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Vitamin C homeostasis in skeletal muscle cells.

In skeletal muscle, vitamin C not only enhances carnitine biosynthesis but also protects cells against ROS generation induced by physical exercise. The ability to take up both ascorbic and dehydroascorbic acid from the extracellular environment, together with the ability to recycle the intracellular vitamin, maintains high cellular stores of ascorbate. In this study, we examined vitamin C transport and recycling, by using the mouse C2C12 and rat L6C5 muscle cell lines, which exhibit different sensitivity to oxidative stress and GSH metabolism. We found that: (1) both cell lines express SVCT2, whereas SVCT1 is expressed at very low levels only in proliferating L6C5 cells; furthermore L6C5 myoblasts are more efficient in ascorbic acid transport than C2C12 myoblasts; (2) C2C12 cells are more efficient in dehydroascorbic acid transport and ascorbyl free radical/dehydroascorbic acid reduction; (3) differentiation is paralleled by decreased ascorbic acid and dehydroascorbic acid transport and reduction and increased ascorbyl free radical reduction; (4) differentiated cells are more responsive to oxidative stress induced by glutathione depletion; indeed, myotubes showed increased SVCT2 expression and thioredoxin reductase-mediated dehydroascorbic acid reduction. From our data, SVCT2 and NADPH-thioredoxin-dependent DHA reduction appears to belong to an inducible system activated in response to oxidative stress.

Animals↗

Characterization of alkaline phosphatase inactivation by ascorbic acid.

Ascorbic acid, isoascorbic acid and dehydroascorbic acid inhibit bovine kidney alkaline phosphatase activity. Ascorbic acid free radicals seem not to be involved. Dialysis does not make the inactivation reversible. A competitive mechanism can be inferred from experiments with phosphate and substrates, which block the activity decay. The influence of temperature, pH, other inhibitors and tertiary structure modifications on the inactivation process is also investigated.

Alkaline Phosphatase↗

Effect of deferoxamine on post-hypoxic-ischemic reperfusion injury of the newborn lamb heart.

UNLABELLED: Post-hypoxic-ischemic (HI) reperfusion induces excess production of non-protein-bound iron (NPBI), leading to formation of the highly reactive hydroxyl radical. We investigated whether the iron-chelator deferoxamine (DFO) could reduce reperfusion injury and improve left ventricular (LV) function. We produced severe HI in 14 newborn lambs and measured pre-HI, upon reperfusion, 60 and 120 min after HI the following parameters: mean aortic blood pressure, total peripheral resistance, stroke volume (SV), ejection fraction (EF) and LV contractility (pre-HI, 60 and 120 min post-HI). These parameters were assessed by measuring LV pressure (tip manometer) and volume (conductance catheter), using inflow occlusion to obtain slope (Ees) and volume intercept of the end-systolic P-V relationship (V10). We determined the antioxidative capacity, i.e. the ratio of ascorbic acid and dehydroascorbic acid (AA/DHAA) and malondialdehyde from coronary sinus blood at pre-HI and at 15, 60 and 120 min post-HI. Seven lambs received DFO (10 mg/kg i.v.) immediately after HI, 6 control lambs received a placebo. While neither Ees nor EF changed significantly in either group, the volume intercept V10 in the DFO-treated group was significantly smaller (0.25 +/- 0.03 vs. 0.70 +/- 0.09, p < 0.05), whereas SV was larger (3.6 +/- 0.6 vs. 2.2 +/- 0.2 ml, p < 0.05) and the AA/DHAA ratio was significantly lower at 15 min post-HI (p < 0.05) providing evidence for HI damage and for the protective effect of DFO. IN CONCLUSION: post-HI treatment of the newborn lamb with DFO has a modifying effect on free radical-induced damage to the myocardium and protects myocardial performance.

Animals↗

Possible mechanisms responsible for the increased ascorbic acid content of Plasmodium vinckei-infected mouse erythrocytes.

The possible mechanisms underlying the acquisition of an increased ascorbic acid content by mouse erythrocytes containing the malarial parasite Plasmodium vinckei were investigated. Ascorbic acid was taken up readily by parasitized red blood cells but not by controls, whilst its partly oxidized form, dehydroascorbic acid, entered both. The uptake of both ascorbic acid and dehydroascorbic acid into erythrocytes was increased as a result of malarial infection. Lysates prepared from parasitized red blood cells reduced exogenous dehydroascorbic acid to ascorbic acid at a higher rate than control red blood cell lysates; this difference was abolished following dialysis of the lysates, a process which removes endogenous reduced glutathione (GSH). The rates of chemical and enzymatic reduction of dehydroascorbic acid to ascorbic acid by GSH were of similar magnitude, thus calling into question the existence of a specific dehydroascorbate reductase in erythrocytes and parasites. These observations suggest that the increased uptake of dehydroascorbic acid into parasitized red blood cells may be a result of enhanced dehydroascorbate-reducing capacity, whilst the presence of the parasite induces a selective increase in the permeability of the erythrocyte plasma membrane to ascorbic acid. The endogenous ascorbic acid content of livers obtained from infected mice was 55% below the normal concentration and its relative rate of destruction during incubation in vitro was enhanced in comparison with that of control livers. Furthermore, the capacity of liver homogenates to synthesize ascorbic acid from glucuronic acid was greatly reduced in infected mice. Therefore it is unlikely that the increase in ascorbic acid content of parasitized red blood cells is a consequence of increased biosynthesis and release of ascorbic acid by the host liver. We have not been able to exclude the possibility that the malarial parasite itself may be capable of de novo synthesis of ascorbic acid.

Animals↗

Stromal cell oxidation: a mechanism by which tumors obtain vitamin C.

Human tumors may contain high concentrations of ascorbic acid, but little is known about how they acquire the vitamin. Certain specialized cells can transport ascorbic acid directly through a sodium ascorbate cotransporter, but in most cells, vitamin C enters through the facilitative glucose transporters (GLUTs) in the form of dehydroascorbic acid, which is then reduced intracellularly and retained as ascorbic acid. Mice with established hematopoietic and epithelial cell xenografts were studied for the accumulation of injected ascorbic acid and dehydroascorbic acid. Most hematopoietic and epithelial tumor cell lines can only transport vitamin C in the oxidized form (dehydroascorbic acid) in vitro; however, when grown as xenografts in mice, they rapidly accumulated vitamin C after administration of radiolabeled ascorbic acid. The involvement of the GLUTs in vitamin C uptake by the xenografted tumors was demonstrated by competitive inhibition with D-glucose but not L-glucose. Because the malignant cells were not capable of directly transporting ascorbic acid, we reasoned that the ascorbic acid was oxidized to dehydroascorbic acid in the tumor microenvironment. Tumor accumulation of vitamin C in animals injected with ascorbic acid was inhibited by coadministration of superoxide dismutase, implying a role for superoxide anion in the oxidation of ascorbic acid. Whereas the epithelial cancer cell lines could not generate superoxide anion in culture, the minced xenograft tumors did. Our studies show the transport of dehydroascorbic acid by GLUTs is a means by which tumors acquire vitamin C and indicate the oxidation of ascorbic acid by superoxide anion produced by cells in the tumor stroma as a mechanism for generating the transportable form of the vitamin.

Animals↗

Vitamin C recycling and function in human monocytic U-937 cells.

The uptake, recycling, and function of ascorbic acid was evaluated in cultured U-937 monocytic cells. Dehydroascorbic acid, the two-electron oxidized form of the vitamin, was taken up on the glucose transporter and reduced to ascorbate to a much greater extent than ascorbate itself was accumulated by the cells. In contrast to dehydroascorbic acid, ascorbate entered the cells on a sodium- and energy-dependent transporter. Intracellular ascorbate enhanced the transfer of electrons across the cell membrane to extracellular ferricyanide. Rates of ascorbate-dependent ferricyanide reduction were saturable, fivefold greater than basal rates, and facilitated by intracellular recycling of ascorbate. Whereas reduction of dehydroascorbic acid concentrations above 400 microM consumed reduced glutathione (GSH), even severe GSH depletion by 1-chloro-2,4-dinitrobenzene was without effect on the ability of the cells to reduce concentrations of dehydroascorbic acid likely to be in the physiologic range (< 200 microM). Dialyzed cytosolic fractions from U-937 cells reduced dehydroascorbic acid to ascorbate in an NADPH-dependent manner that appeared due to thioredoxin reductase. However, thioredoxin reductase did not account for the bulk of dehydroascorbic acid reduction, since its activity was also decreased by treatment of intact cells with 1-chloro-2,4-dinitrobenzene. Thus, U-937 cells loaded with dehydroascorbic acid accumulate ascorbate against a concentration gradient via a mechanism that is not dependent on GSH or NADPH, and this ascorbate can serve as the major source of electrons for transfer across the plasma membrane to extracellular ferricyanide.

Ascorbic Acid↗

Further investigations into the relationship between the dopaminergic system, ascorbic acid and uric acid in the rat striatum.

Levels of dopamine (DA), 3,4-dihydroxyphenylacetic acid (DOPAC), ascorbic acid (AA), dehydroascorbic acid (DHAA), and uric acid were determined in the rat striatum following single apomorphine (1 mg/kg), scopolamine (0.6 mg/kg), pilocarpine (4 mg/kg), or pilocarpine + scopolamine (4 and 0.6 mg/kg, respectively) injections. The decrease in DOPAC levels and in the DOPAC/DA ratio, induced by the pharmacological manipulation, was linearly correlated with the increase in DHAA levels (r = -0.9060, P less than 0.05) and with the increase in the DHAA/AA ratio (r = -0.9004, P less than 0.05), respectively. It is concluded that dopaminergic activation or cholinergic inhibition both increase striatal AA oxidation, which is correlated with a decrease in DA turnover.

3,4-Dihydroxyphenylacetic Acid↗

[Determination of oxidation-reduction level in patients with rheumatoid arthritis].

OBJECTIVE: To examine the oxidation or reduction products in patients with rheumatism arthritis (RA), and investigate the relationship between oxidation or reduction products and occurrence and development of RA. METHODS: The serum levels of total ascorbic acid (TAA), dehydroascorbic acid (DHAA)/TAA, vitamin E, advanced oxidation protein products (AOPP) and malondialdehyde (MDA) were detected by high-performance liquid chromatography with electrochemical detection in 83 RA patients and 30 healthy adults. Correlation analysis of AOPP, MDA and hs-CRP was performed. RESULTS: Compared with normal control group, significantly higher serum MDA, DHAA/TAA, and AOPP levels were detected in RA patients (P<0.05), but vitamin E showed no significant difference (P<0.05). Linear regression analysis showed that MDA (P<0.01) was positively but AOPP (P>0.05) negatively correlated to hs-CRP. CONCLUSIONS: Oxidation or reduction products in serum of RA patients increases significantly, which may be an important mechanism for the occurrence and development of RA. Serum AOPP and MDA levels can reflect the oxidation status in RA patients.

Adult↗

Recycling of vitamin C by a bystander effect.

Human cells transport dehydroascorbic acid through facilitative glucose transporters, in apparent contradiction with evidence indicating that vitamin C is present in human blood only as ascorbic acid. On the other hand, activated host defense cells undergoing the oxidative burst show increased vitamin C accumulation. We analyzed the role of the oxidative burst and the glucose transporters on vitamin C recycling in an in vitro system consisting of activated host-defense cells co-cultured with human cell lines and primary cells. We asked whether human cells can acquire vitamin C by a "bystander effect" by taking up dehydroascorbic acid generated from extracellular ascorbic acid by neighboring cells undergoing the oxidative burst. As activated cells, we used HL-60 neutrophils and normal human neutrophils activated with phorbol 12 myristate 13-acetate. As bystander cells, we used immortalized cell lines and primary cultures of human epithelial and endothelial cells. Activated cells produced superoxide anions that oxidized extracellular ascorbic acid to dehydroascorbic acid. At the same time, there was a marked increase in vitamin C uptake by the bystander cells that was blocked by superoxide dismutase but not by catalase and was inhibited by the glucose transporter inhibitor cytochalasin B. Only ascorbic acid was accumulated intracellularly by the bystander cells. Glucose partially blocked vitamin C uptake by the bystander cells, although it increased superoxide production by the activated cells. We conclude that the local production of superoxide anions by activated cells causes the oxidation of extracellular ascorbic acid to dehydroascorbic acid, which is then transported by neighboring cells through the glucose transporters and immediately reduced to ascorbic acid intracellularly. In addition to causing increased intracellular concentrations of ascorbic acid with likely associated enhanced antioxidant defense mechanisms, the bystander effect may allow the recycling of vitamin C in vivo, which may contribute to the low daily requirements of the vitamin in humans.

Ascorbic Acid↗

Regulation of vitamin C transport.

Ascorbic acid and dehydroascorbic acid (DHAA, oxidized vitamin C) are dietary sources of vitamin C in humans. Both nutrients are absorbed from the lumen of the intestine and renal tubules by, respectively, enterocytes and renal epithelial cells. Subsequently vitamin C circulates in the blood and enters all of the other cells of the body. Concerning flux across the plasma membrane, simple diffusion of ascorbic acid plays only a small or negligible role. More important are specific mechanisms of transport and metabolism that concentrate vitamin C intracellularly to enhance its function as an enzyme cofactor and antioxidant. The known transport mechanisms are facilitated diffusion of DHAA through glucose-sensitive and -insensitive transporters, facilitated diffusion of ascorbate through channels, exocytosis of ascorbate in secretory vesicles, and secondary active transport of ascorbate through the sodium-dependent vitamin C transporters SVCT1 and SVCT2 proteins that are encoded by the genes Slc23a1 and Slc23a2, respectively. Evidence is reviewed indicating that these transport pathways are regulated under physiological conditions and altered by aging and disease.

Animals↗

Less induced 1-methyl-4-phenylpyridinium ion neurotoxicity on striatal slices from guinea-pigs fed with a vitamin C-deficient diet.

The effect of ascorbic acid depletion on the 1-methyl-4-phenylpyridinium ion (MPP+)-induced neurotoxicity in the dopaminergic system has been tested in guinea-pig striatal slices. Guinea-pigs were divided into three groups and fed on a control diet, ascorbic acid-free diet and ascorbic acid-supplemented diet, respectively. Diets were maintained during 30 days. Striatal slices from ascorbic acid-deficient animals showed the highest levels of dopamine following 25 microM MPP+ treatment; the results from animals under this treatment condition were statistically different from both control and ascorbic acid-supplemented animals under identical experimental conditions. In addition, neurochemical analysis demonstrated that the levels of ascorbic acid and dehydroascorbic acid were highly reduced in striatal tissue from ascorbic acid-deficient animals, thus proving scorbutic conditions in our experimental animals. In view of the higher resistance of the ascorbic acid-deficient animals to the neurotoxicity elicited by MPP+, additional dopaminergic parameters were also measured in striatal tissue from ascorbic acid-deficient animals in the absence of MPP+, including levels of dopamine and its metabolites, tyrosine hydroxylase activity and dopamine uptake, with the aim of finding an explanation for this unexpected result. While dopamine levels and tyrosine hydroxylase activity remained close to control levels, dopamine uptake was significantly reduced in striatal synaptosomes from ascorbic acid-deficient animals as compared with control animals. Since MPP+ is actively accumulated into dopaminergic nerve terminals via the high-affinity dopamine uptake system, this finding could explain the higher resistance of ascorbic acid-deficient animals to the dopamine-depleting effect induced by MPP+ toxicity assayed in striatal slices.

1-Methyl-4-phenylpyridinium↗

Effect of castration on the metabolism of L-ascorbic acid in rat prostate.

An appreciable decrease in the contents of prostatic ascorbic acid and dehydroascorbic acid along with an increase in diketogulonic acid was seen in rats ten days after castration. Castration caused a decrease in the activities of such biosynthetic enzymes as L-gulono-gamma-lactone oxidase and D-glucuronolactone-delta-hydrolase with no significant alteration in the activity of L-gulono-gamma-lactone hydrolase in the rat prostate. The activity of dehydroascorbatase, one of the degrading enzymes was, however, found to be elevated in castration. The implication of these results has been discussed.

2,3-Diketogulonic Acid↗

Measurement of uric acid, ascorbic acid, and related metabolites in biological fluids.

A rapid and quantitative method for the simultaneous measurement of uric acid, ascorbic acid, and related metabolites in biological fluids is described. This method makes use of anion-exchange extraction columns to isolate the desired compounds from a wide range of biological fluids, and anion-exchange HPLC with ultraviolet detection for their separation and measurement. By this procedure the contents of uric and ascorbic acids in human serum and urine were estimated. Furthermore, the oxidation of uric acid to allantoin and ascorbic acid to dehydroascorbic acid could be readily monitored.

Allantoin↗

The influence of amino acid source on the stability of ascorbic acid in TPN mixtures.

This study was undertaken to investigate the stability of ascorbic acid and its primary degradation product, dehydroascorbic acid, in total parenteral nutrition (TPN) mixtures. The influence of the type of bag and the commercial source of amino acid on ascorbate degradation was examined, using a stability-indicating high-pressure liquid chromatography (HPLC) method. Ascorbic acid was most stable in multilayered bags, compared with ethylvinyl acetate (EVA) bags. Results indicated that, in multilayered bags, the initial rapid ascorbic acid degradation was greatest in TPN mixtures containing amino acid infusions without reducing activity. In contrast, degradation in TPN mixtures containing amino acids with reducing compounds (Vamin 14 and Freamine III 8.5%) was less than 10% of the added amount. Dehydroascorbic acid degraded approximately in parallel with ascorbic acid, and it contributed to the total available ascorbate activity. The addition of air to TPN mixtures in multilayered bags caused accelerated degradation of both ascorbic acid and dehydroascorbic acid. It is concluded that TPN mixtures compounded in multilayered bags can be safely assigned extended shelf lives, especially if compounded using an amino acid with reducing activity. This is principally due to the protective effect of the bag wall in preventing oxygen transmission, the cause of ascorbic acid oxidation, because oxygen transmission through the bag wall is minimized during storage. TPN mixtures stored in EVA bags should be administered within 2-4 d of compounding, depending on the amino acid infusion used.

Air↗

Monoaminergic systems activity and cellular defense mechanisms in the brainstem of young and aged rats subchronically exposed to manganese.

In 3- and 20-month-old male Wistar rats, levels of noradrenaline (NA), dopamine (DA), 5-hydroxytryptamine (5-HT), 5-hydroxyindoleacetic acid (5-HIAA), ascorbic acid (AA), dehydroascorbic acid (DHAA), uric acid and glutathione (GSH) were determined by HPLC in the brainstem after subchronic oral exposure to MnCl2 200 mg/kg (3-month-old) and 30-100-200 mg/kg (20-month-old). In aged rats, manganese (Mn) significantly decreased levels of NA, DA and GSH and increased 5-HIAA/5-HT ratio values and DHAA and uric acid levels. All these parameters were scarcely affected in young rats. In aged rats, individual total Mn doses/rat were inversely correlated with individual DA levels (r = -0.405) and GSH levels (r = -0.450). In conclusion, Mn induces changes in markers of monoaminergic systems activity in the brainstem of aged rats considerably greater than in young rats. The increase in AA oxidation and decrease in GSH levels are consistent with a Mn-induced increase in formation of reactive oxygen species. The increase in uric acid levels provides evidence that one of these species might arise from the activity of xanthine-oxidase on uric acid precursors.

Aging↗

[Preservation of vitamin C in vitamin-enriched apple products].

The content of vitamin C (the total of ascorbic and dehydroascorbic acids) in preserved apple products vitaminized with ascorbic acid was assayed once a month over a year. It was found that the products retained vitamin C sufficiently well, though the content of ascorbic acid decreased considerably, as the most amount of ascorbic acid was oxidized to form dehydroascorbic acid. The study conducted indicates the expediency of making vitaminized apple products.

Ascorbic Acid↗

Efficient transport and accumulation of vitamin C in HL-60 cells depleted of glutathione.

Human myeloid leukemia cells (HL-60) transport only the oxidized form of vitamin C (dehydroascorbic acid) and accumulate the vitamin in the reduced form, ascorbic acid. We performed a detailed study of the role of glutathione in the intracellular trapping/accumulation of ascorbic acid in HL-60 cells. Uptake studies using HL-60 cells depleted of glutathione by treatment with L-buthionine-(S,R) sulfoximine and diethyl maleate, revealed no changes in the cells' ability to transport dehydroascorbic acid and accumulate ascorbic acid. Similar transport and accumulation rates were obtained using HL-60 cells containing intracellular glutathione concentrations from 6 mM to 1 microM. HL-60 cells, containing as little as 5 microM glutathione, were able to accumulate up to 150 mM ascorbic acid intracellularly when incubated with dehydroascorbic acid. Glutathione was capable of reducing dehydroascorbic acid by a direct chemical reaction, but only when present in a greater than 10-fold stoichiometric excess over dehydroascorbic acid. The accumulation of ascorbic acid by HL-60 cells was strongly temperature-dependent and was very inefficient at 16 degrees C. On the other hand, the direct chemical reduction of dehydroascorbic acid by excess glutathione proceeded efficiently at temperatures of 16 degrees C. Our data indicate that glutathione-dependent reductases in HL-60 cells are not responsible for the ability of these cells to accumulate millimolar concentrations of ascorbic acid. These findings indicate that alternative enzymatic mechanisms are involved in the cellular reduction of dehydroascorbic acid.

Antimetabolites↗

Ascorbate system in plant development.

By using lycorine, a specific inhibitor of ascorbate biosynthesis, it was possible to demonstrate that plant cells consume a high quantity of ascorbate (AA). The in vivo metabolic reactions utilizing ascorbate are the elimination of H2O2 by ascorbate peroxidase and the hydroxylation of proline residues present in the polypeptide chains by means of peptidyl-proline hydroxylase. Ascorbate acts in the cell metabolism as an electron donor, and consequently ascorbate free radical (AFR) is continuously produced. AFR can be reconverted to AA by means of AFR reductase or can undergo spontaneous disproportion, thus generating dehydroascorbic acid (DHA). During cell division and cell expansion ascorbate consumption is more or less the same; however, the AA/DHA ratio is 6-10 during cell division and 1-3 during cell expansion. This ratio depends essentially on the different AFR reductase activity in these cells. In meristematic cells AFR reductase is very high, and consequently a large amount of AFR is reduced to AA and a small amount of AFR undergoes disproportionation; in expanding cells the AFR reductase activity is lower, and therefore AFR is massively disproportionated, thus generating a large quantity of DHA. Since the transition from cell division to cell expansion is marked by a large drop of AFR reductase activity in the ER, it is suggested here that AFR formed in this compartment may be involved in the enlargement of the ER membranes and provacuole acidification. DHA is a toxic compound for the cell metabolism and as such the cell has various strategies to counteract its effects: (i) meristematic cells, having an elevated AFR reductase, prevent large DHA production, limiting the quantity of AFR undergoing disproportionation (ii) Expanding cells, which contain a lower AFR reductase, are, however, provided with a developed vacuolar system and segregate the toxic DHA in the vacuole. (iii) Chloroplast strategy against DHA toxicity is efficient DHA reduction to AA using GSH as electron donor. This strategy is usually poorly utilized by the surrounding cytoplasm. DHA reduction does play an important role at one point in the life of the plant, that is, during the early stage of seed germination. The dry seed does not store ascorbate, but contains DHA, and several DHA-reducing proteins are detectable. In this condition, DHA reduction is necessary to form a limited AA pool in the seed for the metabolic requirements of the beginning of germination. After 30-40 h ascorbate ex novo synthesis starts, DHA reduction declines until a single isoform remains, as is typical in the roots, stem, and leaves of seedlings.(ABSTRACT TRUNCATED AT 400 WORDS)

Amaryllidaceae Alkaloids↗