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Effects of Lead and Particulate Montmorillonite on Growth Performance, Hormone and Organ Weight in Pigs

  • Yu, DongYou (Feed Science Institute, Zhejiang University, The Key Laboratory of Molecular Animal Nutrition Ministry of Education) ;
  • Xu, Z.R. (Feed Science Institute, Zhejiang University, The Key Laboratory of Molecular Animal Nutrition Ministry of Education) ;
  • Yang, X.G. (Feed Science Institute, Zhejiang University, The Key Laboratory of Molecular Animal Nutrition Ministry of Education)
  • 투고 : 2005.02.15
  • 심사 : 2005.06.25
  • 발행 : 2005.12.01

초록

Seventy-two crossbred gilts of approximately 33 kg initial weight were used in this study. The gilts were randomly assigned into three groups. The three dietary treatments were basal diet only (control group), basal diet+10 mg/kg lead, and basal diet+10 mg/kg lead+0.5% particulate montmorillonite (PM). The results showed that the addition of lead to the diet decreased significantly the body weight and feed efficiency, but PM could restore body weight and feed efficiency of gilts compared to the Pb exposure group. There were no significant differences in weights of ovaries and uteri with addition of either lead or PM to the diet. Supplementing the lead in the diet of gilts also significantly increased the concentration of lead in blood, decreased circulating lutenizing hormone (LH) and estradiol (E$_2$) levels in serum, the addition of PM to the diet effectively adsorbed and lowered lead concentration in the blood. These data suggested that lead disrupts the signals between the hypothalamus and pituitary gland in gilts, and possibly suppressed the secretion of relative growth hormone and sex hormone. On the other hand, PM may ameliorate Pb toxicity in pigs.

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참고문헌

  1. Angle, C. R. and D. R. Kunzelman. 1989. Increased erythrocyte protoporphyrins and blood lead-a pilot study of childhood growth pattern. J. Toxicol. Environ. Health. 26:149-156.
  2. Apostoli, P., S. Porru and L. Bisanti. 1999. Critical aspects of male fertility in the assessment of exposure to Pb. Scand. J. Work Environ. Health. 25:40-43.
  3. Badger, T. M., J. S. Loughlin and P. G. Naddaff. 1983. The luteinizing hormone-releasing hormone (LHRH)-desensitized rat pituitary: Luteinizing hormone responsiveness to LHRH in vitro. Endocrinol. 112:793-799.
  4. Bell, J. U. and J. A. Thomas. 1980. Effects of lead on mammalian reproduction. In Lead Toxicity (ED. R. L Singhal and J. A. Thomas). Urban & Schwartzberg, Baltimore/Zurich. pp. 167-187.
  5. Benoff, S., A. Jacob and I. R. Hurley. 2000. Male infertility and environmental exposure to Pb and cadmium. Hum. Reprod. 6:107-121.
  6. Comoratto, A. M., L. M. White, Y. S. Lau, G. O. Ware, W. D. Berry and C. M. Moriarty. 1993. Effect of exposure to low level lead on growth and growth hormone release in rats. Toxicol. 83:101-114.
  7. Crystel, T., P. Joël, N. Francoise and L. Brigitte. 2001. Lead accumulation in the mouse ovary after treatment-induced follicular atresia. Reprod. Toxicol. 15:385-391.
  8. Dale, J., M. Kowalska and D. L. Cocke. 1991. Interactions of montmorillonite with organic compounds adsorptive and catalytic properties. Chemosphere. 22:769-798.
  9. Dearth, R. K., J. K. Hiney, V. Srivastava, S. B. Burdick, G. R. Bratton and D. W. Les. 2002. Effects of lead (Pb) exposure during gestation and lactation on female pubertal development in the rat. Reprod. Toxicol. 16:343-352.
  10. Dearth, R. K., J. K. Hiney, V. Srivastava, D. W. Les and G. R. Bratton. 2004. Low level lead (Pb) exposure during gestation and lactation: assessment of effects on pubertal development in Fisher 344 and Sprague-Dawley female rats. Life Sci. 74:1139-1148.
  11. EI, F. A., F. Ghorbel, M. Smaoul, F. Makni-Ayadi and A. Kammoun. 2000. Effects du plomb d’origine automobile sur la croissance generale etl’ activite sexuelle du rat. Gynecol Obstet Fertil. 1:51-59.
  12. Gilman, A. G., T. W. Rall, A. S. Nies and P. Taylor. 1991. Goodman & Gilman’s the pharmacological basis of therapeutics. Pergamon, New York, pp. 1592-1614.
  13. Goyer, R. A. 1990. Lead toxicity: from overt to subclinical to subtle health effects. Environmental Health Perspectives. 86:177-181.
  14. Hamilton, J. D. and E. J. O’Flaherty. 1995. Influence of lead on mineralization during bone growth. Fundamental and Applied Toxicology 26:265-271.
  15. Hammond, P. B., D. J. Minnema and P. A. Succop. 1993. Reversibility of lead-induced depression of growth. Toxicol. Appl. Phdrmacol. 123:9-15.
  16. Hammond, P. B., D. J. Minnema and R. Shukla. 1990. Lead lowers the set point for food consumption and growth in weanling rats. Toxicol. Appl. Pharmacol. 106:80-87.
  17. He, H. P., J. G. Guo, X. D. Xie and J. L. Pen. 1999. Experimental studies on the selective adsorption of heavy metal on montmorillonite, illite and kaolinite and the influence of medium conditions. Acta. Mineralodica. Sinica. 19:231-235.
  18. Hsu, P. C., M. Y. Liu, C. C. Hsu, L. Y. Chen and G. Y. Leon. 1998. Effects of vitamin E and/or C on reactive oxygen speciesrelated lead toxicity in the rat sperm. Toxicol. 128(3):169-179.
  19. Hu, X. R., G. L. Lu and L. S. Chen. 2002. Study on the mechanism of the interaction between and bacterium. Acta. Pharmaceutica. Sinica. 37:718-720.
  20. Huseman, C. A., M. M. Varma and C. R. Angle. 1987. Childhood lead toxicity and impaired release of thyroid stimulating hormone. Environ. Res. 42:524-533.
  21. Huseman, C. A., M. M. Varma and C. R. Angle. 1992. Neuroendocrine effects of toxic and low blood levels in children. Pediatrics. 90:186-189.
  22. Kempinas, W. G., A. Farvaretto, V. Melo, T. L. Lamano Carvalho, S. O. Petenusci and R. M. Oliveira-Filho. 1994. Time-dependent effects of lead on rat reproductive functions. J. Appl. Toxicol. 14:427-433.
  23. Krsmanovic, L. Z., S. Stanko, M. Stojikovic and S. M. Dufour. 1992. Calcium signaling and episodic secretion of gonadotropin-releasing hormone in hypothalamic neurons. Proc. Natl. Acad. Sci. USA. 89:8462-8466.
  24. Latif, M. A. and J. H. Quisenberry. 1968. Effects of dietary clays and sodium bicarbonate on the performance of commercial laying hens. Poult. Sci. 47:1688.
  25. Lin, X. L., Z. R. Xu, X. T. Zou, F. Wang, X. H. Yan and J. F. Jiang. 2004. Effects of montmorillonite nanocomposite on mercury residues in growing/finishing pigs. Asian-Aust. J. Anim. Sci. 17(10):1434-1437.
  26. Martin, J. J. R., M. B. Thomas, J. S. Sarah, K. R. Paula and S. Fatima. 1996. Reproductive toxicity and growth effects in rats exposed to lead at different periods during development. Toxicol. and appl. Pharmacol. 36:361-371.
  27. Maboeta, M. S. M., A. J. M. Reinecke and S. A. Reinecke. 1999. Effects of low levels of lead on growth and reproduction of the asian earthworm perionyx excavatus (Oligochaeta). Ecotoxicology and Environmental Safety 44:236-240.
  28. Masimango, M., J. Remacle and J. L. Ramault. 1978. The role of adsorption in the dlimination of aflatoxin B1 from contaminated media. Europ. J. Appl. Microbiol. 6:101-105.
  29. National Research Council (NRC). 1998. Nutrient Requirements of Swine. 10th Ed. National Academy Press. Washington, DC.
  30. Oldereid, N. B., Y. Thomassen, A. Attramada and P. K. Olaisen. 1993. Concentrations of Pb, cadmium and zinc in the tissues of reproductive organs of men. J. Reprod. Fertil. 99:421-425.
  31. Pillai, A., L. Priya and S. Gupta. 2003. Effects of combined exposure to lead and cadmium on the hypothalamic–pituitary axis function in proestrous rats. Food Chem. Toxicol. 41:379-84. https://doi.org/10.1016/S0278-6915(02)00247-8
  32. Polak, J. and E. J. O'Flaherty. 1995. Physiologically based models of lead exposure in Children. Toxicology Letters 78:67.
  33. Pounds, J. G. 1984. Effects of lead intoxication on calcium homeostasis and calcium-mediated cell function: a review. Neurotoxicol. 5:295-332.
  34. Ramos, A. J. and E. Hernandez. 1996. In vitro aflatoxin adsorption by means of a montmorillonite silicate: A study of adsorption isotherms. Anim. Feed Technol. 62:263-269.
  35. Rodriguez, J. M., A. J. Lopez and S. Bruque. 1989. Adsorption of phenamiphos by homoionic montmorillonites. Agrochimica. 33:312-21.
  36. SAS Institute Inc. 1989. SAS/STAT User’s Guide: Version 6, 4th edn. SAS Institute Inc., Cary, North Carolina.
  37. Schwartz, J. 1992. Low level health effects of lead: Growth, developmental and neurological disturbances. In Human Lead Exposure (Ed. H. L. Needleman). CRC Press, Boca Raton, FL. pp. 233-242.
  38. Skoczynska, A., J. Wrobel and R. Andrzejak. 2001. Lead-cadmium interaction effect on the responsiveness of rat mesenteric vessels to norepinephrine and angiotensin II. Toxicol. 162:157-170.
  39. Sokol, R. Z., C. E. Madding and R. S. Swerdloff. 1985. Lead toxicity and the hypothalamic-pituitary-testicular axis. Biol. Reprod. 33:722-728.
  40. Sokol, R. Z. and N. Berman. 1991. The effect of age of exposure on lead induced testicular toxicity. Toxicol. 69:269-278.
  41. Verity, M. A. 1992. Ca$^{2+}$-dependent processes as mediators of neurotoxicity. Neurotoxicol. 13:139-48.
  42. Wiebe, J. P., K. J. Barr, K. D. Buckingham. 1988. Effect of prenatal and neonatal exposure to Pb on gonadotropin receptors and stereoidogenesis in rat ovaries. J. Toxicol. Environ. Health. 24:461-476.
  43. Xu, Z. R., Y. L. Ma, C. H. Hu, M. S. Xia, T. Guo and H. L. Jin. 2003. Effects of Cu-exchanged montmorillonite on growth performance, intestinal microflora, bacteria enzyme activities and morphology of broilers. Asian-Aust. J. Anim. Sci. 16(11):1673-1679.

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