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Carnosine, the anti-ageing, anti-oxidant dipeptide, may react with protein carbonyl groups.

Carnosine (beta-alanyl-L-histidine) is a physiological dipeptide which can delay ageing and rejuvenate senescent cultured human fibroblasts. Carnosine's anti-oxidant, free radical- and metal ion-scavenging activities cannot adequately explain these effects. Previous studies showed that carnosine reacts with small carbonyl compounds (aldehydes and ketones) and protects macromolecules against their cross-linking actions. Ageing is associated with accumulation of carbonyl groups on proteins. We consider here whether carnosine reacts with protein carbonyl groups. Our evidence indicates that carnosine can react non-enzymically with protein carbonyl groups, a process termed 'carnosinylation'. We propose that similar reactions could occur in cultured fibroblasts and in vivo. A preliminary experiment suggesting that carnosine is effective in vivo is presented; it suppressed diabetes-associated increase in blood pressure in fructose-fed rats, an observation consistent with carnosine's anti-glycating actions. We speculate that: (i) carnosine's apparent anti-ageing actions result, partly, from its ability to react with carbonyl groups on glycated/oxidised proteins and other molecules; (ii) this reaction, termed 'carnosinylation,' inhibits cross-linking of glycoxidised proteins to normal macromolecules; and (iii) carnosinylation could affect the fate of glycoxidised polypeptides.

Aging↗

The titration of tetanus antitoxin I. Factors affecting the sensitivity of the indirect haemagglutination test.

Various factors affecting the indirect HA test for the titration of tetanus antitoxin have been evaluated with a view to obtaining maximum sensitivity in tests using unfixed sheep erythrocytes and sheep erythrocytes fixed with glutaraldehyde, formaldehyde and pyruvic aldehyde. The optimal concentration of tannic acid has been found to be 1/40 000 for tanning both fixed and unfixed sheep erythrocytes. Tanned sheep erythrocytes sensitized with 50 Lf/ml of tetanus toxoid at pH 7.2 for one hour were the most sensitive. Although the optimal temperature of sensitization was found to be 56 degrees C, unfixed cells tended to clump and lyse at this temperature. Thus a temperature of 37 degrees C was used to sensitize unfixed sheep erythrocytes. Sheep erythrocytes from different animals and the final concentration of sensitized sheep erythrocytes both had great effects on sensitivity. A final concentration of 0.5% of sensitized sheep erythrocytes was found suitable as a compromise between sensitivity and readability. The loss of sensitivity of fixed and sensitized erythrocytes was investigated by storing these cells at 4-8 degrees C for six to nine months.

Animals↗

The titration of tetanus antitoxin II. A comparative evaluation of the indirect haemagglutination and toxin neutralization tests.

Serum samples from 77 guinea pigs immunized against tetanus have been titrated for tetanus antitoxin by a standardized indirect haemagglutination (IHA) test and the conventional toxin neutralization (TN) test. These sera were titrated before and after treatment of the sera with 2-mercaptoethanol (2-ME) by the IHA test using unfixed sheep erythrocytes and erythrocytes fixed with glutaraldehyde, formaldehyde and pyruvic aldehyde. The titres of these sera obtained by IHA using unfixed and glutaraldehyde-fixed sheep erythrocytes before treatment of the sera with 2-ME were two to six times higher than the TN titres, whereas the IHA-titres using formaldehyde- and pyruvic aldehyde-fixed sheep erythrocytes were 10 times higher than the TN titres in some of the sera. There was no statistically significant difference between TN and IHA titres using unfixed and glutaraldehyde-fixed sheep erythrocytes after the treatment of the sera with 2-ME.

Animals↗

Oxidative damage of DNA by the reaction of amino acid with methylglyoxal in the presence of Fe(III).

Methylglyoxal (MG) is an endogenous metabolite which is present in increased concentrations in diabetics and reacts with amino acids to form advanced glycation end products. DNA cleavage induced by the reaction of MG with lysine in the presence of Fe3+ was investigated. When plasmid DNA was incubated with MG and lysine in the presence of Fe3+, DNA strand breakage was proportional to MG and lysine concentrations. The formation of superoxide anion was detected during this reaction, and catalase, hydroxyl radical scavengers and iron chelator, desferrioxamine inhibited DNA cleavage. Deoxyribose assays showed that hydroxyl radicals were generated during the MG/lysine/Fe3+ reaction. These results suggest that superoxide anion and H2O2 may be generated from the glycation reaction between lysine with MG, and that Fe3+ probably participates in a Fenton's type reaction to produce hydroxyl radicals, which may cause DNA cleavage. This mechanism, in part, may provide an explanation for the deterioration of organs under diabetic conditions.

Catalase↗

Synthesis and secretion of tumour necrosis factor-alpha by human monocytic THP-1 cells and chemotaxis induced by human serum albumin derivatives modified with methylglyoxal and glucose-derived advanced glycation endproducts.

Human serum albumin minimally-modified by methylglyoxal (MGmin-HSA) stimulated the synthesis and secretion of tumour necrosis factor-alpha (TNF-alpha) from human monocytic THP-1 cells in vitro. Human serum albumin minimally-modified by glucose-derived advanced glycation endproducts (AGEmin-HSA) and human serum albumin highly-modified by glucose-derived advanced glycation endproducts (AGE-HSA) stimulated markedly lower synthesis and secretion of TNF-alpha from THP-1 cells than did MGmin-HSA. The median effective concentration EC50 value of MGmin-HSA for the secretion of TNF-alpha was 5.8 +/- 0.3 microM and the maximal secretion was 0.28 +/- 0.01 ng TNF-alpha/ml (n = 12) for incubations containing 5 x 10(5) cells/ml. MGmin-HSA (0.2-2.0 microM) also stimulated chemotaxis of THP-1 cells in vitro but AGE-HSA did not in this concentration range. The EC50 value of MGmin-HSA for the chemotactic response was 0.44 +/- 0.07 microM (n = 15). Similar induction of the synthesis and secretion of TNF-alpha and chemotaxis by monocytes in response to MGmin-HSA in vivo may contribute to atherosclerosis in macro- and micro-angiopathy, particularly in the development of chronic clinical complications of diabetes mellitus.

Arginine↗

Modulation of plasminogen activation and plasmin activity by methylglyoxal modification of the zymogen.

The effect of methylglyoxal on the plasminogen-plasmin system is studied. Treatment of plasminogen with methylglyoxal at a 20-fold molar excess results in covalent modification of the molecule as evidenced by the decreased number of NH(2) side chains, arginine side chain residues and the new band in the non-tryptophan dependent fluorescent spectrum. This structural modification is associated with profound functional alterations: the rate of activation by streptokinase, tissue-type plasminogen activator, urokinase-type plasminogen activator and trypsin decreases and the amidolytic activity of the generated plasmin is impaired. Plasmin treatment with methylglyoxal on the other hand does not alter its steady-state kinetic parameters on a peptidyl-anilide synthetic substrate, indicating that modification susceptible side chains are sensitive to methylglyoxal only in the zymogen. Our data suggest that in vivo fibrinolysis could be impaired under pathological conditions, e.g. increased methylglyoxal formation in diabetes mellitus.

Animals↗

Methylglyoxal-modified arginine residues--a signal for receptor-mediated endocytosis and degradation of proteins by monocytic THP-1 cells.

Non-enzymatic glycosylation or glycation of proteins to form advanced glycation endproducts (AGE) has been proposed as a process which provides a signal for the degradation of proteins. Despite this, the AGE which act a recognition factor for receptor-mediated endocytosis and degradation of glycated proteins by monocytes and macrophages has not been identified. Methylglyoxal, a reactive alpha-oxoaldehyde and physiological metabolite, reacted irreversibly with arginine residues in proteins to form Ndelta-(5-hydro-5-methyl-4-imidazolon-2-yl)ornithine and Ndelta-(5-methyl-4-imidazolon-2-yl)ornithine residues. Human serum albumin minimally-modified with methylglyoxal (MG(min)-HSA) was bound by cell surface receptors of human monocytic THP-1 cells in vitro at 4 degrees C: the binding constant K(d) value was 377 +/- 35 nM and the number of receptors per cell was 5.9 +/- 0.2 X 10(5) (n = 12). N alpha-Acetyl-Ndelta-(5-hydro-5-methyl-4-imidazolon-2-yl)orni thine displaced MG(min)-HSA from THP-1 cells, suggesting that the Ndelta-(5-hydro-5-methyl-4-imidazolon-2-yl)ornithine residue was the receptor recognition factor. At 37 degrees C, MG(min)-HSA was internalised by THP-1 cells and degraded. Similar binding and degradation of human serum albumin modified by glucose-derived AGE was found but only when highly modified. MG(min)-HSA, therefore, is the first example of a protein minimally-modified by AGE-like compounds that binds specifically to monocyte receptors. The irreversible modification of proteins by methylglyoxal is a potent signal for the degradation of proteins by monocytic cells in which the arginine derivative, Ndelta-(5-hydro-5-methyl-4-imidazolon-2-yl)ornithine, is the receptor recognition factor. This factor is not present in glucose-modified proteins.

Arginine↗

Effect of methylglyoxal on glucose formation, drug oxidation and glutathione content in isolated murine hepatocytes.

The first stage in the formation of glucose from acetone involves two oxidation steps catalyzed by isozymes of the cytochrome P-450 II E1 gene subfamily; methylglyoxal formed this way is further converted to pyruvate by a reversible conjugation with reduced glutathione. The effect of methylglyoxal on glucose formation, oxidation of aminopyrine, aniline and on reduced glutathione content was investigated in isolated hepatocytes prepared from (i) fasted or (ii) fasted and acetone (known to induce isozymes of P-450 II E1 gene subfamily) pretreated mice. Glucose formation and drug oxidation were increased by methylglyoxal at concentrations below 1 mM, but were severely decreased above 1 mM. Methylglyoxal also decreased protein synthesis at concentrations above 1 mM. If the addition of methylglyoxal was combined with that of other gluconeogenic precursors and glucose the initial increasing effect on drug oxidation was moderated or diminished and the decreasing effect (at high concentrations) was enhanced. The glutathione content of the cells was decreased by methylglyoxal in a concentration dependent manner. Acetone pretreatment of mice also resulted in a decreased glutathione content of the liver. Based on these observations it is assumed that methylglyoxal has contrasting effects in hepatocytes, and can contribute to the disturbed metabolism under circumstances when the acetone production is elevated.

Acetone↗

Dietary glycotoxins correlate with circulating advanced glycation end product levels in renal failure patients.

BACKGROUND: Levels of advanced glycation end products (AGEs), well-known proinflammatory compounds, are markedly elevated in patients with renal failure, raising the speculation that they have a role as cardiovascular risk factors in this population. Although elevated AGE levels in patients with renal failure have been attributed to impaired renal clearance and increased endogenous AGE formation, recent data suggest an important role for diet as a source of AGEs. METHODS: To determine the relationship between dietary AGE content and serum AGE levels, a cross-sectional study was performed in our long-term dialysis patients. Dietary AGE intake was estimated by means of dietary records and questionnaires, and sera were obtained for measurement of 2 well-characterized AGEs, carboxymethyl-lysine (CML) and methylglyoxal (MG) derivatives. RESULTS: The study population included 189 patients; 139 hemodialysis and 50 peritoneal dialysis patients. Serum CML level correlated significantly with dietary AGE intake, based on either 3-day food records (r = 0.5; P = 0.003) or dietary questionnaires (r = 0.22; P = 0.03). Although no correlation was observed with nutrient intake (protein, fat, saturated fat, or carbohydrate), both serum CML and MG levels correlated with blood urea nitrogen (r = 0.2; P = 0.03 and r = 0.2; P = 0.02, respectively) and serum albumin levels (r = 0.16; P = 0.04 and r = 0.18; P = 0.02, respectively). CONCLUSION: Data indicate that dietary AGE content, independently of other diet constituents, is an important contributor to excess serum AGE levels in patients with renal failure. Moreover, the lack of correlation between serum AGE levels and dietary protein, fat, and carbohydrate intake indicates that a reduction in dietary AGE content can be obtained safely without compromising the content of obligatory nutrients.

Cross-Sectional Studies↗

Inhibition of gastric mucosal damage by methylglyoxal pretreatment in rats.

The effect of methylglyoxal pretreatment on gastric mucosal injuries caused by 80% ethanol, 25% NaCl and 0.2 M NaOH, was investigated in rats. The effects caused by pylorous ligation accumulated gastric acid secretions and ethanol-induced changes in gastric mucus secretions, levels of proteins, nucleic acid, malondialdehyde (MDA) and non-protein sulfhydryl groups were also investigated. Methylglyoxal pretreatment at oral doses of 50, 100 and 200 mg/kg body weight was found to provide a dose-dependent protection against the ulcerogenic effects of different necrotizing agents used. With the same dose regimen methylglyoxal offered significant protection against ethanol-induced damage on the parameters evaluated for histopathology. Furthermore, the pretreatment afforded a dose-dependent inhibition of pylorous ligated accumulation of gastric acid secretions and ethanol-induced depletion of stomach wall mucus, proteins, nucleic acids, NP-SH contents and an increase in the MDA levels in gastric tissue. The protective effect of methylglyoxal against ethanol-induced damage to the gastric wall mucosa may be mediated through its effect on mucous production, proteins, nucleic acids, NP-SH groups and its free-radical scavenging property under the influence of polyamines stimulated by ornithine decarboxylase activity (ODC).

Animals↗

On the promine/retine theory of cell division: now and then.

Although the glyoxalase system was discovered in 1913, its function in the biological network is still a subject of debate. An attractive theory on its role was described by Albert Szent-Györgyi in the 1960s. From a bird's eye view, the promine/retine concept of Szent-Györgyi seems to give a plausible role for this ubiquitous enzyme system, but on going into detail, it obviously suffers from several uncertainties which have not been discussed until now. Here, a critical overview of the theory is presented by taking the pros and cons into account. It looks as though more data object to the theory than give support to it; and the search for anticancer medicines stimulated by the theory has not resulted in a new way of treatment of tumors, either. Hence, it is feared that the theory suggested for the biological role of glyoxalase pathway cannot be accepted, as it is.

Animals↗

Methylglyoxal as substrate and inhibitor of human aldehyde dehydrogenase: comparison of kinetic properties among the three isozymes.

Methylglyoxal was demonstrated to be a substrate for the isozymes E1, E2 and E3 of human aldehyde dehydrogenase. Pyruvate was the product from the oxidation of methylglyoxal by the three isozymes. At pH 7.4 and 25 degrees C, the major and minor components of the E3 isozyme catalyzed the reaction with Vmax of 1.1 and 0.8 mumol NADH min-1 mg-1 protein, respectively, compared to 0.067 and 0.060 mumol NADH min-1 mg-1 protein for the E1 and E2 isozymes, respectively. The E2 isozyme had a K(m) for methylglyoxal of 8.6 microM, the lowest compared to 46 microM for E1 and 586 and 552 microM for the major and minor components of the E3 isozyme, respectively. Both components of the E3 isozyme showed substrate inhibition by methylglyoxal, with Ki values of 2.0 mM for the major component and 12 mM for the minor component at pH 9.0. Substrate inhibition by methylglyoxal was not observed with the E1 and E2 isozymes. Methylglyoxal strongly inhibited the glycolaldehyde activity of the E1 and E2 isozymes. Mixed-type models of inhibition were employed as an approach to calculate the inhibition constants, 44 and 10.6 microM for E1 and E2 isozymes, respectively.

Aldehyde Dehydrogenase↗

Does excessive adenosine 5'-triphosphate formation in cells lead to malignancy? A hypothesis on cancer.

In biological systems, adenosine triphosphate (ATP) is the principal contributor of free energy necessary for anabolic reactions and is also a precursor of nucleic acids. Moreover, active transport of metabolites into cells is also driven by hydrolysis of ATP. So, a cell may grow, multiply and ultimately turn malignant when it has been transformed in such a manner that it produces excess ATP as compared with its usual metabolic demand. Recent studies have indicated that mitochondrial complex I and the glycolytic enzyme glyceraldehyde 3-phosphate dehydrogenase (GA3PD) may be critically altered specifically in malignant cells. So, we further propose that this excessive ATP formation may be due to altered mitochondrial complex I and GA3PD of malignant cells.

Adenosine Triphosphate↗

Oxidative damage of DNA induced by methylglyoxal in vitro.

Methylglyoxal is an endogenous metabolic by-product of glycolysis and has genotoxic effects. Previous studies suggested that the reaction of methylglyoxal with amino acid leads to the production of free radicals. In this study, oxidative damage of DNA by the reaction of methylglyoxal with amino acid was investigated. When plasmid DNA was incubated with methylglyoxal and lysine, DNA strand was cleaved. Cu(2+) enhanced DNA strand breakage induced by the reaction of methylglyoxal with lysine. The formation of superoxide anion was detected during the glycation reaction of methylglyoxal with lysine. Radical scavengers, catalase, and copper chelators inhibited the DNA breakage. The deoxyribose assay showed that hydroxyl radicals were generated during the reaction of methylglyoxal with lysine in the presence of Cu(2+). The generation of hydroxyl radicals was inhibited by radical scavenger, catalase, and copper chelator. These results suggest that superoxide anion and H2O2 may generate from the glycation reaction of methylglyoxal with lysine and then Cu(2+) likely participates in a Fenton's type reaction to produce hydroxyl radicals, which may cause DNA cleavage. This mechanism may be linked to several diverse biological processes including mutagenesis, aging, carcinogenesis, and diabetic complications.

Catalase↗

Influence of methylglyoxal on antioxidant enzymes and oxidative damage.

The effect of different doses of methylglyoxal (50-400 mg/kg body wt.) were examined using enzymes involved in the antioxidant function, glutathione (GSH) content and lipid peroxidation in the liver and spleen of Swiss albino mice (7-8 week old) after 6, 12 and 24 h. Significant changes were observed predominantly in the liver. The specific activities of superoxide dismutase (SOD), glutathione-S-transferase (GST), catalase, glyoxalase I (gly I) and glyoxalase II (gly II) were found to decrease in the liver. The mode and magnitude of change in the specific activities was seen to depend on the dose of methylglyoxal and the time after its administration. Methylglyoxal also decreased the GSH content and enhanced the lipid peroxidation in the liver. These findings are suggestive of the adverse effect of methylglyoxal on the antioxidant defence system. It is likely that methylglyoxal undergoes a redox cycle and generates the free radicals which in turn lower the antioxidant status in animals. The increased levels of lipid peroxidation provide support for the involvement of free radical processes in the detrimental effects of methylglyoxal. The response of DT-diaphorase (DTD) seems to be adaptive.

Animals↗