The Oxidative Damage and Disbalance of Calcium Homeostasis in Brain of Chicken Induced by Selenium Deficiency
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  • 作者:Shi-Wen Xu (1)
    Hai-Dong Yao (1)
    Jian Zhang (1)
    Zi-Wei Zhang (1)
    Jin-Tao Wang (1)
    Jiu-Li Zhang (1)
    Zhi-Hui Jiang (1)
  • 关键词:Oxidative damage ; Calcium homeostasis ; Selenium deficiency ; Chicken
  • 刊名:Biological Trace Element Research
  • 出版年:2013
  • 出版时间:February 2013
  • 年:2013
  • 卷:151
  • 期:2
  • 页码:225-233
  • 全文大小:818KB
  • 参考文献:1. Wirth EK, Conrad M, Winterer J et al (2010) Neuronal selenoprotein expression is required for interneuron development and prevents seizures and neurodegeneration. FASEB J 24:844-52 CrossRef
    2. Schweizer U, Schomburg L, Savaskan NE (2004) The neurobiology of selenium: lessons from transgenic mice. J Nutr 134:707-10
    3. Schweizer U, Brauer AU, Kohrle J et al (2004) Selenium and brain function: a poorly recognized liaison. Brain Res Brain Res Rev 45:164-78 CrossRef
    4. Jayaprakash V, Marshall JR (2011) Selenium and other antioxidants for chemoprevention of gastrointestinal cancers. Best Pract Res Clin Gastroenterol 25:507-18 CrossRef
    5. Jeong D, Kim TS, Chung YW et al (2002) Selenoprotein W is a glutathione-dependent antioxidant in vivo. FEBS Lett 517:225-28 CrossRef
    6. Lescure A, Rederstorff M, Krol A et al (2009) Selenoprotein function and muscle disease. Biochim Biophys Acta 1790:1569-574 CrossRef
    7. Naziroglu M (2009) Role of selenium on calcium signaling and oxidative stress-induced molecular pathways in epilepsy. Neurochem Res 34:2181-191 CrossRef
    8. Nakayama A, Hill KE, Austin LM et al (2007) All regions of mouse brain are dependent on selenoprotein P for maintenance of selenium. J Nutr 137:690-93
    9. Savaskan NE, Brauer AU, Kuhbacher M et al (2003) Selenium deficiency increases susceptibility to glutamate-induced excitotoxicity. FASEB J 17:112-14
    10. Turan B, Acan NL, Ulusu NN et al (2001) A comparative study on effect of dietary selenium and vitamin E on some antioxidant enzyme activities of liver and brain tissues. Biol Trace Elem Res 81:141-52 CrossRef
    11. Gao X, Xing H, Li S et al (2012) Selenium regulates gene expression of selenoprotein W in chicken gastrointestinal tract. Biol Trace Elem Res 145:181-88 CrossRef
    12. Li JL, Li HX, Li S et al (2012) Effects of selenoprotein W gene expression by selenium involves regulation of mRNA stability in chicken embryos neurons. Biometals 25:459-68 CrossRef
    13. Ruan H, Zhang Z, Wu Q et al (2012) Selenium regulates gene expression of selenoprotein W in chicken skeletal muscle system. Biol Trace Elem Res 145:59-5 CrossRef
    14. Sun B, Wang R, Li J et al (2011) Dietary selenium affects selenoprotein W gene expression in the liver of chicken. Biol Trace Elem Res 143:1516-523 CrossRef
    15. Wang R, Sun B, Zhang Z et al (2011) Dietary selenium influences pancreatic tissue levels of selenoprotein W in chickens. J Inorg Biochem 105:1156-160 CrossRef
    16. Yu D, Li JL, Zhang JL et al (2011) Effects of dietary selenium on selenoprotein W gene expression in the chicken immune organs. Biol Trace Elem Res 144:678-87 CrossRef
    17. Zhang JL, Li JL, Huang XD et al (2012) Dietary selenium regulation of transcript abundance of selenoprotein N and selenoprotein W in chicken muscle tissues. Biometals 25:297-07 CrossRef
    18. Huang JQ, Li DL, Zhao H et al (2012) The selenium deficiency disease exudative diathesis in chicks is associated with downregulation of seven common selenoprotein genes in liver and muscle. J Nutr 141(9):1605-610
    19. Uguz AC, Naziroglu M (2012) Effects of selenium on calcium signaling and apoptosis in rat dorsal root ganglion neurons induced by oxidative stress. Neurochem Res 37:1631-638 CrossRef
    20. Uezono Y, Toyohira Y, Yanagihara N et al (2006) Inhibition by selenium compounds of catecholamine secretion due to inhibition of Ca2+ influx in cultured bovine adrenal chromaffin cells. J Pharmacol Sci 101:223-29 CrossRef
    21. Hasunuma R, Ogawa T, Kawanishi Y (1982) Fluorometric determination of selenium in nanogram amounts in biological materials using 2,3-diaminonaphthalene. Anal Biochem 126:242-45 CrossRef
    22. Sedlak J, Lindsay RH (1968) Estimation of total, protein-bound, and nonprotein sulfhydryl groups in tissue with Ellman’s reagent. Anal Biochem 25:192-05 CrossRef
    23. Rotruck JT, Pope AL, Ganther HE et al (1973) Selenium: biochemical role as a component of glutathione peroxidase. Science 179:588-90 CrossRef
    24. Bradford MM (1976) A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. Anal Biochem 72:248-54 CrossRef
    25. Grynkiewicz G, Poenie M, Tsien RY (1985) A new generation of Ca2+ indicators with greatly improved fluorescence properties. J Biol Chem 260:3440-450
    26. Kockar MC, Naziroglu M, Celik O et al (2010) N-acetylcysteine modulates doxorubicin-induced oxidative stress and antioxidant vitamin concentrations in liver of rats. Cell Biochem Funct 28:673-77 CrossRef
    27. Uguz AC, Naziroglu M, Espino J et al (2009) Selenium modulates oxidative stress-induced cell apoptosis in human myeloid HL-60 cells through regulation of calcium release and caspase-3 and -9 activities. J Membr Biol 232:15-3 CrossRef
    28. Savas S, Briollais L, Ibrahim-zada I et al (2010) A whole-genome SNP association study of NCI60 cell line panel indicates a role of Ca2+ signaling in selenium resistance. PLoS One 5:e12601 CrossRef
    29. Ferreccio C, Gonzalez Psych C, Milosavjlevic Stat V et al (1998) Lung cancer and arsenic exposure in drinking water: a case–control study in northern Chile. Cad Saude Publica 14(Suppl 3):193-98 CrossRef
    30. Sunde RA, Hadley KB (2010) Phospholipid hydroperoxide glutathione peroxidase (Gpx4) is highly regulated in male turkey poults and can be used to determine dietary selenium requirements. Exp Biol Med (Maywood) 235:23-1 CrossRef
    31. Bozkaya LA, Ozturk-Urek R, Aydemir T et al (2001) Effects of Se, Cu and Se + vitamin E deficiency on the activities of CuZnSOD, GSH-Px, CAT and LPO levels in chicken erythrocytes. Cell Biochem Funct 19:153-57 CrossRef
    32. Jun EJ, Ye JS, Hwang IS et al (2011) Selenium deficiency contributes to the chronic myocarditis in coxsackievirus-infected mice. Acta Virol 55:23-9 CrossRef
    33. Zuberbuehler CA, Messikommer RE, Arnold MM et al (2006) Effects of selenium depletion and selenium repletion by choice feeding on selenium status of young and old laying hens. Physiol Behav 87:430-40 CrossRef
    34. Zhang ZW, Wang QH, Zhang JL et al (2012) Effects of oxidative stress on immunosuppression induced by selenium deficiency in chickens. Biol Trace Elem Res. doi:10.1007/s12011-012-9439-0
    35. McKenzie RC, Arthur JR, Beckett GJ (2002) Selenium and the regulation of cell signaling, growth, and survival: molecular and mechanistic aspects. Antioxid Redox Signal 4:339-51 CrossRef
    36. Roy SS, Hajnoczky G (2009) Fluorometric methods for detection of mitochondrial membrane permeabilization in apoptosis. Methods Mol Biol 559:173-90 CrossRef
    37. Liu X, Hajnoczky G (2009) Ca2+-dependent regulation of mitochondrial dynamics by the Miro–Milton complex. Int J Biochem Cell Biol 41:1972-976 CrossRef
    38. Naziroglu M, Ozgul C, Cig B et al (2011) Glutathione modulates Ca(2+) influx and oxidative toxicity through TRPM2 channel in rat dorsal root ganglion neurons. J Membr Biol 242:109-18 CrossRef
    39. Naziroglu M, Kutluhan S, Yilmaz M (2008) Selenium and topiramate modulates brain microsomal oxidative stress values, Ca2+-ATPase activity, and EEG records in pentylentetrazol-induced seizures in rats. J Membr Biol 225:39-9 CrossRef
  • 作者单位:Shi-Wen Xu (1)
    Hai-Dong Yao (1)
    Jian Zhang (1)
    Zi-Wei Zhang (1)
    Jin-Tao Wang (1)
    Jiu-Li Zhang (1)
    Zhi-Hui Jiang (1)

    1. Department of Veterinary Medicine, Northeast Agricultural University, Harbin, 150030, People’s Republic of China
文摘
Dietary selenium (Se) deficiency can influence the function of the brain. Our objective was to investigate the effects of Se deficiency on oxidative damage and calcium (Ca) homeostasis in brain of chicken. In the present study, 1-day-old chickens were fed either a commercial diet (as control group) with 0.15?mg/kg Se or a Se-deficient diet (as L group) with 0.033?mg/kg Se for 75?days. Then, brain injury biomarkers were examined, including histological analysis, ultrastructure assay, and apoptosis assay. We also examined the effect of Se deficiency on the Se-containing antioxidative enzyme glutathione peroxidase (GSH-Px), the level of glutathione (GSH), and the Ca homeostasis in brain of chicken. The results showed that the levels of Se and GSH and activity of GSH-Px are seriously reduced by 33.8-6?% (P-lt;-.001), 24.51-7.84?% (P-lt;-.001), and 20.70-4.24?% (P-lt;-.01), respectively. In the present study, we also perform histological analysis and ultrastructure assay and find that Se deficiency caused disorganized histological structure, damage to the mitochondria, fusion of nuclear membrane and nucleus shrinkage, higher apoptosis rate (P-lt;-.001), and increase of Ca homeostasis (P-lt;-.05 or P-lt;-.01 or P-lt;-.001) in the brain of chicken. In conclusion, the results demonstrated that Se deficiency induced oxidative damage and disbalance of Ca homeostasis in the brain of chicken. Similar to mammals, chickens brain is also extremely susceptible to oxidative damage and selenium deficiency.

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