Apparent ileal digestibility of calcium in limestone for broiler chickens
暂无分享,去创建一个
[1] Board on Agriculture,et al. Nutrient requirements of poultry , 2016 .
[2] A. Cowieson,et al. Measurement of true ileal calcium digestibility in meat and bone meal for broiler chickens using the direct method. , 2016, Poultry science.
[3] V. Ravindran,et al. Measurement of true ileal calcium digestibility in meat and bone meal for broiler chickens , 2015 .
[4] M. Proszkowiec-Weglarz,et al. Calcium and phosphorus metabolism in broilers: Effect of homeostatic mechanism on calcium and phosphorus digestibility1 , 2013 .
[5] R. Sulabo,et al. Digestibility of phosphorus and calcium in meat and bone meal fed to growing pigs. , 2013, Journal of animal science.
[6] A. Cowieson,et al. The concentration of strontium and other minerals in animal feed ingredients , 2013 .
[7] A. Cowieson,et al. Mineral composition of calcium sources used by the Australian poultry feed industry. , 2013 .
[8] G. Cromwell,et al. Concentration of dietary calcium supplied by calcium carbonate does not affect the apparent total tract digestibility of calcium, but decreases digestibility of phosphorus by growing pigs. , 2011, Journal of animal science.
[9] V. Ravindran,et al. Consequences of calcium interactions with phytate and phytase for poultry and pigs , 2009 .
[10] A. Leytem,et al. Interaction of calcium and phytate in broiler diets. 1. Effects on apparent prececal digestibility and retention of phosphorus. , 2008, Poultry science.
[11] J. P. Hayes,et al. Influence of particle size distribution on in vivo and in vitro limestone solubility , 2006 .
[12] V. Ravindran,et al. Apparent ileal digestibility of amino acids in dietary ingredients for broiler chickens , 2005 .
[13] R. Angel,et al. Phytate phosphorus hydrolysis as influenced by dietary calcium and micro-mineral source in broiler diets. , 2003, Journal of agricultural and food chemistry.
[14] T. Applegate,et al. Phytic Acid Chemistry: Influence on Phytin-Phosphorus Availability and Phytase Efficacy , 2002 .
[15] C. Centeno,et al. Effects of microbial phytase supplementation on mineral utilization and serum enzyme activities in broiler chicks fed different levels of phosphorus. , 2002, Poultry science.
[16] C. Coon,et al. The relationship of calcium intake, source, size, solubility in vitro and in vivo, and gizzard limestone retention in laying hens. , 1997, Poultry science.
[17] C. Coon,et al. Improved In Vitro Methods for Determining Limestone and Oyster Shell Solubility , 1997 .
[18] J. Wiseman,et al. Determination of titanium dioxide added as an inert marker in chicken digestibility studies , 1996 .
[19] E. Chavez,et al. The effects of supplemental microbial phytase on the performance and utilization of dietary calcium, phosphorus, copper, and zinc in broiler chickens fed corn-soybean diets. , 1996, Poultry science.
[20] T. K. Cheng,et al. Comparison of Various In Vitro Methods for the Determination of Limestone Solubility , 1990 .
[21] T. K. Cheng,et al. Effect of calcium source, particle size, limestone solubility in vitro, and calcium intake level on layer bone status and performance. , 1990, Poultry science.
[22] T. S. Nelson,et al. Effect of fiber and phytate source and of calcium and phosphorus level on phytate hydrolysis in the chick. , 1984, Poultry science.
[23] W. Horwitz. Official Methods of Analysis , 1980 .
[24] C. Weber,et al. Calcium Availability and Trace Mineral Composition of Feed Grade Calcium Supplements , 1976 .
[25] H. T. Peeler. Biological availability of nutrients in feeds: availability of major mineral ions. , 1972, Journal of animal science.
[26] P. English,et al. Effect of calcium source on calcium retention in the young chick. , 1965, British poultry science.