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Papers

Response of modern broiler chickens to dietary calcium and phosphorus levels below recommendations

ORCID Icon, , ORCID Icon, ORCID Icon, & ORCID Icon
Pages 1244-1252 | Received 21 Apr 2020, Accepted 01 Sep 2020, Published online: 16 Oct 2020

References

  • Applegate TJ, Angel R, Classen HL. 2003. Effect of dietary calcium, 25-hydroxycholecalciferol, or bird strain on small intestinal phytase activity in broiler chickens. Poult Sci. 82:1140–1148.
  • Association of Official Analytical Chemistry. 2005. Official methods of analysis. 18th ed. Washington (DC): AOAC.
  • Aviagen, R. 2019.Ross 308 nutrition specifications. Scotland (UK), Aviagen.
  • Aviagen R. 2014. Ross 308 nutrition specifications. Scotland (UK): Aviagen.
  • Delezie E, Bierman K, Nollet L, Maertens L. 2015. Impacts of calcium and phosphorus concentration, their ratio, and phytase supplementation level on growth performance, foot pad lesions, and hock burn of broiler chickens. J App Poult Res. 24:115–126.
  • Diaz-Alonso JA, Gómez-Rosales S, Angeles MDL, Ávila-González E, López-Coello C. 2019. Effects of the level and relationship of calcium and available phosphorus on the growth and tibia mineralization of broiler starter chickens. J App Poult Res. 28:339–349.
  • Driver JP, Pesti GM, Bakalli RI, Edwards HM. Jr 2005. Effects of calcium and nonphytate phosphorus concentrations on phytase efficacy in broiler chicks. Poult Sci. 84:1406–1417.
  • El-Hack MEA, Alagawany M, Arif M, Emam M, Saeed M, Arain MA, Siyal FA, Patra A, Elnesi SS, Khan RU. 2018. The uses of microbial phytase as a feed additive in poultry nutrition – a review. Ann Anim Sci. 18:639–658.
  • Fallah H, Karimi A, Sadeghi GH, Behroozi-Khazaei N. 2019. The effects of calcium source and concentration on performance, bone mineralisation and serum traits in male broiler chickens from 1 to 21 days of age. Anim Prod Sci. 59:1090–1097.
  • Hamdi M, López-Vergé S, Manzanilla EG, Barroeta AC, Pérez JF. 2015. Effect of different levels of calcium and phosphorus and their interaction on the performance of young broilers. Poult Sci. 94:2144–2151.
  • Hurwitz S, Bar A. 1971. Calcium and phosphorus interrelationships in the intestine of the fowl. J Nutr. 101:677–686.
  • Kiani A, Taheri HR. 2020. Effect of constant 2: 1 calcium to non-phytate phosphorus ratio over a range of concentrations during starter-grower and finisher phases on performance of broiler chicken. Anim Feed Sci Tech. 264:114473.
  • Kim JH, Han GP, Shin JE, Kil DY. 2017. Effect of dietary calcium concentrations in phytase-containing diets on growth performance, bone mineralization, litter quality, and footpad dermatitis score in broiler chickens. Anim Feed Sci Tech. 229:13–18.
  • Mello HHDC, Gomes PC, Rostagno HS, Albino LFT, Rocha TCD, Almeida RLD, Calderano AA. 2012. Dietary requirements of available phosphorus in growing broiler chickens at a constant calcium: available phosphorus ratio. R Bras Zootec. 41:2323–2328.
  • Powell S, Bidner TD, Southern LL. 2011. Phytase supplementation improved growth performance and bone characteristics in broilers fed varying levels of dietary calcium. Poult. Sci. 90:604–608.
  • Rao SR, Raju MVLN, Reddy MR, Pavani P. 2006. Interaction between dietary calcium and non-phytate phosphorus levels on growth, bone mineralization and mineral excretion in commercial broilers. Anim Feed Sci Tech. 131:135–150.
  • Rousseau X, Valable AS, Létourneau-Montminy MP, Même N, Godet E, Magnin M, Nys Y, Duclos MJ, Narcy A. 2016. Adaptive response of broilers to dietary phosphorus and calcium restrictions. Poult Sci. 95:2849–2860.
  • Schoulten NA, Teixeira AS, Freitas RTFD, Bertechini AG, Conte AJ, Silva HO. 2003. Levels of calcium in broiler diets supplemented with phytase in the initial phase. R Bras Zootec. 32:1190–1197.
  • Sebastian S, Touchburn SP, Chavez ER, Lague PC. 1996. Efficacy of supplemental microbial phytase at different dietary calcium levels on growth performance and mineral utilization of broiler chickens. Poult Sci. 75:1516–1523.
  • Selle PH, Cowieson AJ, Ravindran V. 2009. Consequences of calcium interactions with phytate and phytase for poultry and pigs. Livest Prod Sci. 124:126–141.
  • Simpson CJ, Wise A. 1990. Binding of zinc and calcium to inositol phosphates (phytate) in vitro. Br J Nutr. 64:225–232.
  • Singh A, Walk CL, Ghosh TK, Bedford MR, Haldar S. 2013. Effect of a novel microbial phytase on production performance and tibia mineral concentration in broiler chickens given low-calcium diets. Br Poult Sci. 54:206–215.
  • Tamim NM, Angel R, Christman M. 2004. Influence of dietary calcium and phytase on phytae phosphorus hydrolysis in broiler chickens. Poult Sci. 83:1358–1367.
  • Valable AS, Narcy A, Duclos MJ, Pomar C, Page G, Nasir Z, Magnin M, Létourneau-Montminy MP. 2018. Effects of dietary calcium and phosphorus deficiency and subsequent recovery on broiler chicken growth performance and bone characteristics. Animal. 12:1555–1563.
  • Walk CL, Bedford MR, McElroy AP. 2012. Influence of limestone and phytase on broiler performance, gastrointestinal pH, and apparent ileal nutrient digestibility. Poult Sci. 91:1371–1378.
  • Wilkinson SJ, Bradbury EJ, Bedford MR, Cowieson AJ. 2014. Effect of dietary nonphytate phosphorus and calcium concentration on calcium appetite of broiler chicks. Poult Sci. 93:1695–1703.
  • Williams B, Waddington D, Solomon S, Farquharson C. 2000. Dietary effects on bone quality and turnover and Ca and P metabolism in chickens. Res Vet Sci. 69:81–87.
  • Zhang L, He T, Li M, Hu J, Piao X. 2019. Effects of dietary calcium and phosphorus levels and supplementation of 25-hydroxycholecalciferol on performance and bone properties of broiler starters. Arch Anim Nutr. 73:445–456.