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Peripheral erythrocyte levels, hemolysis and three vanadium compounds.

Three vanadium compounds of different valence states were administered to adult mice. Two, four, and eight days following treatment of vanadium, cardiac blood was collected. The blood sample was used to ascertain the peripheral erythrocyte count (cell/mm3) and to determine the in vitro hemolytic index of erythrocytes obtained from mice treated in vivo with either the tri-, tetra-, or pentavalent vanadium compound. Data indicate that the tetravalent form was the most effective test substance in 1) promoting rupture of isolated erythrocytes compared to red cells retrieved from control mice and 2) depressing the erythrocyte count obtained from heart blood; maximum effects were manifest four days post-treatment. For all treatments there appeared to be a good correlation between the degree of vanadium-induced hemolysis and the peripheral erythrocyte count reduction following exposure to the vanadium.

Analysis of Variance

Genotoxicity of vanadium compounds in yeast and cultured mammalian cells.

The ability of vanadium compounds to induce genetic activity was investigated in D7 and D61M strains of Saccharomyces cerevisiae and in Chinese hamster V79 cell line. In our previous work, ammonium metavanadate (pentavalent form, V5) induced mitotic gene conversion and point reverse mutation in the D7 strain of yeast. The genotoxicity was reduced by the presence of S9 fraction, which probably reduced pentavalent vanadium to the tetravalent form. In the present study, vanadyl sulfate (tetravalent form, V4) induced no convertants and revertants in yeast cells harvested from stationary growth phase. With yeast cells from logarithmic growth phase, which contain high levels of cytochrome P-450, a significant increase in genetic effects was observed. Further experiments, performed by treating cells harvested from logarithmic growth phase in the presence of cytochrome P-450 inhibitors, indicated that the monooxygenase system influenced the genotoxicity of metavanadate while the genetic activity of vanadyl remained unaffected. Aneuploidy effect in the D61M strain of Saccharomyces cerevisiae was induced by either V5 or V4, confirming that vanadium compounds are potentially antitubulin agents in eukaryotic cells. Although these compounds are very toxic in V79 cells, no mutagenic effect was observed in the presence or in the absence of S9 fraction.

Animals

Effects of various vanadium compounds on cochlear potentials.

The effects of vanadium compounds, sodium vanadate, ammonium vanadate, potassium vanadate, vanadium oxysulfate, vanadium acetylacetonate, and vanadium trichloride, on endocochlear potential (EP) and cochlear microphonic potential (CM) were examined in the guinea pig cochlea. The perilymphatic space was perfused for 30 min with 1 mM solution of each compound and changes of EP, CM, and negative EP were observed. Upon perfusion with pentavalent vanadium solutions, such as sodium vanadate, ammonium vanadate, and potassium vanadate, the EP showed an overshoot at the beginning of perfusion and then a gradual decrease, while the CM showed only a gradual decrease. The other compounds had no effects on EP and CM. Since the negative EP showed no differences due to perfusion of any compound, it is concluded that the vanadate compounds have inhibitory effects on EP primarily, and on CM only secondarily. The chemical mechanism of the effects of vanadates was discussed concerning the function of the stria vascularis and also its participation in acute hearing loss.

Animals

Oxidation of NADH by vanadium compounds in the presence of thiols.

The nonenzymatic oxidation of NADH was studied spectrophotometrically in the presence of two vanadium compounds, sodium orthovanadate and vanadyl sulfate. At physiological pH 7.4, in 25 mM sodium phosphate buffer, addition of the synthetic thiol, dithioerythritol (DTE) results in a marked increase of NADH oxidation in the presence of sodium orthovanadate, but not in the presence of vanadyl sulfate. Other reductants, such as dithiothreitol and cysteine, can also increase NADH oxidation, whereas glutathione and ascorbate cannot. In all reactions, superoxide dismutase and catalase completely inhibit the vanadium-stimulated oxidation of NADH. Inhibition occurs in a concentration-dependent manner, and the boiled enzymes do not inhibit the thiol reaction. The hydroxyl radical scavenger, thiourea, inhibits the reaction, whereas urea cannot. ESR studies show that the ability of the thiol to reduce vanadate can be correlated with the degree of NADH oxidation. Using spin trapping techniques, hydroxyl radicals are detected during the course of the reaction. Addition of hydrogen peroxide to vanadyl in the presence of DTE greatly increases NADH oxidation; however, no NADH oxidation occurs when hydrogen peroxide is added to vanadyl and ascorbic acid. These results provide a partial explanation for the ability of vanadium compounds to both decrease cellular reducing equivalents and promote lipid peroxidation.

Ascorbic Acid

Persistence of vanadium compounds in lungs after intratracheal instillation in rats.

Translocation and tissue distribution of two different forms of vanadium compounds, orthovanadate (soluble) and vanadium pentoxide (less soluble), were investigated. Groups of randomly selected rats were injected intratracheally with radiolabeled vanadium (48V) compounds and the animals were sacrificed at 1, 7 and 28 days after treatment. Blood, lungs and other major organs and tissues, namely liver, kidney, spleen, heart, testes, brain, muscle, and bone were sampled and the vanadium contents determined by gamma spectrometry. The less soluble form of vanadium (vanadium pentoxide) was eliminated from the lungs at a slow but exponentially linear rate, whereas the soluble form was translocated rapidly from this organ and exhibited a non-linear decline. Compared to the less soluble form, significantly less vanadium was retained in lungs 7 and 28 days after intratracheal instillation of vanadate. One day after treatment significantly higher concentrations (approximately 4 times) of vanadium after orthovanadate were observed in liver, kidney, spleen and bone compared to the pentoxide. However, tissue residues at 7 and 28 days indicated that both forms of vanadium were rapidly eliminated, except from bone and lungs. Results suggest a prolonged retention of less soluble forms of vanadium and possible health effects following repeated occupational exposure.

Animals

Vanadium compounds promote the induction of morphological transformation of hamster embryo cells with no effect on gap junctional cell communication.

Vanadium compounds were found to promote the induction of morphological transformation of hamster embryo cells. Exposure of the cells to Na-O-vanadate, vanadin (V) oxide or vanadin (IV) oxide sulfate following pre-exposure to a low concentration of benzo[a]pyrene, potentiated the induction of transformed colonies similar to 12-O-tetradecanoylphorbol-13-acetate. Unlike this phorbol ester, vanadium compounds did not inhibit intercellular communication, or active protein kinase C. Nor did vanadate influence the reoccurrence of communication after removal of a communication blocking phorbol ester. On the other hand, vanadate showed strong synergism with the phorbol ester on induction of transformed morphology in the phorbol ester sensitive cell line BPNi. This suggests that vanadium and tumor promoting phorbol esters mediate their effect on the induction of morphological transformation of hamster embryo cells through different mechanisms.

Animals

Structure and function of vanadium compounds in living organisms.

Vanadium has been recognized as a metal of biological importance only recently. In this mini-review, its main functions uncovered during the past few years are addressed. These encompass (i) the regulation of phosphate metabolizing enzymes (which is exemplified for the inhibition of ribonucleases by vanadate), (ii) the halogenation of organic compounds by vanadate-dependent non-heme peroxidases from seaweeds, (iii) the reductive protonation of nitrogen (nitrogen fixation) by alternative, i.e. vanadium-containing, nitrogenases from N2-fixing bacteria, (iv) vanadium sequestering by sea squirts (ascidians), and (v) amavadine, a low molecular weight complex of V(IV) accumulated in the fly agaric and related toadstools. The function of vanadium, while still illusive in ascidians and toadstools, begins to be understood in vanadium-enzyme interaction. Investigations into the structure and function of model compounds play an increasingly important role in elucidating the biological significance of vanadium.

Animals

Vanadium compounds and ferrocyanide as ionic redox agents in photosynthesis.

The effect of such ionic redox agents as ferrocyanide and several vanadium compounds was determined on photosynthetic reactions of spinach chloroplasts. It was found that: 1. Vanadyl sulfate like ferrocyanide in moderately high concentrations (0.03 M) donates electrons to Photosystem II. 2. Decavanadate in the presence of 2,5-dibromothymoquinone accepts electrons in Photosystem II. 3. In the absence of a block between the two photosystems, decavanadate accepts electrons in Photosystem I in the vicinity of plastocyanin or beyond. 4. Vanadite and ferrocyanide in high concentrations (0.32 M) donate electrons to Photosystem I. 5. On the basis of chelator inhibition and polyoxyethylene sorbitan monolaureate treatment, the vanadite oxidation site is located near plastocyanin while the ferrocyanide site is between plastocyanin and P-700.

Chloroplasts

Characteristics of histamine secretion from mast cells stimulated with sodium orthovanadate and other vanadium compounds.

Sodium orthovanadate was found to be an effective histamine liberator from serosal mast cells of the rat and mouse. The release process was slow, non-cytotoxic and strongly dependent on pH and extracellular calcium. The effect was highly tissue and species specific and human basophil leucocytes, human lung mast cells and tissue mast cells of the rat and guinea pig were only weakly responsive or essentially unreactive. Other oxyanions of vanadium with the metal in the (+V) oxidation state also evoked histamine release from rat peritoneal mast cells but neither vanadyl sulphate (+IV oxidation state) nor the analogous orthophosphate anion were effective secretagogues. On the basis of these results, the possible mechanism of action of vanadate is discussed.

Animals

The effects of vanadium compounds on the activation of adenylate cyclase from rat adrenal membrane.

In rat adrenal membrane, vanadyl sulfate, but not vanadate, inhibits the nonhydrolyzable GTP analogs-, forskolin- and NaF-stimulated activation process of adenylate cyclase. In these reactions, the half-maximum concentration of vanadyl for inhibition was approx. 0.3 mM. The binding of [3H]guanyl-5'-yl imidodiphosphate to the membrane (Kd = 2 microM) was not affected by vanadyl sulfate under the conditions in which the vanadyl sulfate inhibits the activation process. Also, the binding of ACTH to its receptor was inhibited by neither vanadyl sulfate nor vanadate, and the catalytic unit of adenylate cyclase appears to be unaffected by vanadyl sulfate. When the activation by nonhydrolyzable GTP analog was enhanced by Ca2+, vanadyl sulfate strongly inhibited the activation of adenylate cyclase.

Adenylyl Cyclases

Action of Mn2+ and vanadium compounds on hormone and forskolin induced stimulation of juvenile rat ovarian adenylate cyclase.

The effect of forskolin on the hormonal (LH, FSH) activation and on the stimulation provided by other effectors (Gpp(NH)p,NaF) of the juvenile rat ovarian adenylate cyclase was investigated. Forskolin exhibited a synergistic action with LH, FSH and Gpp(NH)p but not with NaF. Addition of Ca2+ was inhibitory over a concentration range from 10(-5) to 10(-2) M whereas EGTA enhanced the response at 5.10(-5) M and inhibited it at higher concentration. The cAMP production was increased by addition of Mn2+ at low concentration (up to 5 mM) but markedly decreased at higher concentration (30 mM). FSH induced cAMP production was completely abolished at 30 mM Mn2+. The effect of vanadyl ion was very similar to that of Mn2+ Vanadate anion on the contrary was without effect on FSH stimulation.

Adenylyl Cyclases