Czech J. Anim. Sci., 2018, 63(8):313-322 | DOI: 10.17221/24/2018-CJAS

Effects of selenium on selenoprotein synthesis and antioxidant parameters of bovine mammary epithelial cellsOriginal Paper

Yongmei Guo1, Jian Gong1,2, Binlin Shi1, Xiaoyu Guo1, Sumei Yan*,1
1 College of Animal Science, Inner Mongolia Agricultural University, Hohhot, P.R. China
2 College of Life Science and Technology, Inner Mongolia Normal University, Hohhot, P.R. China

This study aimed to investigate the effects of selenium (Se) on the selenoproteins synthesis and antioxidant parameters of bovine mammary epithelial cells (BMECs). The experiment was conducted as a single factor completely randomized design to explore the effect of different levels of Se supplementation (0, 10, 20, 50, and 100 nmol/l) on selenoproteins synthesis and antioxidant parameters of BMECs, and to screen the appropriate dose of Se supplementation ensuring a better antioxidant function. Se supplementation increased cell proliferation, the activities of glutathione peroxidase (GPx) and superoxide dismutase, total antioxidant capacity and seleoprotein P (SelP) content, and decreased reactive oxygen species and malondialdehyde levels in a dose-dependent manner. Se supplementation of 50-100 nmol/l had a better effect. Se supplementation also increased thioredoxin reductase (TrxR) activity in a dose-dependent manner, and Se supplementation of 20-50 nmol/l had a better promoting effect. The dose-dependent response between Se supplementation and mRNA and protein expression of GPx1 and TrxR1, as well as SelP mRNA expression was also observed in this experiment. The mRNA and protein expression of GPx1 was up-regulated with the addition of 50-100 nmol/l Se, and the mRNA expression of TrxR1 and SelP was up-regulated with the addition of 20-100 nmol/l Se. Results indicated that Se supplementation of 50 nmol/l had a better promoting effect on the selenoproteins synthesis and antioxidant parameters of BMECs.

Keywords: trace element; dairy cows; glutathione peroxidase; thioredoxin reductase; antioxidant function

Published: August 31, 2018  Show citation

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Guo Y, Gong J, Shi B, Guo X, Yan S. Effects of selenium on selenoprotein synthesis and antioxidant parameters of bovine mammary epithelial cells. Czech J. Anim. Sci. 2018;63(8):313-322. doi: 10.17221/24/2018-CJAS.
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References

  1. Barnes K.M., Evenson J.K., Raines A.M., Sunde R.A. (2009): Transcript analysis of the selenoproteome indicates that dietary selenium requirements of rats based on seleniumregulated selenoprotein mRNA levels are uniformly less than those based on glutathione peroxidase activity. The Journal of Nutrition, 139, 199-206. Go to original source... Go to PubMed...
  2. Barrera L.N., Cassidy A., Wang W., Wei T., Belshaw N.J., Johnson I.T., Brigelius-Flohe R., Bao Y. (2012): TrxR1 and GPx2 are potently induced by isothiocyanates and selenium, and mutually cooperate to protect caco-2 cells against free radical-mediated cell death. Biochimica et Biophysica Acta, 1823, 1914-1924. Go to original source... Go to PubMed...
  3. Bruzelius K., Hoac T., Sundler R., Onning G., Akesson B. (2007): Occurrence of selenoprotein enzyme activities and mRNA in bovine mammary tissue. Journal of Dairy Science, 90, 918-927. Go to original source... Go to PubMed...
  4. Bruzelius K., Sundler R., Pagmantidis V., Akesson B. (2010): Regulation of selenoprotein mRNA expression by hormones and retinoic acid in bovine mammary cells. Journal of Trace Elements in Medicine and Biology, 24, 251-256. Go to original source... Go to PubMed...
  5. Copeland P.R., Fletcher J.E., Carlson B.A., Hatfield D.L., Driscoll D.M. (2000): A novel RNA binding protein, SBP2, is required for the translation of mammalian selenoprotein mRNAs. Embo Journal, 19, 306-314. Go to original source... Go to PubMed...
  6. Goncalves A.C., Barbosaribeiro A., Alves V., Silva T., Sarmentoribeiro A.B. (2013): Selenium compounds induced ROS-dependent apoptosis in myelodysplasia cells. Biological Trace Element Research, 154, 440-447. Go to original source... Go to PubMed...
  7. Gong J., Ni L., Wang D., Shi B., Yan S. (2014): Effect of dietary organic selenium on milk selenium concentration and antioxidant and immune status in midlactation dairy cows. Livestock Science, 170, 84-90. Go to original source...
  8. Hadley K.B., Sunde R.A. (2001): Selenium regulation of thioredoxin reductase activity and mRNA levels in rat liver. Journal of Nutritional Biochemistry, 12, 693-702. Go to original source... Go to PubMed...
  9. Hara S., Shoji Y., Sakurai A., Yuasa K., Himeno S., Imura N. (2001): Effects of selenium deficiency on expression of selenoproteins in bovine arterial endothelial cells. Biological and Pharmaceutical Bulletin, 24, 754-759. Go to original source... Go to PubMed...
  10. Hill K.E., Xia Y., Akesson B., Boeglin M.E., Burk R.F. (1996): Selenoprotein P concentration in plasma is an index of selenium status in selenium-deficient and seleniumsupplemented Chinese subjects. Journal of Nutrition, 126, 138-145. Go to original source... Go to PubMed...
  11. Hill K.E., McCollum G.W., Burk R.F. (1997): Determination of thioredoxin reductase activity in rat liver supernatant. Analytical Biochemistry, 253, 123-125. Go to original source... Go to PubMed...
  12. Hu B., Mitra J., van den Heuvel S., Enders G.H. (2001): S and G2 phase roles for Cdk2 revealed by inducible expression of a dominant-negative mutant in human cells. Molecular and Cellular Biology, 21, 2755-2766. Go to original source... Go to PubMed...
  13. Kipp A., Banning A., van Schothorst E.M., Meplan C., Schomburg L., Evelo C., Coort S., Gaj S., Keijer K., Hesketh J., Brigelius-Flohe R. (2009): Four selenoproteins, protein biosynthesis, and Wnt signalling are particularly sensitive to limited selenium intake in mouse colon. Molecular Nutrition and Food Research, 53, 1561-1572. Go to original source... Go to PubMed...
  14. Miranda S.G., Purdie N.G., Osborne V.R., Coomber B.L., Cant J.P. (2011): Selenomethionine increases proliferation and reduces apoptosis in bovine mammary epithelial cells under oxidative stress. Journal of Dairy Science, 94, 165-173. Go to original source... Go to PubMed...
  15. Moriarty P.M., Reddy C.C., Maquat L.E. (1998): Selenium deficiency reduces the abundance of mRNA for Se-dependent glutathione peroxidase 1 by a UGA-dependent mechanism likely to be nonsense codon-mediated decay of cytoplasmic mRNA. Molecular and Cellular Biology, 18, 2932-2939. Go to original source... Go to PubMed...
  16. Mosca L., Marcellini S., Perluigi M., Mastroiacovo P., Moretti S., Famularo G., Peluso I., Santini G., De Simone C. (2002): Modulation of apoptosis and improved redox metabolism with the use of a new antioxidant formula. Biochemical Pharmacology, 63, 1305-1314. Go to original source... Go to PubMed...
  17. Muller A.S., Pallauf J. (2002): Down-regulation of GPx1 mRNA and the loss of GPx1 activity causes cellular damage in the liver of selenium-deficient rabbits. Journal of Animal Physiology and Animal Nutrition, 86, 273-287. Go to original source... Go to PubMed...
  18. Murano K., Ogino H., Okuno T., Arakawa T., Ueno H. (2018): Role of supplementary selenium on the induction of insulin resistance and oxidative stress in NSY mice fed a high fat diet. Biological and Pharmaceutical Bulletin, 41, 92-98. Go to original source... Go to PubMed...
  19. Nagy E., Maquat L.E. (1998): A rule for termination-codon position within intron-containing genes: when nonsense affects RNA abundance. Trends in Biochemical Sciences, 23, 198-199. Go to original source... Go to PubMed...
  20. Ohkawa H., Ohishi N., Yagi K. (1979): Assay for lipid peroxides in animal tissues by thiobarbituric acid reaction. Analytical Biochemistry, 95, 351-358. Go to original source... Go to PubMed...
  21. Pagmantidis V., Bermano G., Villette S., Broom I., Arthur J., Hesketh J. (2005): Effects of Se-depletion on glutathione peroxidase and selenoprotein W gene expression in the colon. FEBS Letters, 579, 792-796. Go to original source... Go to PubMed...
  22. Robinson T.L., Sutherland I.A., Sutherland J. (2007): Validation of candidate bovine reference genes for use with real-time PCR. Veterinary Immunology and Immunopathology, 115, 160-165. Go to original source... Go to PubMed...
  23. Sordillo L.M. (2013): Selenium-dependent regulation of oxidative stress and immunity in periparturient dairy cattle. Veterinary Medicine International, 4, 1-8. Go to original source... Go to PubMed...
  24. Sordillo L.M., Aitken S.L. (2009): Impact of oxidative stress on the health and immune function of dairy cattle. Veterinary Immunology and Immunopathology, 128, 104-109. Go to original source... Go to PubMed...
  25. Steinbrenner H., Bilgic E., Alili L., Sies H., Brenneisen P. (2006): Selenoprotein P protects endothelial cells from oxidative damage by stimulation of glutathione peroxidase expression and activity. Free Radical Research, 40, 936-943. Go to original source... Go to PubMed...
  26. Stupin A., Cosic A., Novak S., Vesel M., Jukic I., Popovic B., Karalic K., Loncaric Z., Drenjancevic I. (2017): Reduced dietary selenium impairs vascular function by increasing oxidative stress in Sprague-Dawley rat aortas. International Journal of Environmental Research and Public Health, 14: 591. Go to original source... Go to PubMed...
  27. Sun Z., Liu C., Pan T., Yao H., Li S. (2017): Selenium accelerates chicken dendritic cells differentiation and affects selenoproteins expression. Developmental and Comparative Immunology, 77: 30. Go to original source... Go to PubMed...
  28. Sunde R.A., Raines A.M., Barnes K.M., Evenson J.K. (2009): Selenium status highly regulates selenoprotein mRNA levels for only a subset of the selenoproteins in the selenoproteome. Bioscience Reports, 29, 329-338. Go to original source... Go to PubMed...
  29. Yeo J.E., Kang S.K. (2007): Selenium effectively inhibits ROS-mediated apoptotic neural precursor cell death in vitro and in vivo in traumatic brain injury. Biochimica et Biophysica Acta, 1772, 1199-1210. Go to original source... Go to PubMed...
  30. Zeng H. (2002): Selenite and selenomethionine promote HL-60 cell cycle progression. Journal of Nutrition, 132, 674-679. Go to original source... Go to PubMed...
  31. Zeng H. (2009): Selenium as an essential micronutrient: roles in cell cycle and apoptosis. Molecules, 14, 1263-1278. Go to original source... Go to PubMed...
  32. Zhang Z., Guo Y., Qiu C., Deng G., Guo M. (2017): Protective action of Se-supplement against acute alcoholism is regulated by selenoprotein P (SelP) in the liver. Biological Trace Element Research, 175, 1-13. Go to original source... Go to PubMed...

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