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Research Articles

Comparative outcomes of exposing human liver and kidney cell lines to tungstate and molybdate

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Pages 690-698 | Received 24 May 2021, Accepted 11 Jul 2021, Published online: 29 Jul 2021

References

  • Agency for Toxic Substances and Disease Registry (ATSDR) 2005. Toxicological profile for Tungsten. Atlanta (GA): U.S. Department of Health and Human Services, Public Health Service
  • Alvarez HM, Xue Y, Robinson CD, Canalizo-Hernández MA, Marvin RG, Kelly RA, Mondragón A, Penner-Hahn JE, O'Halloran TV. 2010. Tetrathiomolybdate inhibits copper trafficking proteins through metal cluster formation. Science. 327(5963):331–334.
  • Ames BN, Cathcart R, Schwiers E, Hochstein P. 1981. Uric acid provides an antioxidant defense in humans against oxidant- and radical-caused aging and cancer: a hypothesis. Proc Natl Acad Sci USA. 78(11):6858–6862.
  • Bellomo E, Massarotti A, Hogstrand C, Maret W. 2014. Zinc ions modulate protein tyrosine phosphatase 1B activity. Metallomics. 6(7):1229–1239.
  • Bolt AM, Grant MP, Wu TH, Flores MM, Plourde D, Kelly AD, Negro Silva LF, Lemaire M, Schlezinger JJ, Mwale F, Mann KK. 2016. Tungsten promotes sex-specific adipogenesis in the bone by altering differentiation of bone marrow-resident mesenchymal stromal cells. Toxicol Sci. 150(2):333–346.
  • Bolt AM, Mann KK. 2016. Tungsten: an emerging toxicant, alone or in combination. Curr Environ Health Rep. 3(4):405–415.
  • Božinović K, Nestić D, Centa UG, Ambriović-Ristov A, Dekanić A, de Bisschop L, Remškar M, Majhen D. 2020. In-vitro toxicity of molybdenum trioxide nanoparticles on human keratinocytes. Toxicology. 444:152564.
  • Bridges CC, Zalups RK. 2010. Ionic and molecular mimicry and the transport of metal ions. In: Zalups RK, Koropatnick, J, editors, Cellular and molecular biology of metals, Boca Raton, FL: CRC Press, Taylor and Francis Group, LLC. p. 241–294.
  • Cheraghi G, Hajiabedi E, Niaghi B, Nazari F, Naserzadeh P, Hosseini M-J. 2019. High doses of sodium tungstate can promote mitochondrial dysfunction and oxidative stress in isolated mitochondria. J Biochem Mol Toxicol. 33(4):e22266.
  • Chinde S, Dumala N, Rahman MF, Kamal SSK, Kumari SI, Mahboob M, Grover P. 2017. Toxicological assessment of tungsten oxide nanoparticles in rats after acute oral exposure. Environ Sci Pollut Res Int. 24(15):13576–13593.
  • Chinde S, Grover P. 2017. Toxicological assessment of nano and micron-sized tungsten oxide after 28days repeated oral administration to Wistar rats. Mutat Res. 819:1–13.
  • Cordas CM, Moura JJ. 2019. Molybdenum and tungsten enzymes redox properties–A brief overview. Coord Chem Rev. 394:53–64.
  • Datta S, Vero SE, Hettiarachchi GM, Johannesson K. 2017. Tungsten contamination of soils and sediments: current state of science. Curr Pollution Rep. 3(1):55–64.
  • Deosthale Y, Gopalan C. 1974. The effect of molybdenum levels in sorghum (Sorghum vulgare Pers.) on uric acid and copper excretion in man. Br J Nutr. 31(3):351–355.
  • Dunnick KM, Badding MA, Schwegler-Berry D, Patete JM, Koenigsmann C, Wong SS, Leonard SS. 2014. The effect of tungstate nanoparticles on reactive oxygen species and cytotoxicity in raw 264.7 mouse monocyte macrophage cells. J Toxicol Environ Health A. 77(20):1251–1268.
  • Emsley J. 2011. The elements (A-Z). In Emsley J, Nature's building blocks: An A-Z guide to the elements. Oxford University Press, p. 571.
  • EPA 2008. EPA, Emerging contaminant tungsten. Fact sheet, in 505-F-070-005. 2008 (https://nepis.epa.gov/Exe/tiff2png.cgi/P1000L3K.PNG?-r+75+-g+7+D%3A%5CZYFILES%5CINDEX%20DATA%5C06THRU10%5CTIFF%5C00000138%5CP1000L3K.TIF. ) accessed on 7 Oct 2020
  • Feng J, Chen J, Xing C, Huang A, Zhuang Y, Yang F, Zhang C, Hu G, Mao Y, Cao H. 2020. Molybdenum induces mitochondrial oxidative damage in kidney of goats. Biol Trace Elem Res. 197(1):167–174.
  • Fernández-Mariño AI, Cidad P, Zafra D, Nocito L, Domínguez J, Oliván-Viguera A, Köhler R, López-López JR, Pérez-García MT, Valverde MÁ, et al. 2015. Tungstate-targeting of BKαβ1 channels tunes ERK phosphorylation and cell proliferation in human vascular smooth muscle. PLoS One. 10(2):e0118148.
  • Foster JD, Young SE, Brandt TD, Nordlie RC. 1998. Tungstate: a potent inhibitor of multifunctional glucose-6-phosphatase. Arch Biochem Biophys. 354(1):125–132.
  • Furberg A, Arvidsson R, Molander S. 2019. Dissipation of tungsten and environmental release of nanoparticles from tire studs: A Swedish case study. J Clean Prod. 207:920–928.
  • George I, Uboldi C, Bernard E, Sobrido MS, Dine S, Hagège A, Vrel D, Herlin N, Rose J, Orsière T, et al. 2019. Toxicological assessment of ITER-like tungsten nanoparticles using an in vitro 3D human airway epithelium model. Nanomaterials (Basel). 9(10):1374.
  • Gianì F, Pandini G, Scalisi NM, Vigneri P, Fazzari C, Malandrino P, Russo M, Masucci R, Belfiore A, Pellegriti G, et al. 2019. Effect of low-dose tungsten on human thyroid stem/precursor cells and their progeny. Endocr Relat Cancer. 26(8):713–725.
  • Guilbert C, Kelly ADR, Petruccelli LA, Lemaire M, Mann KK. 2011. Exposure to tungsten induces DNA damage and apoptosis in developing B lymphocytes. Leukemia. 25(12):1900–1904.
  • Hagen WR. 2011. Cellular uptake of molybdenum and tungsten. Coord Chem Rev. 255(9-10):1117–1128.
  • Idil AS, Donaldson N. 2018. The use of tungsten as a chronically implanted material. J Neural Eng. 15(2):021006.
  • Jeng HA, Swanson J. 2006. Toxicity of metal oxide nanoparticles in mammalian cells. J Environ Sci Health A Tox Hazard Subst Environ Eng. 41(12):2699–2711.
  • Johnson DR, Ang C-Y, Bednar AJ, Inouye LS. 2010. Tungsten effects on phosphate-dependent biochemical pathways are species and liver cell line dependent. Toxicol Sci. 116(2):523–532.
  • Kelly ADR, Lemaire M, Young YK, Eustache JH, Guilbert C, Flores Molina M, Mann KK. 2013. In vivo tungsten exposure alters B-cell development and increases DNA damage in murine bone marrow. Toxicol Sci. 131(2):434–446.
  • Kirk ML, Kc K. 2020. Molybdenum and tungsten cofactors and the reactions they catalyze. In: Sosa Torres M, Kroneck P, editors. Transition metals and sulfur – A strong relationship for life. Berlin: De Gruyter. p. 313–342.
  • Leggett RW. 1997. A model of the distribution and retention of tungsten in the human body. Sci Total Environ. 206(2-3):147–165.
  • Lemus R, Venezia CF. 2015. An update to the toxicological profile for water-soluble and sparingly soluble tungsten substances. Crit Rev Toxicol. 45(5):388–411.
  • Liu TT, Liu YJ, Wang Q, Yang XG, Wang K. 2012. Reactive-oxygen-species-mediated Cdc25C degradation results in differential antiproliferative activities of vanadate, tungstate, and molybdate in the PC-3 human prostate cancer cell line. J Biol Inorg Chem. 17(2):311–320.
  • McDonald JD, Weber WM, Marr R, Kracko D, Khain H, Arimoto R. 2007. Disposition and clearance of tungsten after single-dose oral and intravenous exposure in rodents. J Toxicol Environ Health A. 70(10):829–836.
  • Murray FJ, Sullivan FM, Hubbard SA, Hoberman AM, Carey S. 2019. A two-generation reproductive toxicity study of sodium molybdate dihydrate administered in drinking water or diet to Sprague-Dawley rats. Reprod Toxicol. 84:75–92.
  • Murray FJ, Sullivan FM, Tiwary AK, Carey S. 2014. 90-Day subchronic toxicity study of sodium molybdate dihydrate in rats. Regul Toxicol Pharmacol. 70(3):579–588.
  • Nakanishi Y, Iida S, Ueoka-Nakanishi H, Niimi T, Tomioka R, Maeshima M. 2013. Exploring dynamics of molybdate in living animal cells by a genetically encoded FRET nanosensor. PLoS One. 8(3):e58175.
  • Novotny JA. 2011. Molybdenum nutriture in humans. J Evid Based Complementary Altern Med. 16(3):164–168.
  • Osterburg AR, Robinson CT, Schwemberger S, Mokashi V, Stockelman M, Babcock GF. 2010. Sodium tungstate (Na2WO4) exposure increases apoptosis in human peripheral blood lymphocytes. J Immunotoxicol. 7(3):174–182.
  • Rodriguez-Hernandez CJ, Llorens-Agost M, Calbó J, Murguia JR, Guinovart J. 2013. Sodium tungstate modulates ATM function upon DNA damage. FEBS Lett. 587(10):1579–1586.
  • Rubin CS, Holmes AK, Belson MG, Jones RL, Flanders WD, Kieszak SM, Osterloh J, Luber GE, Blount BC, Barr DB, et al. 2007. Investigating childhood leukemia in Churchill county, Nevada. Environ Health Perspect. 115(1):151–157.
  • Sachdeva S, Chatterjee S, Flora S. 2020. Dose dependent changes in oxidative stress, hematological variables, tissue pathology, and apoptosis following chronic sodium tungstate exposure in rats. Med Drug Disc. 6:100045.
  • Sachdeva S, Flora S. 2014. Efficacy of some antioxidants supplementation in reducing oxidative stress post sodium tungstate exposure in male Wistar rats. J Trace Elem Med Biol. 28(2):233–239.
  • Sachdeva S, Kushwaha P, Flora S. 2013. Effects of sodium tungstate on oxidative stress enzymes in rats. Toxicol Mech Methods. 23(7):519–527.
  • Sachdeva S, Pant SC, Kushwaha P, Bhargava R, Flora SJ. 2015. Sodium tungstate induced neurological alterations in rat brain regions and their response to antioxidants. Food Chem Toxicol. 82:64–71.
  • Shi L, Cao H, Luo J, Liu P, Wang T, Hu G, Zhang C. 2017. Effects of molybdenum and cadmium on the oxidative damage and kidney apoptosis in duck. Ecotoxicol Environ Saf. 145:24–31.
  • Singh KB, Maret W. 2017. The interactions of metal cations and oxyanions with protein tyrosine phosphatase 1B. Biometals. 30(4):517–527.
  • Tejada-Jiménez M, Galván A, Fernández E. 2011. Algae and humans share a molybdate transporter. Proc Natl Acad Sci USA. 108:6420–6425.
  • Tejada-Jiménez M, Schwarz G. 2014. Molybdenum and tungsten. In: Maret W, Wedd AG, editors. Binding, transport and storage of metal ions in biological cells. Royal Society of Chemistry, p. 223–259.
  • Underwood E. 1977. Trace Elements in Human and Animal Nutrition, 4th ed. New York: Academic Press.
  • Wang C, Nie G, Yang F, Chen J, Zhuang Y, Dai X, Liao Z, Yang Z, Cao H, Xing C, et al. 2020. Molybdenum and cadmium co-induce oxidative stress and apoptosis through mitochondria-mediated pathway in duck renal tubular epithelial cells. J Hazard Mater. 383:121157.
  • Wasel O, Freeman JL. 2018. Comparative assessment of tungsten toxicity in the absence or presence of other metals. Toxics. 6(4):66.
  • Weber WM, Marr R, Kracko D, Gao Z, McDonald JD, Ui Chearnaigh K. 2008. Disposition of tungsten in rodents after repeat oral and drinking water exposures. Toxicol Environm Chem. 90(3):445–455.
  • Witten ML, Sheppard PR, Witten BL. 2012. Tungsten toxicity. Chem Biol Interact. 196(3):87–88.
  • Wu TH, Bolt AM, Chou H, Plourde D, Jay ND, Guilbert C, Young YK, Kleinman CL, Mann KK. 2019. Tungsten blocks murine B lymphocyte differentiation and proliferation through downregulation of IL-7 receptor/Pax5 signaling. Toxicol Sci. 170(1):45–56.
  • Zhang C, Lin T, Nie G, Hu R, Pi S, Wei Z, Wang C, Xing C, Hu G. 2021. Cadmium and molybdenum co-induce pyroptosis via ROS/PTEN/PI3K/AKT axis in duck renal tubular epithelial cells. Environ Pollut. 272:116403.
  • Zhuang J, Nie G, Hu R, Wang C, Xing C, Li G, Hu G, Yang F, Zhang C. 2021. Inhibition of autophagy aggravates molybdenum-induced mitochondrial dysfunction by aggravating oxidative stress in duck renal tubular epithelial cells. Ecotoxicol Environ Saf. 209:111771.
  • Zoroddu MA, Medici S, Peana M, Nurchi VM, Lachowicz JI, Laulicht-Glickc F, Costa M. 2018. Tungsten or wolfram: friend or foe? Curr Med Chem. 25(1):65–74.