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Reactive oxygen species induce tyrosine phosphorylation of and Src kinase recruitment to NO-sensitive guanylyl cyclase.

Soluble guanylyl cyclase (sGC) is the major cytosolic receptor for nitric oxide (NO) that converts GTP into the second messenger cGMP in a NO-dependent manner. Other factors controlling this key enzyme are intracellular proteins such as Hsp90 and PSD95, which bind to sGC and modulate its activity, stability, and localization. To date little is known about the effects of posttranslational modifications of sGC, although circumstantial evidence suggests that reversible phosphorylation may contribute to sGC regulation. Here we demonstrate that inhibitors of protein-tyrosine phosphatases such as pervanadate and bisperoxo(1,10-phenanthroline)oxovanadate(V) as well as reactive oxygen species such as H2O2 induce specific tyrosine phosphorylation of the beta1 but not of the alpha1 subunit of sGC. Tyrosine phosphorylation of sGCbeta1 is also inducible by pervanadate and H2O2 in intact PC12 cells, rat aortic smooth muscle cells, and in rat aortic tissues, indicating that tyrosine phosphorylation of sGC may also occur in vivo. We have mapped the major tyrosine phosphorylation site to position 192 of beta1, where it forms part of a highly acidic phospho-acceptor site for Src-like kinases. In the phosphorylated state Tyr(P)-192 exposes a docking site for SH2 domains and efficiently recruits Src and Fyn to sGCbeta1, thereby promoting multiple phosphorylation of the enzyme. Our results demonstrate that sGC is subject to tyrosine phosphorylation and interaction with Src-like kinases, revealing an unexpected cross-talk between the NO/cGMP and tyrosine kinase signaling pathways at the level of sGC.

Animals↗

Genotoxic effects of vanadium pentoxide on human peripheral lymphocytes and mucosal cells of the upper aerodigestive tract.

In addition to tobacco and alcohol consumption, pollutants found in certain industries and in the environment play an important role in carcinogenesis in the upper aerodigestive tract. The aim of the present study was to investigate whether vanadium pentoxide may have a genotoxic effect on human mucosal cells and lymphocytes. The single cell microgel electrophoresis assay (Comet assay) was used to detect DNA damage induced by vanadium pentoxide in human nasal epithelia (n = 11) and in lymphocytes (n = 11). Mucosa was harvested from inferior nasal turbinates, while lymphocytes were obtained via venous puncture. Vanadium pentoxide was applied at concentrations of 0.06 mM, 0.12 mM, 0.24 mM, and 0.47 mM. Aqua bidestillata served as solvent and negative control and N-methyl-N'-nitro-N-nitrosoguanidine at 0.07 mM (MNNG) was used as positive control. The trypan blue exclusion test was applied to assess cytotoxicity. Whereas vanadium pentoxide induced dose-dependent DNA migration in lymphocytes, mucosal cells did not show comparable genotoxic effects. Cytotoxic effects allowed for viabilities exceeding 80%. The results indicate that vanadium pentoxide is capable of inducing single-strand-breaks and/or alkali-labile damage in the DNA of human lymphocytes. By contrast, mucosal cells proved not to be sensitive in this setting. Thus, a possible role of vanadium in the tumorigenesis of head and neck cancer appears unrelated to direct genotoxic effects.

Adult↗

Conformation changes in brain calcineurin in diabetic rats with or without treatment with vanadyl sulfate.

Recent studies have shown that vanadium salts are able to reduce blood glucose in diabetics and overcome, to some degree, insulin resistance. This paradigm has been followed to monitor the effects of diabetes and vanadyl treatment on brain calcineurin (CN), an important protein phosphatase. Male rats were rendered diabetic by a single injection of streptozotocin (STZ), resulting in an elevation of blood glucose from 108 +/- 13 to >400 mg/dl. Diabetic animals were given vanadyl sulfate trihydrate (0.5 mg/dl.) in their drinking water for 3 weeks, which led to a fall in blood glucose to 156 +/- 53 mg/ml. Brain CN activity (units/mg brain protein) in diabetic rats was 77% that of control animals, whereas vanadyl-treated diabetic animals were characterized by CN activities like that of controls. CN was purified from brains of control animals, STZ-induced diabetic animals, and STZ-induced diabetic animals receiving vanadyl, then spin-labeled with 3-maleimide-proxyl and studied via electron spin resonance spectroscopy. The rotational correlation time of CN from control animals and vanadyl-treated diabetic animals was 6.4 x 10(-11) s(-1), whereas that from STZ-induced-diabetic animals was 8 x 10(-11) s(-1). Thus, STZ-induced diabetes in rats results in an increase in the rotational correlation time of brain CN relative to control animals, yet vanadyl treatment of STZ-induced diabetic animals reduced the rotational correlation time to that of control. These data suggest that diabetes can lead to apparent conformational changes in brain CN; also, CN conformation in diabetic rats was restored by vanadyl treatment.

Administration, Oral↗

The intensity of vanadium(V)-induced cytotoxicity and morphological transformation in BALB/3T3 cells is dependent on glutathione-mediated bioreduction to vanadium(IV).

Cytotoxicity and morphological transformation has been studied in BALB/3T3 Cl A31-1-1 mouse embryo cells for ammonium vanadate [vanadium(V)] and vanadyl sulphate [vanadium(IV)] alone or in combination with diethylmaleate (DEM), a cellular glutathione (GSH)-depleting agent. Cells exposed for 24 h to 10(-5) M vanadium(V) alone or in combination with 3 x 10(-6) M DEM showed the characteristic hyperfine EPR signal of vanadium(IV), which was more obvious in the case of exposure to vanadium(V) alone. This suggests that the amount of vanadium(V) reduced to vanadium(IV) decreased in GSH-depleted cells. While vanadium(IV) at concentrations of 3 x 10(-6) M and 10(-5) M was not transforming in the cells, vanadium(V) showed neoplastic transforming activity (P < 0.025 and P < 0.001 for the two doses, respectively) in comparison to controls (vanadium unexposed cells). Cytotoxicity and morphological transformation in cells exposed to vanadium(V) in combination with 3 x 10(-6) M DEM were significantly more intensive (P < 0.005 and P < 0.01 for the two doses of vanadate tested) compared to the corresponding values observed in cells exposed to vanadium(V) alone. This suggests that the final transforming activity response is dependent on the intracellular GSH-mediated mechanism of reduction of vanadium(V) to vanadium(IV): (i) the extent to which vanadium(V) should be bioreduced to less toxic vanadium(IV) via intracellular GSH is a key point in determining the intensity of the observed neoplastic action; (ii) the carcinogenic potential of vanadium(V) should be strictly dependent on its intracellular persistence which could lead to changes in normal metabolic patterns of vanadium(V) in the oxidized form due to lack of GSH-mediated reduction.

3T3 Cells↗

Map kinase activation correlates with K-ras mutation and loss of heterozygosity on chromosome 6 in alveolar bronchiolar carcinomas from B6C3F1 mice exposed to vanadium pentoxide for 2 years.

Previous work showed a correlation between K-ras mutation and loss of heterozygosity (LOH) on chromosome 6 in the region of K-ras in lung carcinomas from B6C3F1 mice. We hypothesized that mitogen-activated protein kinase (MAPK) would be activated only in those lung neoplasms with both K-ras mutation and LOH. As MAPK activity can be correlated directly with signal detection using antibodies to phosphorylated MAPK, we were able to analyze lung carcinomas from B6C3F1 mice for the presence or absence of MAPK activity by western analysis. Vanadium pentoxide-induced mouse lung carcinomas, which had been shown to have a high frequency of K-ras mutations and LOH on chromosome 6 and for which frozen tumor tissue was available, were used for this study. Total MAPK expression levels were similar between normal lung and lung carcinomas. Phospho-MAPK was elevated in five of six lung carcinoma samples examined in which K-ras mutations and chromosome 6 LOH were identified and in four of five carcinomas with K-ras mutations that lacked LOH. Phospho-MAPK was undetectable or weakly expressed in seven carcinomas examined without K-ras mutations and in normal lung. By immunohistochemistry three K-ras positive/LOH negative samples exhibited multifocal areas of nuclear and cytoplasmic staining for phospho-MAPK. Large amounts of non-staining fibroblasts, lymphocytes and macrophages were also observed in these tumors. Two of these lung carcinomas were microdissected and chromosome 6 LOH was detected in regions of phospho-MAPK positive cells. These results suggest that MAPK is activated during vanadium pentoxide-induced B6C3F1 mouse lung tumorigenesis following K-ras mutation and loss of the wild-type K-ras allele.

Adenocarcinoma, Bronchiolo-Alveolar↗

Dietary vanadyl(IV) sulfate inhibits chemically-induced mammary carcinogenesis.

The induction of murine mammary carcinogenesis by 1-methyl-1-nitrosourea was blocked by the feeding of a purified diet formulation supplemented with 25 p.p.m. vanadium as vanadyl(IV) sulfate during the post initiation stages of the neoplastic process. Treatment with vanadyl(IV) sulfate reduced both cancer incidence and the average number of cancers per rat and prolonged the median cancer-free time without inhibiting the overall growth of the animals. Vanadyl(IV) sulfate appears to be an effective non-toxic agent for the chemoprevention of experimental breast cancer in the rat.

Animals↗

Beneficial effects of the oral administration of vanadyl sulphate on glucose metabolism in senescent rats.

We investigated the effects of the oral administration of vanadyl sulphate (0.5 mg/ml in the drinking water) on glucose homeostasis of 3-month- and 24-month-old rats. Results show that aging is associated with alteration of the oral glucose tolerance test and impairment of the postprandial accumulation of glycogen in skeletal muscles and that the oral administration of vanadyl sulphate rapidly normalizes the inbalance of glucose metabolism in senescent rats. It is suggested that vanadate administration may restore the ability of skeletal muscles of senescent rats to respond to circulating insulin efficiently.

Administration, Oral↗

Lung deposition and clearance of inhaled vanadium pentoxide in chronically exposed F344 rats and B6C3F1 mice.

Female F344 rats and B6C3F1 mice were exposed to vanadium pentoxide (V2O5) at concentrations of 0, 0.5, 1, or 2 mg/m3 (rats) and 0, 1, 2, or 4 mg/m3 (mice) for 6 h/day, 5 days/week (for up to 18 months), by whole-body inhalation. Lung weights and lung burdens of vanadium were determined for exposed animals after 1, 5, and 12 days and after 1, 2, 6, 12, and 18 months of V2O5 exposure. Blood vanadium concentrations were determined at 1, 2, 6, 12, and 18 months for all animals including controls. A model that assumed a first-order deposition rate and a first-order elimination rate for vanadium was employed to fit the lung burden data. Comparisons between exposed groups indicated a progressive increase in lung weight with exposure concentration and time on exposure for both species. The vanadium lung burdens appeared to reach steady state in the lowest exposure groups (0.5 and 1 mg/m3 for rats and mice, respectively) but showed a decline in the higher exposure groups. This deposition pattern was similar between rats and mice but the maximum lung burdens were observed at different times (1 or 2 months in mice vs. 6 months in rats). The vanadium deposition rate decreased faster in mice, while the elimination half-lives of vanadium lung burdens were about six- to nine-fold shorter in mice than in rats at 1 and 2 mg/m3. Thus, the retention of vanadium in the lungs at 18 months was lower in mice (approximately 2% retained) compared with rats (13-15% retained) at the common exposure concentrations of 1 and 2 mg/m3. The lung burden data were approximately proportional to the exposure concentration in both species, likely due to concomitant decreases in deposition and elimination to a similar extent with increasing exposure. The area under the lung burden versus time curves and the area under the blood concentration (control-normalized) versus time curves were also proportional to exposure concentration. The progression of pathological changes in the lung with exposure and time is thought to affect the pattern and/or extent of vanadium deposition in the lungs following repeated exposures to V2O5.

Administration, Inhalation↗

Studies in humans on the mechanism of potent spermicidal and apoptosis-inducing activities of vanadocene complexes.

We previously demonstrated that bis-cyclopentadienyl (Cp) complexes of vanadium(IV) (vanadocenes) are potent spermicidal and apoptosis-inducing agents. To gain further insight into the structure-function relationships controlling these two properties of vanadocenes, we have synthesized analogues in which the bis-Cp rings were substituted with one or five electron-donating methyl groups. The three complexes included vanadocene dichloride (VDC), bis(methylcyclopentadienyl) vanadium dichloride (VMDC), and bis(pentamethylcyclopentadienyl) vanadium dichloride (VPMDC). The concentration-dependent effect of these vanadocenes on sperm-immobilizing activity (SIA), mitochondrial membrane potential (DeltaPsim), axonemal dynein ATPase activity, and tyrosine phosphorylation of global and axoneme-specific sperm proteins was assessed by computer-assisted sperm analysis, flow cytometry, colorimetry, and immunoblotting, respectively. Apoptosis-inducing ability was quantitated by the two-color flow cytometric terminal dideoxynucleotidyl transferase-based assay that labels 3'-hydroxyl ends of fragmented DNA. All three vanadocenes induced rapid sperm immobilization (T(1/2) < 15 sec). Substitution of the bis-Cp rings by five methyl groups augmented the SIA of VDC by 10-fold. The EC(50) values (50% inhibitory concentration) for VDC, VMDC, and VPMDC were 7.5 microM, 4.3 microM, and 0.7 microM, respectively. Whereas SIA of vanadocenes was apparent at low micromolar concentrations, the apoptosis-inducing property was evident only at higher micromolar concentrations. The concentrations of VDC, VMDC, and VPMDC required for 50% apoptosis were 49 microM, 67 microM, and 153 microM, and for 50% reduction in sperm DeltaPsim were 435 microM, 173 microM, and 124 microM, respectively. Spermicidal activity of vanadocenes was not dependent on the inhibition of ATPase or tyrosine phosphorylation of global and sperm axonemal proteins. Due to the ability of these vanadocene complexes to rapidly generate hydroxyl radicals in the presence of oxidant, our findings provide unprecedented evidence for a novel mechanism of action for spermicidal vanadocenes. The differential concentration-dependent spermicidal and apoptosis-inducing properties of vanadocenes gives them particular utility as a new class of vaginal contraceptives.

Apoptosis↗

Size-dependent optical properties of VO2 nanoparticle arrays.

The size effects on the optical properties of vanadium dioxide nanoparticles in ordered arrays have been studied. Contrary to previous VO2 studies, we observe that the optical contrast between the semiconducting and metallic phases is dramatically enhanced in the visible region, presenting size-dependent optical resonances and size-dependent transition temperatures. The collective optical response as a function of temperature presents an enhanced scattering state during the evolving phase transition. The effects appear to arise because of the underlying VO2 mesoscale optical properties, the heterogeneous nucleation behind the phase transition, and the incoherent coupling between the nanoparticles undergoing an order-disorder-order transition. Calculations that support these interpretations are presented.

Biosensing Techniques↗

(C6H14N2)2[VO(HPO4)5B2O] x H2O x -H3PO4, a novel borophosphate cluster containing a single vanadium centre and linked by hydrogen bonds into a three-dimensional framework.

The title novel vanadium borophosphate compound, bis(1,4-diazonia[2.2.2]octane) mu(3)-oxo-oxopenta-mu-phosphato-diboronvanadium monohydrate phosphoric acid solvate, containing the cluster anion [VO(PO(3)OH)(5)B(2)O](4-), has been synthesized under mild hydrothermal conditions. Extensive O-H...O and N-H...O hydrogen bonding is observed between the molecular units.

Journal Article↗

Phase determination by polarized dispersion in vanadyl sulfate pentahydrate.

Anomalous-scattering tensors for V measured with linearly polarized synchrotron radiation in VOSO4. 5H2O near the K-absorption edge exhibit anisotropy as much as 4 units in f" and +/- 2 units in f'. This polarized dispersion causes the diffraction intensity to change when a crystal is turned around a diffraction vector and is the basis of a new way to obtain phases of structure factors.

Models, Chemical↗

Toxicological aspects of vanadyl sulphate on diabetic rats: effects on vanadium levels and pancreatic B-cell morphology.

This study explored some toxicological aspects of vanadyl sulphate (VOSO4) treatment of rats made diabetic with a single intravenous injection of streptozotocin (60 mg/kg). Administered in drinking water (0.25, 0.5, 0.75 or 1 mg of VOSO4, 5H2O ml) VOSO4 treatment partially or totally corrected some of the alterations associated with the diabetic state (hyperglycaemia, polydipsia, polyphagia, high cholesterol and triglycerides levels) and did not produce any changes in various plasma or blood cell parameters which were not previously altered by diabetes. Measurement of vanadium levels indicated that tissues accumulated vanadium in the following order of concentrations: bone greater than kidney greater than spleen greater than liver greater than lung greater than or equal to muscle greater than blood. Histopathological studies did not reveal any difference in liver, stomach, ileum, spleen, heart and lung from control, non-treated diabetic or VOSO4-treated diabetic animals. Kidney of all non-treated diabetic animals showed an epithelial cellular swelling of distal tubules while only 2 of 6 VOSO4-treated diabetic animals showed this alteration. Cellular degeneration of pancreas B-cells was less marked in VOSO4-treated that in non-treated diabetic animals. The study indicates that VOSO4 may be a potential antidiabetic agent.

Animals↗

Toxicity studies on one-year treatment of non-diabetic and streptozotocin-diabetic rats with vanadyl sulphate.

Streptozotocin-diabetic and non-diabetic rats were given vanadyl sulphate in drinking water at concentrations of 0.5-1.5 mg/ml for one year. It was found that vanadyl treatment did not produce persistent changes in plasma aspartate aminotransferase, alanine aminotransferase, and urea, specific morphological abnormalities in the brain, thymus, heart, lung, liver, spleen, pancreas, kidney, adrenal, or testis, or abnormal organ weight/body weight ratio for these organs in either non-diabetic or diabetic animals. Treatment significantly reduced the incidence of the occurrence of urinary stones in non-diabetic rats. In diabetic animals vanadyl treatment significantly reduced the mortality rate and prevented the elevation of plasma levels of alanine aminotransferase and urea, the increases in organ size, and the occurrence of megacolon but did not affect the development of renal and testicular tumours. Plasma and tissue concentrations of vanadium were determined and found to have the following order of distribution: bone > kidney > testis > liver > pancreas > plasma > brain. Vanadium was retained in these organs at 16 weeks following vanadyl withdrawal while the plasma levels were beneath detection limits. It is concluded that vanadyl sulphate at antidiabetic doses is not significantly toxic to rats following a one-year administration in drinking water, but vanadium may be retained in various organs for months after cessation of treatment.

Administration, Oral↗

One-year treatment of non-diabetic and streptozotocin-diabetic rats with vanadyl sulphate did not alter blood pressure or haematological indices.

Circulatory and haematological effects of chronic administration of vanadyl sulphate in drinking water for one year in non-diabetic and streptozotocin-diabetic rats were investigated. At various time points during the treatment period and at 13 weeks following its withdrawal, systolic blood pressure and pulse rate were measured using a tail-cuff method and some selected haematological indices, including haematocrit, haemoglobin, erythrocyte count, reticulocyte percentage, leukocyte count, platelet count, and leukocyte composition of the peripheral blood were determined using standard methods. It was found that prolonged treatment of either nondiabetic or streptozotocin-diabetic rats with vanadyl sulphate did not cause significant changes in the parameters observed but significantly alleviated the occurrence of bradycardia and the decreased leukocyte count in the peripheral blood in streptozotocin-diabetic animals. No significant changes in systolic blood pressure, pulse rate, or haematological indices were observed following the withdrawal of vanadyl sulphate, except that the previously vanadyl-treated diabetic rats were found to have higher leukocyte count, platelet count and neutrophil percentage, and lower lymphocyte percentage in their leukocyte composition. It is concluded that vanadyl sulphate does not have a hypertensive effect nor is it significantly toxic to the haemopoietic system in rats.

Administration, Oral↗

Lack of haematological effect of oral vanadium treatment in rats.

Haematological effects of oral administration of ammonium metavanadate 0.19 mmol V/kg/day, vanadyl sulphate 0.15 mmol V/kg/day, and bis(maltolato)oxovanadium (i.v.) 0.18 mmol V/kg/day in drinking water for 12 weeks were investigated in Wistar rats. Some selected haematological indices of the peripheral blood, including haematocrit, haemoglobin, erythrocyte count, reticulocyte percentage, leukocyte count and its differential count, platelet count, and osmotic fragility of the erythrocyte were determined using the standard methods. It was found that, throughout the 12-week experimental period, there were no significant differences between the untreated controls and various groups of vanadium-treated rats in all of the parameters measured. It is thus concluded that ammonium metavanadate, vanadyl sulphate, and bis(maltolato) oxovanadium (i.v.), at least at the doses and at the duration of treatment employed, do not produce significant haematological toxicity in rats.

Administration, Oral↗