References
- AOAC (Association of Official Analytical Chemists). 2000. Official methods of analysis. 18th Rev. 2 ed. AOAC Int., Gaithersburg, MD, USA.
- Bai J, Rodriguez AM, Melendez JA, Cederbaum AI. 1999. Overexpression of catalase in cytosolic or mitochondrial compartment protects HepG2 cells against oxidative injury. Journal of Biological Chemistry 26:217-224.
- Carlson C, Hussain SM, Schrand AM, Braydich-Stolle LK, Hess KL, Jones RL, Schlager JJ. 2008. Unique cellular interaction of silver nanoparticles: Size-dependent generation of reactive oxygen species. The Journal of Physical Chemistry B 112:13608-13619.
- Case CL, Carlson MS. 2002. Effect of feeding organic andinorganic sources of additional zinc on growth performance and zinc balance in nursery pigs. Journal Animal Science 80:1917-1924. https://doi.org/10.2527/2002.8071917x
- Chang MN, Wei JY, Hao LY, Ma FT, Li HY, Zhao SG, Sun P. 2020. Effects of different types of zinc supplement on the growth, incidents of diarrhea, immune function, and rectal microbiota of newborn calves. Journal of Dairy Science 7:6100-6113.
- Cho JH, Chen YJ, Min BJ, Kim HJ, Kwon OS, Shon KS, Kim IH, Kim SJ, Asamer A. 2006. Effects of essential oils supplementation on growth performance, IgG concentration and fecal noxious gas concentration of weaned pigs. Asian-Australasian Journal Animal Science 19:80-85. https://doi.org/10.5713/ajas.2006.80
- Cho JH, Upadhaya SD, Kim IH. 2015. Effects of dietary supplementation of modified zinc oxide on growth performance, nutrient digestibility, blood profiles, fecal microbial shedding and fecal score in weanling pigs. Animal Science Journal 86:617-623. https://doi.org/10.1111/asj.12329
- Cho WS, Duffin R, Howie SEM, Scotton CJ, Wallace WAH, MacNee W, Bradley M, Megson IL, Donaldson K. 2011. Progressive severe lung injury by zinc oxide nanoparticles; the role of Zn2+ dissolution inside lysosomes. Particle and Fiber Toxicology 8:27-43. https://doi.org/10.1186/1743-8977-8-27
- Chrastinova L, Cobanov AK, Chrenkova M, Polacikova M, Formelova Z, Laukova A, Ondruska L, Simonova PM, Strompfova V, Mlynekova Z, et al. 2016. Effect of dietary zinc supplementation on nutrients digestibility and fermentation characteristics of caecal content in physiological experiment with young rabbits. Slovak Journal of Animal Science 49:23-31.
- Grela ER, Pastuszak J. 2004. Nutritional and prophylacticimportance of zinc in pigs production. Medycyna Weterynaryjna 60:1254-1258.
- Hong JW, Kim IH, Kwon OS, Min BJ, Lee WB, Shon KS. 2004. Influences of plant extract supplementation on performance and blood characteristics in weaned pigs. Asian-Australasian Journal of Animal Science 17:374-378. https://doi.org/10.5713/ajas.2004.374
- Hu CH, Gu LY, Luan ZS, Song J, Zhu K. 2012. Effects of montmorillonite-zinc oxide hybrid on performance, diarrhea, intestinal permeability and morphology of weaning pigs. Animal Feed Science and Technology 177:108-115. https://doi.org/10.1016/j.anifeedsci.2012.07.028
- Huang SX, McFall M, Cegielsk AC. 1999. Effect of dietary zinc supplementation on Escherichia coli septicemia in weaned pigs. Journal of Swine Health Production 7:109-111.
- Huang Y, Yoo JS, Kim HJ, Wang Y, Chen YJ, Cho JH, Kim IH. 2010. Effects of dietary supplementation with blended essential oils on growth performance, nutrient digestibility, blood profiles and fecal characteristics in weanling pigs. Asian-Australasian Journal of Animal Science 23:607-613. https://doi.org/10.5713/ajas.2010.80120
- Liu W, Devi S, Park J, Kim I. 2018. Effects of complex probiotic supplementation in growing pig diets with and without palm kernel expellers on growth performance, nutrient digestibility, blood parameters, fecal microbial shedding and noxious gas emission. Journal of Animal Science 89:552-560. https://doi.org/10.1111/asj.12965
- Mavromichalis I, Peter CM, Parr TM, Ganessunker D, Baker DH. 2000. Growth-promoting efficacy in young pigs of two sources of zinc oxide having either a high or a low bioavailability of zinc. Journal of Animal Science 78:2896-2902. https://doi.org/10.2527/2000.78112896x
- Morales J, Cordero G, Pineiro C, Durosoy S. 2012. Zinc oxide at low supplementation level improves productive performance and health status of piglets. Journal of Animal Science 90:436-438. https://doi.org/10.2527/jas.53833
- Nagalakshmi D, Parashu Ramulu S, Usha Rani M. 2012. Effect of graded levels of zinc supplementation on growth performance and oxidative defense mechanism in rats. Journal of Pharmaceutical 2:36-41.
- NRC (National Research Council). 2012. Nutrient requirements of swine, 11th rev. edition. National Academy Press, Washington, D.C., USA.
- Oropeza-Moe M, Grontvedt CA, Phythian CJ, Sorum H, Fauske AK, Framstad T. 2017. Zinc oxide enriched peat influence Escherichia coli infection related diarrhea, growth rates, serum and tissue zinc levels in Norwegian piglets around weaning: Five case herd trials. Porcine Health Management 3:14. https://doi.org/10.1186/s40813-017-0060-7
- Pei X, Xiao Z, Liu L, Wang G, Tao W, Wang M, Zou J, Leng D. 2019. Effects of dietary zinc oxide nanoparticles supplementation on growth performance, zinc status, intestinal morphology, microflora population, and immune response in weaned pigs. Journal of the Science of Food and Agriculture 99:1366-1374. https://doi.org/10.1002/jsfa.9312
- Sales J, Janssens GP. 2003. Methods to determine metabolizable energy and digestibility of feed ingredients in the domestic pigeon (Columba livia domestica). Poultry Science 82:1457-1461. https://doi.org/10.1093/ps/82.9.1457
- Shinde PL, Dass RS, Garg AK, Chaturvedi VK, Kumar R. 2006. Effect of zinc supplementation from different sources on growth, nutrient digestibility, blood metaboli profile, and immune response of male guinea pigs. Biological Trace Element Research 112:247-262.
- Sridhar K, Nagalakshmi D, Rao DS, Rao SVR. 2015. Effect of supplementation of graded levels of organic zinc on nutrient utilization and retention of minerals in broiler chicken. Indian Journal of Animal Sciences 32:80-85.
- Suhy DA, Simon KD, Linzer DIH, O'Halloran TV. 1999. Metallothionein is part of a zinc-scavenging mechanism for cell survival under conditions of extreme zinc deprivation. Journal of Biological Chemistry 274:9183-9192. https://doi.org/10.1074/jbc.274.14.9183
- Thamaraikannan M, Kim IH. 2021. Influence of enzyme mixture supplementation on growth performance, nutrient digestibility, and fecal score in growing pigs. Korean Journal of Agricultural Science 48:201-207. https://doi.org/10.7744/KJOAS.20210013
- Vallee BL, Falchuk KH. 1993. The biochemical basis of zinc physiology. Physiological Reviews 73:79-118. https://doi.org/10.1152/physrev.1993.73.1.79
- Wei X, Tsai T, Knapp J, Bottoms K, Deng F, Story R, Maxwell C, Zhao J. 2020. ZnO modulates swine gut microbiota and improves growth performance of nursery pigs when combined with peptide cocktail. Microorganisms 8:146. https://doi.org/10.3390/microorganisms8020146
- Yin J, Li X, Li D, Yue T, Fang Q, Ni J, Zhou X, Wu G. 2009. Dietary supplementation with zinc oxide stimulates ghrelin secretion from the stomach of young pigs. The Journal of Nutritional Biochemistry 20:783-790. https://doi.org/10.1016/j.jnutbio.2008.07.007