased the intracellular polyamine concentrations in growing baby hamster kidney cells. Each of the inhibitors also prevented polyamine efflux into the extracellular medium. Concomitant with the decrease in polyamine excretion was a change in the distribution of polyamines in the extracellular medium. In each case there was a decrease in the amount of radioactivity present as free spermidine and an increase in that found as acetyl polyamines. The magnitude of this shift correlated with the degree of inhibition of excretion. It may be that acetyl polyamines play a role in the regulation of polyamine excretion.

Acetylation↗

Methylglyoxal and the polyol pathway. Three-carbon compounds are substrates for sheep liver sorbitol dehydrogenase.

Methylglyoxal, 1,2-propanediol and glycerol are shown to be substrates for sheep liver sorbitol dehydrogenase. With 1,2-propanediol the enzyme-catalyzed reaction occurs specifically with the R(-)-enantiomer. The maximum velocities and the specificity constants obtained for the three-carbon substrates are considerably lower than those reported previously for sorbitol, and suggest that rate-determination is imposed by catalytic steps other than the enzyme-coenzyme product dissociation. The present findings are discussed in terms of substrate specificity and stereospecificity, and may indicate novel aspects of sorbitol dehydrogenase function in relation to glucose metabolism and diabetic pathogenesis.

Acetone↗

The effect of A23187 on glucose production from methylglyoxal and pyruvate in isolated murine hepatocytes.

1. A23187 increased the glucose production from methylglyoxal in isolated hepatocytes, and maximal stimulation was obtained at 10(-6) M. The effect of A23187 was dependent on the presence of Ca2+. 2. Glucose production from pyruvate (less than 1 mM) in isolated hepatocytes was stimulated by A23187 in the presence of 2.5 mM Ca2+ and was depressed at pyruvate concentrations above 1 mM. Both the virtual Km and the virtual Vmax of glucose production from pyruvate were decreased by A23187.

Animals↗

Methylglyoxal and cell viability.

Methylglyoxal by depleting glutathione stores increased Trypan-blue uptake by the cells incubated in glucose, pyruvate and amino acids free medium. Only a transient fall of glutathione concentration without any effect on cell viability was caused by methylglyoxal when the medium was supplemented with above-mentioned compounds. The role of gamma-glutamyl-transpeptidase is discussed.

Amino Acids↗

Net glucose production from acetone in isolated murine hepatocytes. The effect of different pretreatments of mice.

1. To evaluate the condition under which net glucose production from acetone, added as sole substrate, occurs different pretreatments of mice, in combination with starvation, were used; (i) acetone pretreatment (acetone is a known inducer of cytochrome P-450 isozymes involved in this pathway), (ii) fructose pretreatment (to induce NADPH+H+ generating enzymes) or (iii) their combination. 2. There was net glucose formation from acetone only in that case, when the cells were prepared from 48 hr fasted animals pretreated with both acetone and fructose. However, using 2-14C-acetone, incorporation of 14C-carbon into glucose could be detected in all the cases and, at the same time, acetone was without any effect on protein synthesis. 3. The addition of acetone increased gluconeogenesis from alanine in almost all the cases. The only exception from this general rule was that the case, when hepatocytes were prepared from acetone pretreated 48 hr starved mice where, instead of the elevation of glucose formation, a decrease of that was caused by acetone. 4. Acetone decreased 14C-carbon incorporation into glucose from 14C-(U)-alanine added at saturating concentration in hepatocytes prepared from starved mice. 5. Similarly to acetone there was no net glucose formation from acetone either when added alone, however, it enhanced gluconeogenesis from alanine at non-saturating concentrations of the amino acid. 6. Methylglyoxal proved gluconeogenic in all the cases. 7. It is concluded that net glucose formation from acetone as sole substrate occurs only under those conditions which are far from a physiological situation, however, when gluconeogenesis from another substrate takes place, acetone can contribute to net glucose formation in hepatocytes prepared from fasted mice.

Acetone↗

Thrombin induces S-D-lactoylglutathione accumulation by enhancing platelet glycolytic pathway.

1. Thrombin addition to human platelets stimulates L(+)lactate formation and S-D-lactoylglutathione (SDL) accumulation. 2. Monoiodoacetamide decreases lactate formation and potentiates SDL accumulation through a significant increase of dihydroxyacetone phosphate and fructose1,6bisphosphate intracellular levels both in resting and in activated platelets. 3. A similar effect is produced by exogenous methylglyoxal on L(+)lactate formation and SDL accumulation. 4. Resting platelets completely transform (1 hr at 37 degrees C) the ketoaldehyde into D(-)lactate: 5. When platelets are incubated in the presence of thrombin only 60% of the ketoaldehyde is found as D(-)lactate and the accumulated S-D-lactoylglutathione represents about the 0.7% of the initial substrate. 6. During platelet stimulation with thrombin the hemithioacetal adduct, formed as a by-product of glycolytic pathway, can be rapidly removed for important steps of cellular activation.

Alkylation↗

Stabilization of erythrocytes by aldehydes and suitability of chicken IgY for the detection of potato virus X (PVX) in avidin-biotin enhanced reverse passive haemagglutination.

Methods are described for the detection of potato virus X (PVX) by reverse passive haemagglutination (RPH) by means of polyclonal antiviral antibodies coupled to sheep red blood cells (sRBC) and the chromic chloride method. The cells were stabilized with pyruvic aldehyde, thus providing a stock suspension for numerous coupling experiments lasting several months. Anti-PVX IgY, which is readily isolated in large amounts from the egg yolk of immunized chickens, was used in an avidin-biotin enhanced RPH assay with stabilized sRBC. With this method the PVX detection rate achieved was comparable to that of RPH assays using fresh non-fixed sRBC. In addition, avidin-coated sRBC could be stored for weeks at 4 degrees C and subsequently used for coupling with biotinylated IgY.

Animals↗