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Metabolism and transport of dehydroascorbic acid in erythrocytes of "spontaneous diabetic BB/W" Wistar rats.

Rates of uptake and reduction of dehydroascorbic acid in erythrocytes of "Spontaneous diabetic BB/W" and control Wistar rats were determined. Lysed cells reduced 14C-dehydroascorbic acid more rapidly than intact cells did, suggesting that membrane transport is a rate-limiting step. Diabetic rats had lower plasma levels of ascorbic acid but more rapid reduction of dehydroascorbic acid than control animals. The results indicate more rapid transport of dehydroascorbic acid into erythrocytes of prediabetic "BB/W" rats than Wistar rats.

Animals↗

pH optimum of the reduction of dehydroascorbic acid by dithioerytritol.

Ascorbic acid is a water soluble antioxidant, that is itself oxidized to dehydroascorbic acid. In order to detect dehydroascorbic acid by amperometri it has to be reduced to ascorbic acid beforehand. This reduction was performed with dithioerytritol at pH = 6.0 for 10 min, which is a choice between optimal reaction rate and stability of ascorbic acid. The limit of detection of ascorbic acid is 1.1 pmol making the assay useful for determination of ascorbic and dehydroascorbic acid in small tissue biopsies. Results of this method and a colorimetric method were comparable.

Dehydroascorbic Acid↗

Volatile degradation products of l-dehydroascorbic acid.

Volatile degradation products were isolated from a solution of L-dehydroascorbic acid in phosphate buffer solution of pH 2,4,6 and 8 heated under reflux for 3 h or left at 25 degrees C for 200 h. The products were identified by comparison of their gas chromatographic retention data, infra-red and mass spectra with those of authentic compounds. Fifteen products were identified, among which 12 had not yet been reported as degradation products of L-dehydroascorbic acid. Concentrations of 5 main degradation products, i.e. 3-hydroxy-2-pyrone, 2-furancarboxylic acid, 2-furaldehyde, acetic acid and 2-acetylfuran depended on the pH values and temperature; the presence of oxygen had no pronounced effect.

Acetates↗

[Effect of alcohol intoxication on ascorbic and dehydroascorbic acid levels in rat tissue. and human blood].

It is found that acute ethanol intoxication is accompanied by a decrease in the ascorbic acid content in the brain, liver and kidneys. The content of dehydroascorbic acid in kidneys in this case increases and in the brain tends to decrease. The chronic alcohol intoxication of rats has an opposite (as compared to the acute intoxication) effect on changes in the content of ascorbic and dehydroascorbic acids in the studied organs. People with chronic alcohol intoxication have the lower content of ascorbic acid in blood plasma and the higher content in erythrocytes, the content of dehydroascorbic acid being increased.

Alcoholic Intoxication↗

Effect of monosaccharide on dehydroascorbic acid uptake by placental membrane vesicles.

Dehydroascorbic acid (DHA), the oxidized form of vitamin C, is transported across the microvillous surface of the human placental syncytiotrophoblast by the D-glucose transporter. The existence of this mechanism suggests that maternal hyperglycemia may influence placental transfer of vitamin C. Therefore, we examined the effect of monosaccharides, equilibrated across the membrane, on the uptake of 0.5 mmol/L DHA by placental membrane vesicles. Relative to uptake in the absence of monosaccharide, the rate of DHA uptake was enhanced by up to 90% in the presence of 3-O-methyl-D-glucose equilibrated across the membrane. Comparable results were obtained with D-glucose and D-galactose. An inward-directed monosaccharide concentration gradient inhibited DHA uptake. However, with elevated equilibrium concentrations of monosaccharide, the magnitude of such uptake inhibition was reduced. Relative to DHA uptake at normal blood glucose concentrations (5 mmol/L), the results suggest that moderate maternal hyperglycemia does not alter, but that severe hypo- or hyperglycemia decreases, placental uptake of DHA from the maternal circulation.

3-O-Methylglucose↗

[Determining the level of dehydroascorbic acid in food products].

Ascorbic acid stability was studied under conditions of dehydroascorbic acid assay. The minimum amounts of cysteine and volumes of reagents utilized were specified. Based on the data of 2,6-dibromoindophenol stability the method of indophenol-xylol extraction was proved to be unsatisfactory for the assay of dehydroascorbic acid.

Ascorbic Acid↗

Reduction of dehydroascorbic acid by homocysteine.

To determine the reductive process of extracellular dehydroascorbic acid (DHA), molecules (homocysteine, homocysteine thiolactone, methionine, cysteine, and homoserine) were tested to identify those with the potential to reduce DHA to ascorbic acid (AA). Homocysteine (Hcy) was the most potent of the molecules tested. The efficacy of Hcy was compared with that of other molecules able to reduce DHA (reduced glutathione (GSH) and cysteine (Cy)). Although all three molecules were able to reduce DHA, GSH and Cy were not to reduce DHA to AA at concentrations lower than 100 micromol/l, and only less than 5% DHA was reduced to AA at concentrations of 200-300 micromol/l. In contrast, Hcy reduced DHA to AA stoichiometrically at concentrations as low as 10 micromol/l. In Jurkat and U937 cells, the increasing concentrations of extracellular Hcy suppressed intracellular dehydroascorbic acid uptake, indicating that extracellular reduction of DHA by Hcy leads to decreasing extracellular DHA available for its intracellular uptake. Simultaneous oxidation and reduction of Hcy and DHA were accelerated extracellularly in the presence of quercetin, an inhibitor of DHA uptake, suggesting that extracellular ascorbic acid concentration increased via blocking DHA uptake by quercetin and reducing extracellular DHA by Hcy. The effect of homocysteine on DHA reduction and uptake was confirmed with human umbilical vein endothelial cells. The oxidation of Hcy also prevented the decrease in DNA synthesis in human umbilical vein endothelial cells, which would occur following exposure to Hcy.

Ascorbic Acid↗

Hexokinase inactivation induced by ascorbic acid/Fe(II) in rabbit erythrocytes is independent of glutathione-reductive processes and appears to be mediated by dehydroascorbic acid.

Recent studies performed in our laboratory demonstrated that rabbit red blood cell hexokinase was remarkably inhibited by the cocktail ascorbic acid/Fe(II) (Stocchi et al., 1994, Arch. Biochem. Biophys. 311, 160-167) and that the formation of dehydroascorbic acid was a key event in this process (Fiorani et al., 1996, Arch. Biochem. Biophys, 334, 357-361). The present study was undertaken to determine the final hexokinase-inactivating species using cell-free extract as a model. Our results demonstrate superimposable kinetics of hexokinase decay promoted by either ascorbic acid/Fe(II) or dehydroascorbic acid in erythrocyte lysates in which the reduced glutathione (GSH) levels were variously manipulated. In particular, neither removal nor addition of this tripeptide was able to significantly alter the rate or extent of hexokinase inhibition. Thus, GSH-reductive processes are dispensable events in the process of hexokinase inhibition promoted by ascorbic acid/Fe(II) in red blood cells. As a consequence, dehydroascorbic acid appears to be the species which directly inhibits hexokinase. This inference is further supported by the observation that addition of dehydroascorbic acid to the purified enzyme leads to a remarkable inhibition in its activity.

Animals↗

Reduction of extracellular dehydroascorbic acid by K562 cells.

K562 erythroleukaemic cells produced ascorbate when incubated with dehydroascorbic acid. The reduction depended on the number of cells and on the concentration of dehydroascorbic acid. The observed rate consists of a high affinity (apparent Km 7 mu M, Vmax 3 center dot 25 pmol min-1 (10(6) cells)-1 and a low affinity component, which was non-saturable up to 1 mM of DHA (rate increase of 0 center dot 1 pmol min-1 (10(6) cells)-1 (1 mu M of DHA-1). The rate was dependent on temperature and was stimulated by glucose and inhibited by phloretin, N-ethylmaleimide, parachloro-mercuribenzoate and the noyltrifluoroacetone. Although uptake of DHA proceeded at a higher rate than its extracellular reduction, the generation of extracellular ascorbate from DHA cannot be accounted for by intracellular reduction and the release of ascorbate, since the latter was not linear with time and had an initial rate of approximately 3 pmol min-1 (10(6) cells-1). At a concentration of DHA of 100 mu M this is 25 per cent of the observed reduction.

Ascorbic Acid↗

Effect of ascorbic, isoascorbic and dehydroascorbic acids on the growth and survival of Campylobacter jejuni.

Ascorbic acid (AsA), added to nutrient broth at a concentration of 5 mmol/l, was bactericidal towards Campylobacter jejuni grown at 42 degrees C in a micro-aerobic atmosphere. Specific enzymes, radical scavengers, metal chelators and reducing agents were tested as possible antagonists to the cytotoxicity of AsA. The addition of catalase or of the metal chelators ceruloplasmin or Desferal did not prevent the cytotoxic effect of AsA. The addition of the hydroxyl radical scavengers mannitol, formate, histidine or DMSO also failed to counteract the toxicity of AsA. On the other hand, thiourea or cysteamine and the reducing agents cysteine or dithionite significantly increased the recovery of C. jejuni in the presence of AsA. Although the possibility of the involvement of hydroxyl radicals in AsA cytotoxicity cannot be ruled out, it appears that the toxic effect of AsA is due mostly to the formation of products of oxidation of AsA and particularly to dehydroascorbic acid (DHA). Dehydroascorbic acid was also bactericidal to C. jejuni at a concentration of 5 mmol/l. Of all the compounds tested, only cysteamine was effective in preventing (partially) the toxic effect of DHA. The growth of C. jejuni was not inhibited by the addition of 5 mmol/l of isoascorbic acid or sodium isoascorbate.

Ascorbic Acid↗

Assay for both ascorbic and dehydroascorbic acid in dairy foods by high-performance liquid chromatography using precolumn derivatization with methoxy- and ethoxy-1,2-phenylenediamine.

A procedure for the simultaneous determination of both ascorbic and dehydroascorbic acid in dairy foods by high-performance liquid chromatography using precolumn derivatization with 4-methoxy- and 4-ethoxy-1,2-phenylenediamine is presented. The derivatives are isolated by solid-phase extraction and analysed by fluorescence detection on a resin-type reversed-phase column at pH 9. Retention times are 2 and 3.2 min for the derivatives of ascorbic and dehydroascorbic acid, respectively. Relative standard deviations of the within- and between-assay tests are 7.1 and 5.5%, respectively, for ascorbic and 11 and 9%, respectively, dehydroascorbic acid. The limits of detection are 50 and 70 fmol per 5-microl injection for ascorbic and dehydroascorbic acid, respectively.

Animals↗

Effect of ascorbic and dehydroascorbic acid on glyoxalase enzyme system.

The authors studied the effect of ascorbic and dehydroascorbic acid on glyoxalase enzyme system, in order to establish if these substances influence cell proliferation by interfering with glyoxalase activity. The results demonstrate that both ascorbic and dehydroascorbic acid do not alter glyoxalase activity in vitro, even if employed at high doses.

Animals↗

Ascorbic and dehydroascorbic acids status in rats fed diets varying in vitamin E levels.

Vitamin E, ascorbic and dehydroascorbic acids were determined in plasma and selected tissues of rats fed for 2-3 months different diets varying in vitamin E content. The diets contained as low as 5 IU for group LE, a normal amount of 50 IU for group NE and as high as 250 IU of vitamin E for group HE. Small increases in total vitamin C were observed only in liver, kidney, spleen and plasma with increased dietary levels of vitamin E, however, this was not followed by a substantial increment in the ascorbate/dehydroascorbate ratio. These differences were only observed between diets LE and HE; there was no correlation between vitamin E and vitamin C levels in the tissue. These data suggest that the interactions that readily take place in vitro between these two vitamins do not occur in vivo, probably due to the complexity of natural membranes.

Administration, Oral↗

An electrospray ionization ion trap mass spectrometric (ESI-MS-MSn) study of dehydroascorbic acid hydrolysis at neutral pH.

The hydrolysis of dehydroascorbic acid (DAAH) at neutral pH and 27 degrees C was investigated by direct infusion electrospray ionisation ion trap mass spectrometry (ESI-MS). This approach permitted derivatisation and elution procedures to be avoided, reducing to the minimum extent sample manipulation and allowing a rapid and direct observation of the species involved in the reaction. Six main peaks, related to hydrated dehydroascorbate (HyDAA-) and diketogulonate (HyDKG-) anions, were observed in the mass spectra of DAAH solutions at different times of incubation and were characterised by MSn experiments. The relevant signal intensities changed with time and a model, based on the irreversible pseudo-first order HyDAA(-)-->HyDKG- conversion, fitted successfully the data obtained for dehydroascorbate. The kinetic constant of the process was (3.2 +/- 0.5) x 10(-2) min-1. The influence of metal ion traces on the hydrolysis rate was also checked, performing experiments in the presence of EDTA, and was found to be negligible.

2,3-Diketogulonic Acid↗

Inhibiting effect of dehydroascorbic acid on cell division in ascites tumors in mice.

The transplantable murine ascites tumors, P388 leukemia and Ehrlich carcinoma, demonstrated complete inhibition of mitotic activity after treatment with dehydroascorbic acid in mice. Citric acid at the same pH value (2.4), however, showed no diminution of mitoses. Microscopic examination of the stained ascites exudate taken from the mice treated with 10 mg dehydroascorbic acid revealed few tumor cells and a pronounced increase in white blood cells, whereas the ascites tumor exposed to citric acid appeared normal.

Animals↗

Hemiketal formation of dehydroascorbic acid drives ascorbyl radical anion disproportionation.

In this paper the relationship between the ascorbate anion (AH(-)) and its oxidation products, ascorbyl radical anion (A&z.rad;(-)) and dehydroascorbic acid (DHA), are studied by means of theoretical calculations. Additional calculations are performed on alpha-hydroxytetronate, a model compound of ascorbate lacking the side chain. The method uses density functional theory with the B3LYP functional and a polarizable conductor dielectric model to compute solvation effects. Our results indicate that the model compound reacts with the alpha-tocopheroxyl radical to regenerate vitamin E with a free energy change of reaction (in water) of -7.4 kcal/mol. This reaction is 2.9 kcal/mol more exergonic than the corresponding reaction involving ascorbate, suggesting that the model compound may make a more effective antioxidant than ascorbate. However, the disproportionation of the ascorbyl radical anion, a reaction that regenerates AH(-), is found to be exergonic while the similar reaction involving the model compound is slightly endergonic. The reason for the difference is that the disproportionation of A&z. rad;(-) is found to be driven by the formation of the hemiketal structure of dehydroascorbic acid (DHA).

Ascorbic Acid↗