Does Inclusion at Low Levels of Organically Complexed Minerals Versus Inorganic Forms Create a Weakness in Performance or Antioxidant Defense System in Broiler Diets?


Authors

  • Devrim Saripinar-Aksu Department of Physiology, Faculty of Veterinary Medicine, Mustafa Kemal University, 31040, Hatay, Turkey
  • Taylan Aksu Department of Animal Nutrition, Faculty of Veterinary Medicine, Mustafa Kemal University, 31040, Hatay, Turkey
  • S. Ercument Onel Department of Animal Nutrition, Health Science Institute, Mustafa Lemal University, 31040, Hatay, Turkey

DOI:

https://doi.org/10.3923/ijps.2012.666.672

Keywords:

Antioxidant defense system, broiler, organic mineral, performance

Abstract

Inorganic trace mineral participates, like sulfate or oxide salts, are a critical component in commercial poultry feeds. However, inorganic trace minerals can suffer from high rates of loss due to dietary antagonism which cause a significantly reduce in their bioavailability. As a result, more inorganic trace minerals are supplied than are actually needed. An excess of supplemental inorganically complexed minerals leads to waste and environmental. The use of lower levels of organically complexed minerals in poultry diets has become a common method to solve this problem in recent years. Organically complexed minerals are biotechnological products which inorganic mineral integrated to organic structures such as protein or polysaccharide. Research regarding this kind of supplementation is still at a nascent stage, though and not enough data exists to determine optimal levels of organically complexed minerals and to quantify differences in excretion rates between inorganic and organic sources. In addition, it is unclear that using at lower levels of organically complexed minerals in diet whether creates a weakness on systems, in which the mineral plays an active role.

References

AAFCO, 1997. Association of American Feed Control Officials. AAFCO Official Publication, Atlanta, GA., USA.

Abdallah, A.G., O.M. El-Husseiny and K.O. Abdel-Latif, 2009. Influence of some dietary organic mineral supplementations on broiler performance. Int. J. Poult. Sci., 8: 291-298.

Aksu, T., M.I. Aksu, M.A. Yoruk and M. Karaoglu, 2011. Effects of organically-complexed minerals on meat quality in chickens. Br. Poult. Sci., 52: 558-563.

Aksu, T., B. Ozsoy, D.S. Aksu, M.A. Yoruk and M. Gul, 2011. The effects of lower levels of organically complexed zinc, copper and manganese in broiler diets on performance, mineral concentration of tibia and mineral excretion. Kafkas Univ. Vet. Fak. Derg., 17: 141-146.

Ammerman, C.B., D.H. Baker and A.J. Lewis, 1995. Bioavailability of Nutrients for Animals. Academic Press, San Diego, USA.

Ao, T., J.L. Pierce, A.J. Pescatore, A.H. Cantor, K.A. Dawson, M.J. Ford and M. Paul, 2011. Effects of feeding different concentration and forms of zinc on the performance and tissue mineral status of broiler chicks. Br. Poult. Sci., 52: 466-471.

Aruoma, O.I., B. Halliwell, E. Gajewski and M. Dizdaroglu, 1991. Copper-ion-dependent damage to the bases in DNA in the presence of hydrogen peroxide. Biochem. J., 273: 601-604.

Aspila, P., 1991. Metabolism of selenite, selenomethionine and feed-incorporated selenium in lactating goats and dairy cows. J. Agric. Sci. Finland, 63: 69-74.

Lyons, T.P. and K.A. Jacques, 2003. Nutritional Biotechnology in the Feed and Food Industry. Nottingham University Press, UK.

Bao, Y.M. and M. Choct, 2009. Trace mineral nutrition for broiler chickens and prospects of application of organically complexed trace minerals: A review. Anim. Prod. Sci., 49: 269-282.

Bao, Y.M., M. Choct, P.A. Iji and K. Bruerton, 2007. Effect of organically complexed copper, iron, manganese, and zinc on broiler performance, mineral excretion, and accumulation in tissues. J. Appl. Poult. Res., 16: 448-455.

Bendich, A., 1993. Physiological role of antioxidants in the immune system. J. Dairy Sci., 76: 2789-2794.

Boland, M.P., 2003. Trace minerals in production and reproduction in dairy cows. Adv. Dairy Technol., 15: 319-330.

Aziz, B., T. Bulbul S. Kucukersan, M. Sireli and A. Eryavuz, 2008. Effects of dietary supplementation of organic and inorganic Zn, Cu and Mn on oxidant-antioxidant balance in laying hens. Kafkas Univ. Vet. Fak. Derg., 14: 19-24.

Cao, J., P.R. Henry, R. Guo, R.A. Holwerda and J.P. Toth et al., 2000. Chemical characteristics and relative bioavailability of supplemental organic zinc sources for poultry and ruminants. J. Anim. Sci., 78: 2039-2054.

Cao, J., P.R. Henry, S.R. Davis, R.J. Cousins, R.D. Miles, R.C. Littell and C.B. Ammerman, 2002. Relative bioavailability of organic zinc sources based on tissue zinc and metallothionein in chicks fed conventional dietary zinc concentrations. Anim. Feed Sci. Technol., 101: 161-170.

Dozier, W.A., A.J. Davis, M.E. Freeman and T.L. Ward, 2003. Early growth and environmental implications of dietary zinc and copper concentrations and sources of broiler chicks. Br. Poult. Sci., 44: 726-731.

Haddad, A.S., V. Subbiah, A.E. Lichtin, K.S. Theil and J.P. Maciejewski, 2008. Hypocupremia and bone marrow failure. Haematologica, 93: e1-e5.

Hale, C. and K.C. Olson, 2002. Mineral supplements for beef cattle. Agricultural MU Extension, University of Missouri-Columbia, Columbia, USA., pp: 1-8.

Halliwell, B. and J.M. Gutteridge, 1986. Oxygen free radicals and iron in relation to biology and medicine: Some problems and concepts. Arch. Biochem. Biophys., 246: 501-514.

Hazell, T., 1985. Minerals in foods: Dietary sources, chemical forms, interactions, bioavailability. World Rev. Nutr. Diet., 46: 1-123.

Inal, F., B. Coskun, N. Gulsen and V. Kurtoglu, 2001. The effects of withdrawal of vitamin and trace mineral supplements from layer diets on egg yield and trace mineral composition. Br. Poult. Sci., 42: 77-80.

Wei, J.P.J., C. Srinivasan, H. Han, J.S. Valentine and E.B. Gralla, 2001. Evidence for a novel role of copper-zinc superoxide dismutase in zinc metabolism. J. Biol. Chem., 276: 44798-44803.

Koenig, K.M., L.M. Rode, R.D. Cohen and W.T. Buckley, 1997. Effects of diet and chemical form of selenium on selenium metabolism in sheep. J. Anim. Sci., 75: 817-827.

Kratzer, F.H. and P. Vohra, 1986. Chelates in Nutrition. CRC Press, Boca Raton, FL., USA.

Leeson, S., 2003. A New Look at Trace Mineral Nutrition of Poultry, Can We Reduce Environmental Burden of Poultry Manure? In: Nutritional Biotechnology in the Feed and Food Industries: Proceedings of Alltech's Twentieth Annual Symposium, Lyons T.P. and K.A. Jacques (Eds.). Nottingham University Press, UK., ISBN: 9781904761273, pp: 125-129.

Lu, J., G.F. Jr. Combs and J.C. Fleet, 1990. Time-course studies of pancreatic exocrine damage induced by excess dietary zinc in the chick. J. Nutr., 120: 389-397.

Martinez, M.M., G.M. Hill, J.E. Link, N.E. Raney, R.J. Tempelman and C.W. Ernst, 2004. Pharmacological zinc and phytase supplementation enhance metallothionein mRNA abundance and protein concentration in newly weaned pigs. J. Nutr., 134: 538-544.

Nollet, L., G. Huyghebaert and P. Spring, 2008. Effect of different levels of dietary organic (bioplex) trace minerals on live performance of broiler chickens by growth phases. J. Applied Poult. Res., 17: 109-115.

NRC, 1994. Nutrient Requirements of Poultry. 9th Edn., National Academy Press, Washington, DC., USA.

Ohtsuka, A., H. Kojima, T. Ohtani and K. Hayashi, 1998. Vitamin E reduces glucocorticoid-induced oxidative stress in rat skeletal muscle. J. Nutr. Sci. Vitaminol., 44: 779-786.

Orzechowski, A., P. Ostaszewski, A. Brodnicka, J. Wilczak and M. Jank et al., 2000. Excess of glucocorticoids impairs whole-body antioxidant status in young rats. Relation to the effect of dexamethasone in soleus muscle and spleen. Hormone Metab. Res., 32: 174-180.

Petrovic, V., S. Marcincak, P. Popelka, L. Nollet and G. Kovac, 2009. Effect of dietary supplementation of trace elements on the lipid peroxidation in broiler meat assessed after a refrigerated and frozen storage. J. Anim. Feed Sci., 18: 499-507.

Puchala, R., T. Sahlu and J.J. Davis, 1999. Effects of zinc-methionine on performance of Angora goats. Small Rumin. Res., 33: 1-8.

Sahin, K., M.O. Smith, M. Onderci, N. Sahin, M.F. Garsu and O. Kucuk, 2005. Supplementation of zinc from organic or inorganic source improves performance and antioxidant status of heat-distressed quail. Poult. Sci., 84: 882-887.

Aksu, D.S., T. Aksu, B. Ozsoy and E. Baytok, 2010. The effects of replacing inorganic with a lower level of organically complexed minerals (Cu, Zn and Mn) in broiler diets on lipid peroxidation and antioxidant defense systems. Asian-Aust. J. Anim. Sci., 23: 1066-1072.

Aksu, D.S., T. Aksu and B. Ozsoy, 2010. The effects of lower supplementation levels of organically complexed minerals (zinc, copper and manganese) versus inorganic forms on hematological and biochemical parameters in broilers. Kafkas Universitesi Veteriner Fakultesi Dergisi, 16: 553-559.

Sies, H., 1991. Oxidative stress: From basic research to clinical application. Am. J. Med., 91: S31-S38.

Spears, J.W., 1996. Organic trace minerals in ruminant nutrition. Anim. Feed Sci. Technol., 58: 151-163.

Surai, P., 2002. Natural Antioxidant in Avian Nutrition and Reproduction. Nottingham University Press, Nottingham, UK.

Uchida, K., P. Mandebvu, C.S. Ballard, C.J. Sniffen and M.P. Carter, 2001. Effect of feeding a combination of zinc, manganese and copper amino acid complexes and cobalt glucoheptonate on performance of early lactation high producing dairy cows. Anim. Feed Sci. Technol., 93: 193-203.

Underwood, E.J. and N.F. Suttle, 1999. The Mineral Nutrition of Livestock. 3rd Edn., CABI Publishing, Wallingford, Oxon, UK.

Van der Klis, J.D. and A.D. Kemme, 2002. An Appraisal of Trace Elements: Inorganic and Organic. In: Poultry Feedstuffs, Supply, Composition and Nutritive Value, McNab, J.M. and K.N. Boorman (Eds.). CAB International, Wallingford, UK., pp: 99-108.

Zhang, H.J., Y.M. Guo, Y.D. Tian and J.M. Yuan, 2008. Dietary conjugated linoleic acid improves antioxidant capacity in broiler chicks. Br. Poult. Sci., 49: 213-221.

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Published

2012-09-15

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Section

Research Article

How to Cite

Saripinar-Aksu , D., Aksu, T., & S. Ercument Onel. (2012). Does Inclusion at Low Levels of Organically Complexed Minerals Versus Inorganic Forms Create a Weakness in Performance or Antioxidant Defense System in Broiler Diets?. International Journal of Poultry Science, 11(10), 666–672. https://doi.org/10.3923/ijps.2012.666.672