736
Views
26
CrossRef citations to date
0
Altmetric
Research Article

Pulmonary Immunotoxic Potentials of Metals Are Governed by Select Physicochemical Properties: Vanadium Agents

, , , , , , , , & show all
Pages 49-60 | Received 17 Oct 2006, Accepted 13 Nov 2006, Published online: 09 Oct 2008

REFERENCES

  • Barac-Nieto M., Alfred M., Spitzer A. Basolateral phosphate transport in renal proximal tubule-like OK cells. Exp. Biol. Med. 2002; 227: 626–631
  • Baran E. J. Oxovanadium(IV) and oxovanadium(V) complexes relevant to biological systems. J. Inorg. Biochem. 2000; 80: 1–10
  • Bersted B. H., Belford R. L., Paul I. C. Crystal and molecular structure of orthorhombic vanadyl(IV)pyridine-2,6-dicarboxylate tetrahydrate. Inorg. Chem. 1968; 7: 1557–1562
  • Buglyo P., Crans D. C., Nagy E. M., Lindo R. L., Yang L., Smee J. J., Jin W., Chi L. H., Godzala M. E., Willsky G. R. Aqueous chemistry of the vanadium(III) (V(III)) and the V(III)-dipicolinate systems and a comparison of the effect of three oxidation states of vanadium compounds on diabetic hyperglycemia in rats. Inorg. Chem. 2005; 44: 5416–5427
  • Chatterjee M., Maji M., Ghosh S., Mak T. C. Studies of V(III) complexes with selected alpha-N-heterocyclic carboxylato NO donor ligands: Structure of a new seven-coordinated pentagonal bipyramidal complex containing picolinato ligands. J. Chem. Soc.-Dalton Trans. 1998; 21: 3641–3645
  • Chien P. S., Mak O. T., Huang H. J. Induction of COX-2 protein expression by vanadate in A549 human lung carcinoma cell line through EGF receptor and p38 MAPK-mediated pathway. Biochem. Biophys. Res. Commun. 2006; 339: 562–568
  • Cohen M. D. Pulmonary immunotoxicology of select metals: Aluminum, arsenic, cadmium, chromium, manganese, nickel, vanadium, and zinc. J. Immunotoxicol. 2004; 1: 39–70
  • Cohen M. D. Pulmonary Immunotoxicology. Chapter 9. Toxicology of the Lung, 4th Edition, D. Gardner. Taylor and Francis/CRC Press, Boca Raton, FL 2006; 351–420
  • Cohen M. D., Becker S., Devlin R., Schlesinger R. B., Zelikoff J. T. Effects of vanadium upon polyI:C-induced responses in rat lung and alveolar macrophages. J. Toxicol. Environ. Health 1997; 51: 591–608
  • Cohen M. D., Chen C. M., Wei C. I. Decreased resistance to Listeria monocytogenes in mice following vanadate exposure: Effects upon the function of macrophages. Int. J. Immunopharmacol. 1989; 11: 285–292
  • Cohen M. D., Parsons E., Schlesinger R. B., Zelikoff J. T. Immunotoxicity of in vitro vanadium exposures: Effects on IL-1, TNFα, and prostaglandin E2 production by WEHI-3 macrophages. Int. J. Immunopharmacol. 1993; 15: 437–446
  • Cohen M. D., Prophete C., Maureen Sisco M., Lung-Chi Chen L. C., Zelikoff J. T., Smee J. J., Holder A. A., Crans D. C. Pulmonary immunotoxic potentials of metals are governed by select physicochemical properties: Chromium agents. J. Immunotoxicol. 2006; 3: 69–81
  • Cohen M. D., Sen A. C., Wei C. I. Effects of ammonium metavanadate treatment upon macrophage glutathione redox cycle activity, superoxide production, and intracellular Glutathione status. J. Leukocyte Biol. 1988; 44: 122–129
  • Cohen M. D., Sisco M., Baker K., Li Y., Lawrence D., van Loveren H., Zelikoff J. T., Schlesinger R. B. Effect of inhaled ozone on pulmonary immune cells critical to antibacterial responses in situ. Inhal. Toxicol. 2002; 14: 599–619
  • Cohen M. D., Yang Z., Qu Q., Schlesinger R. B., Zelikoff J. T. Vanadium affects macrophage IFN-γ binding and -inducible responses. Toxicol. Appl. Pharmacol. 1996b; 138: 110–120
  • Cohen M. D., Yang Z., Zelikoff J., Schlesinger R. B. Pulmonary immunotoxicity of inhaled ammonium metavanadate in Fisher 344 rats. Fundam. Appl. Toxicol. 1996a; 33: 254–263
  • Cowley E. A., Govindaraju K., Lloyd D. K., Eidelman D. H. Airway surface fluid composition in the rat determined by capillary electrophoresis. Am. J. Physiol. 1997; 273: L895–899
  • Crans D. C., Simone C. M. Nonreductive interaction of vanadate with an enzyme containing a thiol group in the active site: Glycerol-3-phosphate dehydrogenase. Biochemistry 1991; 30: 6734–6741
  • Crans D. C., Keramidas A. D., Drouza C. Organic vanadium compounds—Transition state analogy with organic phosphorus compounds. Phosphorous Sulfur, Silicon, Related Elem. 1996; 110: 245–248
  • Crans D. C., Smee J. J., Gaidamauskas E., Yang L. The chemistry and biochemistry of vanadium and the biological activities exerted by vanadium compounds. Chem. Rev. 2004; 104: 849–902
  • Crans D. C., Willging E. M., Butler S. R. Vanadate tetramer as the inhibiting species in enzyme reactions in vitro. J. Amer. Chem. Soc. 1990; 112: 427–432
  • Crans D. C., Yang L., Jakusch T., Kiss T. Aqueous chemistry of ammonium dipicolinatooxovanadium(V): The first organic vanadium(V) insulin-mimetic compound. Inorg. Chem. 2000; 39: 4409–4416
  • Dill J. A., Lee K. M., Mellinger K. H., Bates D. J., Burka L. T., Roycroft J. H. Lung deposition and clearance of inhaled vanadium pentoxide in chronically exposed F344 rats and B6C3F1 mice. Toxicol. Sci. 2004; 77: 6–18
  • Elmariah S., Gunn R. B. Kinetic evidence that the Na-PO4 co-transporter is the molecular mechanism for Na/Li exchange in human red blood cells. Am. J. Physiol. Cell. Physiol. 2003; 285: C446–C456
  • EPA. United States Environmental Protection Agency. Air Quality Criteria for PM, 2004. United States Environmental Protection Agency, Washington, DC 2004, EPA/600/P-99/002aF, bF
  • Graham J. A., Gardner D. E., Waters M. D., Coffin D. L. Effect of trace metals on phagocytosis by alveolar macrophages. Infect. Immun. 1975; 11: 1278–1283
  • Hatch G. Comparative biochemistry of airway lining fluid. Comparative Biology of the Normal Lung, Vol. 1, R. A. Parent. CRC Press, Boca Raton, FL 1992; 617–632
  • Jakusch T., Jin W., Yang L., Kiss T., Crans D. C. Vanadium(IV/V) speciation of pyridine-2,6-dicarboxylic acid and 4-hydroxy-pyridine-2,6-dicarboxylic acid complexes: Potentiometry, EPR spectroscopy and comparison across oxidation states. J. Inorg. Biochem. 2003; 95: 1–13
  • Kanamori K., Kinebuchi Y., Michibata H. Reduction of vanadium(IV) to vanadium(III) by cysteine methyl ester in water in the presence of amino polycarboxylates. Chem. Lett. 1997; 5: 423–424
  • Labedzka M., Gulyas H., Schmidt N., Gercken G. Toxicity of metallic ions and oxides to rabbit alveolar macrophages. Environ. Res. 1989; 48: 255–274
  • Liochev S. I., Fridovich I. Vanadate-stimulated oxidation of NAD(P)H in the presence of biological membranes and other sources of O2−. Arch. Biochem. Biophys. 1990; 279: 1–7
  • Mateos F., Brock J. H., Perez-Arellano J. L. Iron metabolism in the lower respiratory tract. Thorax 1998; 53: 594–600
  • Comprehensive Coordination Chemistry II—From Biology and Nanotechnology, Volume 4 Transition Metal Groups 3–6, J. A. McCleverty, T. J. Meyer. Elsevier Pergamon, San Diego, CA 2004
  • Meier R., Boddin M., Mitzenheim S., Kanamori K. Solution properties of vanadium(III) with regard to biological systems. Metal Ions in Biological Systems, Vol. 31. Vanadium and Its Role in Life, H. Sigel, A. Sigel. Marcel Dekker, New York 1992; 45–88
  • Minasi L. A., Willsky G. R. Characterization of vanadate-dependent NADH oxidation stimulated by Saccharomyces cerevisiae plasma membranes. J. Bacteriol. 1991; 173: 834–841
  • Nagaoka M. H., Yamazaki T., Maitani T. Binding patterns of vanadium ions with different valence states to human serum transferrin studied by HPLC/high-resolution ICP-MS. Biochem. Biophys. Res. Commun. 2002; 296: 1207–1214
  • Nechay B. R., Nanninga L. B., Nechay P. S. Vanadyl (IV) and vanadate (V) binding to selected endogenous phosphate, carboxyl, and amino ligands; Calculations of cellular vanadium species distribution. Arch. Biochem. Biophys. 1986; 251: 128–138
  • NTP. National Toxicology Program. NTP toxicology and carcinogenesis studies of vanadium pentoxide (CAS No. 1314-62-1) in F344/N rats and B6C3F1 mice (inhalation). National Toxicology Program Technical Report Series 2002; 507: 1–343
  • Pierce L. M., Alessandrini F., Godleski J. J., Paulauskis J. D. Vanadium-induced chemokine mRNA expression and pulmonary inflammation. Toxicol. Appl. Pharmacol. 1996; 138: 1–11
  • Prophete C., Maciejczyk P., Salnikow K., Gould T., Larson T., Koenig J., Jaques P., Sioutas C., Lippmann M., Cohen M. Effects of PM-associated metals on alveolar macrophage phosphorylated ERK-1/-2 and iNOS expression during ongoing alteration in iron homeostasis. J. Toxicol. Environ. Health 2006; 69: 935–951
  • Rau J. L. The inhalation of drugs: Advantages and problems. Resp. Care 2005; 50: 367–382
  • Rehder D. Inorganic considerations on the function of vanadium in biological systems. Metal Ions in Biological Systems, Vol. 31. Vanadium and Its Role in Life, H. Sigel, A. Sigel. Marcel Dekker, New York 1992; 1–44
  • Rhoads K., Sanders C. L. Lung clearance, translocation, and acute toxicity of arsenic, beryllium, cadmium, cobalt, lead, selenium, vanadium, and ytterbium oxides following deposition in rat lung. Environ. Res. 1985; 36: 359–378
  • Riley M. R., Boesewetter D. E., Kim A. M., Sirvent F. P. Effects of metals Cu, Fe, Ni, V, and Zn on rat lung epithelial cells. Toxicology 2003; 190: 171–184
  • Metal Ions in Biological Systems, Vol. 31. Vanadium and Its Role in Life, H. Sigel, A. Sigel. Marcel Dekker, New York 1992
  • Slebodnick C., Hamstra B. J., Pecoraro V. L. Modeling the biological chemistry of vanadium: Structural and reactivity studies elucidating biological function. Struct. Bond. 1997; 89: 51–108
  • Stankiewicz P. J., Stern A., Davison A. J. Oxidation of NADH by vanadium: Kinetics, effects of ligands and role of H2O2 or .O2−. Arch. Biochem. Biophys. 1991; 287: 8–17
  • Stern A., Davison A. J., Wu Q., Moon J. Effects of ligands on reduction of oxygen by vanadium(IV) and vanadium(III). Arch. Biochem. Biophys. 1992; 299: 125–128
  • Stern A., Yin X., Tsang S. S., Davison A., Moon J. Vanadium as a modulator of cellular regulatory cascades and oncogene expression. Biochem. Cell Biol. 1993; 71: 103–112
  • Statistical Techniques for Data Analysis, J. K. Taylor. Lewis Publishers, Chelsea, MI 1990
  • Thompson K. H., Barta C. A., Orvig C. Metal complexes of maltol and close analogues in medicinal inorganic chemistry. Chem. Soc. Rev. 2006; 35: 545–556
  • Wang L., Medan D., Mercer R., Overmiller D., Leornard S., Castranova V., Shi X., Ding M., Huang C., Rojanasakul Y. Vanadium-induced apoptosis and pulmonary inflammation in mice: Role of reactive oxygen species. J. Cell. Physiol. 2003; 195: 99–107
  • Ward R. J., Wilmet S., Legssyer R., Crichton R. R. The influence of iron homoeostasis on macrophage function. Biochem. Soc. Trans. 2002; 30: 762–765
  • Willsky G. R., Goldfine A. B., Kostyniak P. J., McNeill J. H., Yang L., Khan A. R., Crans D. C. Effect of vanadium (IV) compounds in the treatment of diabetes: In vivo in vitro studies with vanadyl sulfate and bis(maltolato)oxovandium(IV). J. Inorg. Biochem. 2001; 85: 33–42
  • Yang X., Yand X., Yuan L., Wang K., Crans D. The permeability and cytotoxicity of insulin-mimetic vanadium compounds. Pharm. Res. 2004; 21: 1026–1033
  • Zhang Y., Yang X., Wang K., Crans D. The permeability and cytotoxicity of insulin-mimetic vanadium (III, IV, V)-dipicolinate complexes. J. Inorg. Biochem. 2006; 100: 80–87

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.