تاثیر نانو ذرات اکسید روی بر عملکرد رشد، متابولیت‌های خونی و برخی آنزیم‌های سرمی در گوساله‌های شیرخوار هلشتاین

نوع مقاله : علمی پژوهشی - تغذیه نشخوارکنندگان

نویسندگان

1 گروه علوم دامی، دانشکده کشاورزی و منابع طبیعی، دانشگاه محقـق اردبیلی، اردبیل، ایران.

2 گروه علوم دامی، دانشکده کشاورزی و منابع طبیعی، دانشگاه محقق اردبیلی، اردبیل، ایران

3 گروه علوم دامی،دانشکده کشاورزی و منابع طبیعی، دانشگاه محقق اردبیلی، اردبیل، ایران.

4 گروه علوم دامی، دانشکده کشاورزی و منابع طبیعی مغان، دانشگاه محقق اردبیلی

چکیده

هدف از این پژوهش، بررسی اثر نانواکسید روی بر عملکرد رشد و فراسنجه‌های خونی در گوساله‌های شیرخوار هلشتاین بود. بدین منظور تعداد 24 راس گوساله هلشتاین با میانگین سنی 1 الی 10 روز و میانگین وزنی 2±38 در قالب طرح کاملا تصادفی انتخاب و به مدت 70 روز اجرا گردید. در جیره گوساله‌ها سه سطح از مکمل نانواکسید روی شامل صفر (شاهد)، 30 و 60 میلی گرم در کیلوگرم ماده خشک به بخش کنسانتره‌ای افزوده شد. گوساله‌ها هر دو هفته یک بار وزن کشی شدند و جهت اندازه گیری فراسنجه‌های خونی در روزهای 30 و 70 آزمایش، از آن‌ها خونگیری به عمل آمد. نتایج نشان داد که استفاده از سطوح مختلف نانواکسید روی تاثیر معنی‌داری بر مصرف خوراک نداشت. نتایج مکمل کردن نانواکسید روی بر جیره آزمایشی گوساله‌های شیرخوار اثر معنی‌داری بر وزن نهایی و افزایش وزن روزانه گوساله‌های شیرخوار داشت (05/0>P). در حالی که ضریب تبدیل خوراک تحت تاثیر تیمارهای آزمایشی قرار نگرفت. تفاوت معنی‌داری بین غلظت فراسنجه‌های خونی (گلوکز، کلسترول، تری گلیسیرید، آلبومین، اوره، آلکالین فسفاتاز، آسپارتات آمینو ترانسفراز، آلانین آمینو ترانسفراز، گلوبولین و فعالیت آنتی اکسیدانی کل، گلوتاتیون پراکسیداز، کاتالاز مشاهده نشد (05/0>P). نتایج این مطالعه نشان داد که مکمل کردن نانواکسید روی در جیره آزمایشی وزن بدن، افزایش وزن روزانه و غلظت سوپراکسید دسموتاز را در گوساله‌های شیرخوار هلشتاین بهبود بخشید.

کلیدواژه‌ها


عنوان مقاله [English]

The Effects of Zinc Oxide Nano Particles on Growth Performance and Blood Metabolites and some Serum Enzymes in Holstein Suckling Calves

نویسندگان [English]

  • Jamal Seifdavati 1
  • Matlab Jahan Ara 2
  • Sayad Seyfzadeh 2
  • Hossein Abdi Benamar 2
  • Farzad Mirzaei Aghjehgheshlagh 3
  • Reza Seyedsharifi 1
  • Vahid Vahedi 4
1 Animal Science Department of University of Mohaghegh Ardebili, Ardebil, Iran.
2 Department of Animal Science , Faculty of Agriculture and Natural Resources, University of Mohaghegh Ardabili, Ardabili, Iran.
3 Department of Animal Science, Mohaghegh Ardabili University, Ardabil, Iran
4 Department of Animal Science, Moghan College of Agriculture and Natural Resources, University of Mohaghegh Ardabili, Ardabil, Iran
چکیده [English]

Introduction The second element trace mineral in the body, which is stored in the body as well as regulator feed intake. In many of the vital functions of the body, including growth, building hormones, vitamins and enzymes plays a role and where involved is necessary in animal diets. Because the animal's body cannot take much more of this element in the body thereby providing a daily basis through the diet can be effective. Also, the most common combination of zinc element is its oxide form (ZnO), which is preferred for two reasons, one that has the highest concentration of zinc, and the other is that it is absorbed high in the body and is also better tolerated by the target tissues. Recently, Nano-zinc oxide has attracted much attention in animal nutrition studies. Different nanoparticles are new forms of materials with high biologic properties and low toxicity, which seem to have high potential for passing through physiological barriers and access to specific target tissues. The use of antioxidants, such as Nano-zinc oxide, can be important in reducing the production of free radicals. The aim of this study was to evaluate the effect of nano-zinc oxide on performance, growth and blood parameters in Holstein suckling calves.
Materials and Methods The Zinc Oxide nanoparticles were purchased from Iranian agent of US Research Nanomaterial, Inc. Port Co., Ltd., USA. The sizes of elemental ZnO particles ranged from 10 to 30 nm, stock: US3590, in the form of white powder and Purity: 99%, APS: 10-30 nm, Color: white, Crystal Phase: single crystal, Morphology: nearly spherical, SSA: 20-60 m2/g, True Density: 5.606 g/cm3. In this study 24 Holstein calves with a mean age of 1 - 10 and an average weight of 38±2 were selected from pars Agro-Industrial and Animal Husbandry dairy herd to determine the effects of supplementation nano-zinc oxide on performance, blood parameters and some serum enzymes of them. Three levels 0 (control), 30 and 60 of the Nano-zinc oxide were added to the calves starter concentrate as mg / kg of dry matter. Calves were allotted to the experimental groups randomly and based on their age and weight to have similar age and weight average among the group. The calves were housed in individual pens and fed with whole milk approximately at 10% of birth weight and they had free access to the feed starter and water. Milk was offered in two equal meals daily at 08:00 and 19:00. Blood samples were collected from the jugular vein on the 30 and 70 day of the trial (4 h after the morning feeding) by heparinised venoject tubes, centrifuged at 3500 rpm for 15 min at 4 °C, and collected plasma was immediately transported to the laboratory and frozen at −20 °C until analysis. Blood concentrations of glucose, cholesterol, triglyceride, albumin, urea, alkaline phosphatase, aspartate aminotransferase, alanine aminotransferase, globulin and total antioxidant activity, glutathione peroxidase, catalase were measured using the commercial kits. Data were analyzed in a completely randomized design using the MIXED procedure of SAS. For variables measured over time (average daily gain, dry matter intake, and feed conversion ratio), time was added to the model as a repeated factor.
Results and Discussion The results showed that the use of different levels Nano-zinc oxide had no significant effect on feed intake and feed conversion ratio, whereas on the experimental diet supplement Nano-zinc oxide suckling calves did show significant effect on final weight, weight gain. The significant difference was not observed between the concentration of blood parameters (glucose, cholesterol, triglyceride, albumin, urea, alkaline phosphatase, aspartate aminotransferase, alanine aminotransferase, globulin and total antioxidant activity, glutathione peroxidase, catalase except superoxide dismutase). The results showed that supplementing with 60 ppm Nano-zinc oxide significant was increased in the concentration or activity of blood superoxide dismutase compared to the control group. Dietary nano-zinc oxide supplementation on Holstein calves compared to the control group increased concentrations of superoxide dismutase. Zinc-dependent antioxidant enzymes such as superoxide dismutase reduces the activity of this enzyme in the membrane of cells, including red blood cells, leading to increased damage of oxidative stress.
Conclusion The results of this study showed that supplementation of Nano-zinc oxide in the diet improved the body weight, daily gain and superoxide dismutase concentration in Holstein suckling calf. In general it can be concluded that the use of zinc to form nanoparticles had no effect on performance and blood parameters. Thus, nano-zinc oxide supplementation in suckling calf starter diet can effectively help to cope with the stress.

کلیدواژه‌ها [English]

  • Blood parameters
  • Holstein calves
  • Nano-zinc oxide
1- Akhtar, M. J., M. Ahamed, S. Kumar, M. M. Khan, J. Ahmad, and S. A. Alrokayan. 2012. Zinc oxide nanoparticles selectively induce apoptosis in human cancer cells through reactive oxygen species. International Journal of Nanomedicine, 7:845-57.
2- Anderwartha, K. A., and I. W. Caple. 1980. Effects of changes in nutritional copper on erythrocyte superoxide dismutase activity in sheep. Research in Veterinary Science, 28(1):101-104.
3- AOAC International. 2012. Official Methods of Analysis. 19th ed. AOAC International, Gaithersburg, MD.
4- Arabi, F., M. Imandar., M. Negahdary, M. Imandar, M. T. Noughabi, and H. Akbari-dastjerdi. 2012. Investigation anti-bacterial effect of zinc oxide nanoparticles upon life of Listeria monocytogenes. Annals of Biological Research, 3(7): 3679-3685.
5- Case, C. L., and M. S. Carlson. 2002. Effect of feeding organic and inorganic sources of additional zinc on growth performance and zinc balance in nursery pigs. Journal of Animal Science, 80(7):1917-1924.
6- Castillo, C. J., L. Hernandez, V. Valverde, J. Pereira, M. Sotillo, A. Lopez, and J. L. Benedito. 2006. Plasma malondialdehyde (MDA) and total antioxidant status (TAS) during lactation in dairy cows. Research in Veterinary Science, 80(2):133-139.
7- Cohen, G., D. Dembiec, and J. Marcus. 1970. Measurement of catalase activity in tissue extract. Analytical Biochemistry, 34(1): 30-8.
8- Dey, A., and A. K. Garg. 2004. Effect of supplementation of zinc methionine complex on growth rate and feed efficiency in weaned rats. Indian veterinary medical journal, 28(1): 117–120.
9- Dirksen, G., H. D. Gründer, and M. Stöber .2006. Internal Medicine and Surgery of Cattle (in German), 5. Aufl., Parey Verlag, Stuttgart, 1325 p.
10- Dresler, S., J. Illek, and L. Zeman. 2016. Effects of organic zinc supplementation in weaned calves. Acta Veterinaria Brunensis, 85(1): 49-54.
11- Droke, E. A., G. P. Gengelbach, and J. W. Spears. 1998. Influence of level and source (inorganic vs organic) of zinc supplementation on immune function in growing lambs. Asian Australian Journal of Animal Science, 11(2): 139–144.
12- Engle, T. E., C. F. Nockels, C. V. Kimberling, D. L. Weaber, and A. B. Johnson. 1997. Zinc repletion with organic or inorganic forms of zinc and protein turnover in marginally zinc deficient calves. Journal of Animal Science, 75(11): 3074-3081.
13- Feng, M., Z. S. Wang., A. G. Zhou., and D. W. Ai. 2009. The effects of different sizes of nanometer zinc oxide on the proliferation and cell integrity of mice duodenum-epithelial cells in primary culture. Pakistan Journal of Nutrition, 8(8):1164-1170.
14- Garg A. K., M. Vishal, and R. S. Dass. 2008. Effect of organic zinc supplementation on growth, nutrient utilization and mineral profile in lambs. Animal Feed Science and Technology, 144(1-2): 82-96.
15- Genther, O. N., and S. L. Hansen. 2014. The effect of trace mineral source and concentration on ruminal digestion and mineral solubility. Journal of Dairy Science, 98(1):566-573.
16- Gerloff, K., C. Albrecht, A. W. Boots, L. Forester, and R. P. F. Schins. 2009. Cytotoxicity and oxidative DNA damage by nanoparticles in human intestinal Caco-2 cells. Nanotoxicology, 3(4):355-364.
17- Glass, G. A., and D. Gershon. 1984. Decreased enzymic protection and increased sensitivity to oxidative damage in erythrocytes as a function of cell and donor aging. Biochemical Journal, 218(2):513-537.
18- Gropper, S. S., J. Smith., and J. Groff. 2008. Advanced nutrition and human metabolism. 15th ed. Medical. P: 600.
19- Hernandez-Sierra, J. F., F. Ruiz, D. C. Cruz Pena, F. Martinez-Gutierrez, A. E. Martinez, A. De Jesus Pozos Guillen, H. Tapia-Perez, and G. Martinez Castanon. 2008. The antimicrobial sensitivity of Streptococcus mutans to nanoparticles of silver, zinc oxide, and gold. Nano-medicine Nanotechnology Biology and Medicine, 4(3): 237–240.
20- Hongfu, Y. B. Z. 2008. Effects of Nano-ZnO on growth performance and diarrhea rate in weaning piglets. China Feed, 1:008.
21- Kessler, J., I. Morel, P. A. Dufey, A. Gutzwiller, A. Stern, and H. Geyer. 2003. Effects of organic zinc sources on performance, zinc status and carcass, meat and claw quality in fattening bulls. Livestock Production Science, 81(2-3): 161-171.
22- Khan, S. A. 1978. Interaction of copper and zinc and its influence on the metabolism of major nutrients in growing calves. PhD Thesis. Aligarh Muslim University, Aligarh.
23- Kincaid, R. L., B. P. Chew, and J. D. Cronrath. 1997. Zinc oxide and amino acids as sources of dietary zinc for calves: effects on uptake and immunity. Journal of Dairy Science, 80(7):1381-1388.
24- Mallaki, M., M.A. Norouzian, and A.K. Khadem. 2015. Effect of organic zinc supplementation on growth, nutrient utilization, and plasma zinc status in lambs. Turkish Journal of Veterinary and Animal Sciences, 39(1): 75-80.
25- Mandal G. P., R. S. Dass, D. R. Isore, A. K. Garg, and G. C. Ram. 2007. Effect of zinc supplementation from two sources on growth, nutrient utilization and immune response in male crossbred cattle (Bosindicus × Bostaurus) bulls. Animal Feed Science and Technology, 138(1): 1-12.
26- McDonald, R. S. 2005. The Role of Zinc in Growth and Cell Proliferation. Journal of Nutritional Science, University of Missouri. Columbia. MO. 65211.
27- Miller, J. K., and R. G. Cragle. 1965. Gastrointestinal sites of absorption and endogenous secretion of zinc in dairy cattle. Journal of Dairy Science, 48(3):370-173.
28- Mishra, A., R. K. Swain, S. K. Mishra, N. Panda, and K. Sethy. 2014. Growth performance and serum biochemical parameters as affected by nano zinc supplementation in layer chicks. Indian Journal of Animal Nutrition, 31(4):384-388.
29- Nagalakshmi, D., K. Dhanalakshmi, and D. Himabindu. 2009. Effect of dose and source of supplemental zinc on immune response and oxidative enzymes in lambs. Veterinary Research Communications, 33(7):631–644.
30- Pal, D. T., N. S. Gowda, C. S. Prasad, R. Amarnath, U. Bharadwaj, G. SureshBabu, and K. T. Sampath. 2010. Effect of copper and zinc-methionine supplementation on bioavailability, mineral status and tissue concentrations of copper and zinc in ewes. Journal of Trace Elements in Medicine and Biology, 24(2): 89-94.
31- Parashuramulu, S., D. Nagalakshmi, D. Srinivasa Rao, M. Kishan Kumar, and P. S. Swain. 2015. Effect of zinc supplementation on anti-oxidant status and immune response in buffalo calves. Animal Feed Science and Technology, 15(2):179-188.
32- Parul, C., and P. Keith. 1998. Interactions between zinc and vitamin A. American journal of clinical nutrition, 68(2 Suppl): 435s-441s.
33- Prasad, A. S. 1991. Discovery of human zinc deficiency and studies in an experimental human model. The American Journal of Clinical Nutrition, 53(2):403-412.
34- Puchala, R., T. Sahlu, and J. J. Davis. 1999. Effects of zinc-methionine on performance of Angora goats. Small Ruminant Research, 33(1):1-8.
35- Roughead, Z. K., and M. E. Kunkel. 1991. Effect of diet on bone matrix constituents. The Journal of the American College of Nutrition, 10(3): 242-248.
36- Sahoo, A., R. K. Swai, S. K. Mishra, and B. Jena. 2014. Serum biochemical indices of broiler birds fed on inorganic, organic and nano zinc supplemented diets. International Journal of Current Research, 5(11):2078-2081.
37- Sawai, J., E. Kawada, F. Kanou, H. Igarashi, A. Hashimoto, T. Kokugan, and M. Shimizu. 1996. Detection of active oxygen generated from ceramic powders having antibacterial activity. Journal of Chemical Engineering of Japan, 29(4): 627-633.
38- Souza, A. R., L. P. Martins, L. C. De Faria, M. E. P. Martins, R. N. Fereira, A. M. L. Da Silva, E. S. Gil, and E. C. Da Conceiçao. 2007. Studies on the bioavailability of zinc in rats supplemented with two different zinc-methionine compounds. Latin American Journal of Pharmacy 26(6): 825-830
39- Spears, J. W., and E. B. Kegley. 1991. Effect of zinc and manganese methionine on performance of beef cows and calves. Journal of Animal Science, 61 (1 Suppl):59 (Abstr.).
40- Spears, J. W., and E. B. Kegley. 2002. Effect of zinc source (zinc oxide vs. zinc proteinate) and level on performance, carcass characteristics, and immune response of growing and finishing steers. Journal of Animal Science. 80(10):2747-2752.
41- Suchy, P., P. J. Suchy, and E. Strakov. 1998. Micro-elements in nutrition of farm animals (in Czech). KrmivaVýziva 3(4):18-9.
42- Suttle, N. 2010. Mineral nutrition of livestock, 4th Edition. Pp: 426-458, Midlothian EH26 OPZ, UK. Animal Science, 73: 1227-1238.
43- Uchida, K. M., 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. Animal Feed Science Technology, 93(3-4):193-203.
44- Van Soest, P. J, J. b. Robertson, and B. A. Lewis. 1991. Methods of dietary fiber, neutral detergent fiber, and non-starch polysaccharides in relation to animal nutrition. Journal of Dairy Science, 74(10): 3583- 3597.
45- Wang, B., W. Y. Feng, T. C. Wang, G. Jia., M. Wang, and J. W. Shi. 2006. Acute toxicity of nano and micro-scale zinc powder in healthy adult mice. Toxicology Letters, 161(2):115-123.
46- Ward, J. D., and J. W. Spears. 1997. Long-term effects of consumption of low-copper Diets with or without supplemental molybdenum on copper status, performance, and Carcass characteristics of cattle. Journal of Animal Science, 75(11):3057-3065.
47- Wenbin, J., J. Zhihai, Z. Wei, W. Runlian, Z. Shiwei, and Z. Xiaoping. 2008. Effects of dietary zinc on performance, nutrient digestibility and plasma zinc status in Cashmere goats. Small Ruminant Research, 80(1-3): 68-72.
48- Wright, C. L., and J. W. Spears. 2004. Effect of zinc source and dietary level on zinc metabolism in Holstein calves. Journal of Dairy Science, 87(4): 1085–1091. 21.
49- Yang, Z. P., and L. P. Sun. 2006. Effects of nanometre ZnO on growth performance of early weaned piglets. Journal of Agricultural Science, 3:024.
50- Zaboli, K., H. Aliarabi, A. A. Bahari, and R. Abbasalipourkabir. 2013. Role of dietary nano-zinc oxide on growth performance and blood levels of mineral: a study on in Iranian Angora (Markhoz) goat kids. Journal of Pharmaceutical and Health Sciences, 2(1):19-26.
51- Zalewski, P. D., Q. T Ai, G. Dion, J. Lata, M. Chiara, and E. R. Richard. 2005. Zinc metabolism in airway epithelium and airway in flammation: basic mechanisms and clinical targets: A review. Pharmacology and Therapeutics, 105(2):127-149.
52- Zhao, C. Y., S. X. Tan, X. Y. Xiao, X. S. Qiu, J. Q. Pan, and Z. X. Tang. 2014. Effects of dietary zinc oxide nanoparticles on growth performance and antioxidative status in broilers. Biological Trace Element Research, 160(3):361-368.
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