Effects of Chromium Methionine Supplementation with Different Sources of Zinc on Growth Performance, Carcass Traits, Meat Quality, Serum Metabolites, Endocrine Parameters, and the Antioxidant Status in Growing-Finishing Pigs
暂无分享,去创建一个
[1] K. Sung,et al. Fatty acid profile of meat, diurnal changes in volatile fatty acids, rumen fluid parameters, and growth performance in Korean native (Hanwoo) steers fed high- and low-forage diets supplemented with chromium-methionine , 2016 .
[2] S. Kim,et al. Stress, Nutrition, and Intestinal Immune Responses in Pigs — A Review , 2016, Asian-Australasian journal of animal sciences.
[3] K. Sung,et al. Effects of Chromium Methionine Supplementation on Blood Metabolites and Fatty Acid Profile of Beef during Late Fattening Period in Holstein Steers , 2016, Asian-Australasian journal of animal sciences.
[4] L. Gong,et al. Effects of Graded Levels of Chromium Methionine on Performance, Carcass Traits, Meat Quality, Fatty Acid Profiles of Fat, Tissue Chromium Concentrations, and Antioxidant Status in Growing-Finishing Pigs , 2015, Biological Trace Element Research.
[5] A. Zali,et al. Effects of Cr Methionine on Glucose Metabolism, Plasma Metabolites, Meat Lipid Peroxidation, and Tissue Chromium in Mahabadi Goat Kids , 2015, Biological Trace Element Research.
[6] B. Dong,et al. Effects of Chromium Methionine Supplementation on Growth Performance, Serum Metabolites, Endocrine Parameters, Antioxidant Status, and Immune Traits in Growing Pigs , 2014, Biological Trace Element Research.
[7] C. Hughes,et al. Effects of Dietary Chromium Methionine on Growth Performance, Carcass Composition, Meat Colour and Expression of the Colour-related Gene Myoglobin of Growing-finishing Pigs , 2013, Asian-Australasian journal of animal sciences.
[8] Wen-jin Zhu,et al. Effects of Interaction Between Dietary Zinc and Vitamin A in Broilers on Performance, Immunity, ALP and CuZn-SOD Activity and Serum Insulin Concentration , 2013 .
[9] J. Sales,et al. Effects of dietary chromium supplementation on performance, carcass characteristics, and meat quality of growing-finishing swine: a meta-analysis. , 2011, Journal of animal science.
[10] Y. Wang,et al. Dietary Zinc Glycine Chelate on Growth Performance, Tissue Mineral Concentrations, and Serum Enzyme Activity in Weanling Piglets , 2010, Biological Trace Element Research.
[11] L. Southern,et al. The effect of chromium as chromium propionate on growth performance, carcass traits, meat quality, and the fatty acid profile of fat from pigs fed no supplemented dietary fat, choice white grease, or tallow. , 2009, Journal of animal science.
[12] B. Chae,et al. Effects of Different Sources of Dietary Chromium on Growth, Blood Profiles and Carcass Traits in Growing-finishing Pigs , 2009 .
[13] Jian Peng,et al. Duration of dietary linseed feeding affects the intramuscular fat, muscle mass and fatty acid composition in pig muscle , 2008 .
[14] S. Samanta,et al. Chromium picolinate can ameliorate the negative effects of heat stress and enhance performance, carcass and meat traits in broiler chickens by reducing the circulatory cortisol level , 2008 .
[15] R. Dass,et al. Effect of zinc supplementation from different sources on growth, nutrient digestibility, blood metabolic profile, and immune response of male guinea pigs , 2006, Biological Trace Element Research.
[16] H. Roth,et al. Zinc and insulin metabolism , 1981, Biological Trace Element Research.
[17] L. Southern,et al. Effects of chromium propionate on growth, carcass traits, and pork quality of growing-finishing pigs. , 2005, Journal of animal science.
[18] K. Sung,et al. Effects of Different Forms of Chromium Supplements on Serum Glucose, Insulin and Lipids in Rats , 2004 .
[19] Zi-rong Xu,et al. Effect of Chromium Nanoparticle on Growth Performance, Carcass Characteristics, Pork Quality and Tissue Chromium in Finishing Pigs , 2004 .
[20] E. Kegley,et al. Effect of zinc source (zinc oxide vs zinc proteinate) and level on performance, carcass characteristics, and immune response of growing and finishing steers. , 2002, Journal of animal science.
[21] L. Southern,et al. Effect of chromium picolinate and chromium propionate on glucose and insulin kinetics of growing barrows and on growth and carcass traits of growing-finishing barrows. , 2001, Journal of animal science.
[22] M. Shiao,et al. Effect of supplemental levels of chromium picolinate on the growth performance, serum traits, carcass characteristics and lipid metabolism of growing-finishing pigs , 2001 .
[23] E. Kegley,et al. Effect of dietary chromium-L-methionine on glucose metabolism of beef steers. , 2000, Journal of animal science.
[24] R. D. Miles,et al. Chemical characteristics and relative bioavailability of supplemental organic zinc sources for poultry and ruminants. , 2000, Journal of animal science.
[25] B. L. O’dell,et al. Role of zinc in plasma membrane function. , 2000, The Journal of nutrition.
[26] Z. Johnson,et al. Effect of dietary chromium-L-methionine on glucose metabolism of growing pigs. , 2000 .
[27] K. Honikel,et al. Reference methods for the assessment of physical characteristics of meat. , 1998, Meat science.
[28] G. Cromwell,et al. Efficacy of chromium picolinate and chromium chloride as potential carcass modifiers in swine. , 1997, Journal of animal science.
[29] J. Spears. Organic trace minerals in ruminant nutrition , 1996 .
[30] J. Schrama,et al. Effect of an additional iron injection and immunization moment on growth and humorale immune response of weaning pigs. , 1996 .
[31] G. Cromwell,et al. Effects of dietary chromium picolinate supplementation on growth, carcass characteristics, and accretion rates of carcass tissues in growing-finishing swine. , 1995, Journal of animal science.
[32] R. Anderson,et al. Dietary chromium picolinate additions improve gain:feed and carcass characteristics in growing-finishing pigs and increase litter size in reproducing sows. , 1995, Journal of animal science.
[33] David H. Baker,et al. Bioavailability of nutrients for animals: amino acids, minerals, and vitamins. , 1995 .
[34] D. Baker. 17 – Zinc bioavailability , 1995 .
[35] D. Baker,et al. Growth and plasma zinc responses of young pigs fed pharmacologic levels of zinc. , 1993, Journal of animal science.
[36] W. Yang,et al. Chelated chromium for stressed feeder calves , 1993 .
[37] D. Thompson,et al. Effect of chromium picolinate on growth and serum and carcass traits of growing-finishing pigs. , 1993, Journal of animal science.
[38] G. Evans,et al. Chromium picolinate increases membrane fluidity and rate of insulin internalization. , 1992, Journal of inorganic biochemistry.
[39] M. Cook,et al. Anemia induced by ingestion of excess zinc in chicks: importance of red blood cell turnover? , 1992 .
[40] X. Chang,et al. Supplemental chromium for stressed and growing feeder calves. , 1992, Journal of animal science.
[41] D. Baker,et al. Methodology for assessing zinc bioavailability: efficacy estimates for zinc-methionine, zinc sulfate, and zinc oxide. , 1992, Journal of animal science.
[42] T. Weekes. Hormonal Control of Glucose Metabolism , 1991 .
[43] S. Sasaki,et al. Control of Responsiveness of Tissues to Hormones , 1991 .
[44] A. Prasad. Discovery and importance of zinc in human nutrition. , 1984, Federation proceedings.
[45] A. Kitabchi. Hormonal control of glucose metabolism. , 1975, Otolaryngologic clinics of North America.
[46] Board on Agriculture,et al. Nutrient requirements of swine , 1964 .