Browse > Article
http://dx.doi.org/10.14405/kjvr.20220023

Anti-parasitic activity of zinc oxide nanoparticles against Eimeria tenella in broilers experimentally infected  

Sadiya Aziz Anah (Department of Biology, Faculty of Education, University of AL-Qadisiyah)
Saad Aziz Anah (General Directorate of Education at Al-Qadisiyah, Ministry of Education AL-Diwaniyah)
Khadeeja Abees Hmood Al-Khalidy (Department of Environment, College of Science, University of Al-Qadisiyah)
Publication Information
Korean Journal of Veterinary Research / v.62, no.4, 2022 , pp. 30.1-30.6 More about this Journal
Abstract
In the study, zinc oxide nanoparticles (ZNOPs) at concentrations of 20, 40, and 60 mg/kg were tested for their antimicrobial action against the oocysts of Eimeria tenella. The oocysts of E. tenella were isolated from the feces of broilers received at the veterinary hospital in Diwaniyah Province and initially diagnosed by compound optical microscopy. The oocysts were confirmed molecularly by polymerase chain reaction targeting the ITS1 gene with a molecular weight of 409 bp. The results in the first week showed that ZNOP concentrations of 20 and 40 mg/kg possess various activities against E. tenella, while 60 mg/kg was the most effective in reducing excreted oocysts compared to the positive control and amprolium group, along with the appearance of mild symptoms and a mortality rate of 0.8%. In the second week of infection, excreted oocysts and mortality rates generally decreased in all treated groups. A comparison of all groups showed that the 60 mg/kg ZNOP-treated group had a significantly lower number of excreted oocysts, and all birds in this group recovered during the second week of infection. These findings revealed the prospect of using ZNOPs against E. tenella in challenging situations of the appearance of resistance to anticoccidial agents.
Keywords
ZnO nanoparticles; broilers; Eimeria tenella; Iraq;
Citations & Related Records
Times Cited By KSCI : 1  (Citation Analysis)
연도 인용수 순위
1 Crane RA, Scott TB. Nanoscale zero-valent iron: future prospects for an emerging water treatment technology. J Hazard Mater 2012;211-212:112-125.   DOI
2 Bai W, Zhang CC, Jiang WJ, Zhang ZY, Zhao YL. Progress in studies on environmental behaviors and toxicological effects of nanomaterials. Asian J Ecotoxicol 2009;4:174-182.
3 Korbekandi H, Iravani S. Chapter 1. Silver Nanoparticles. In: Hashim AA, ed. The Delivery of Nanoparticles. IntechOpen, 2012.
4 Medina C, Santos-Martinez MJ, Radomski A, Corrigan OI, Radomski MW. Nanoparticles: pharmacological and toxicological significance. Br J Pharmacol 2007;150:552-558.   DOI
5 Yang Z, Guo Z, Qiu C, Li Y, Feng X, Liu Y, Zhang Y, Pang P, Wang P, Zhou Q, Han L, Dai W. Preliminary analysis showed country-specific gut resistome based on 1,267 feces samples. Gene 2016;581:178-182.   DOI
6 El Sabry MI, McMillin KW, Sabliov CM. Nanotechnology considerations for poultry and livestock production systems: a review. Ann Anim Sci 2018;18:319-334.   DOI
7 Hartemann P, Hoet P, Proykova A, Fernandes T, Baun A, De Jong W, Filser J, Hensten A, Kneuer C, Maillard JY, Norppa H, Scheringer M, Wijnhoven S. Nanosilver: safety, health and environmental effects and role in antimicrobial resistance. Mater Today 2015;18:122-123.
8 Swain PS, Rao SB, Rajendran D, Dominic G, Selvaraju S. Nano zinc, an alternative to conventional zinc as animal feed supplement: a review. Anim Nutr 2016;2:134-141.   DOI
9 Al-Zahrani HA, El-Waseif AA, El-Ghwas DE. Biosynthesis and evaluation of TiO2 and ZnO nanoparticles from in vitro stimulation of Lactobacillus johnsonii. J Innov Pharm Biol Sci 2018;5:16-20.
10 Blake DP, Tomley FM. Securing poultry production from the ever-present Eimeria challenge. Trends Parasitol 2014;30:12- 19.   DOI
11 Chapman HD, Jeffers TK. Vaccination of chickens against coccidiosis ameliorates drug resistance in commercial poultry production. Int J Parasitol Drugs Drug Resist 2014;4:214-217.   DOI
12 Marugan-Hernandez V, Long E, Blake D, Crouch C, Tomley F. Eimeria tenella protein trafficking: differential regulation of secretion versus surface tethering during the life cycle. Sci Rep 2017;7:4557.
13 Hausermann W. Poultry coccidiosis. Novartis animal health. Proc Nat Act Sci 1999;92:7550-7554.
14 Hamidinejat H, Shapouri MS, Mayahi M, Borujeni MP. Characterization of Eimeria species in commercial broilers by PCR based on ITS1 regions of rDNA. Iran J Parasitol 2010;5:48-54.
15 Shirzad MR, Seifi S, Gheisari HR, Hachesoo BA, Habibi H, Bujmehrani H. Prevalence and risk factors for subclinical coccidiosis in broiler chicken farms in Mazandaran province, Iran. Trop Anim Health Prod 2011;43:1601-1604.   DOI
16 Jorgensen WK, Stewart NP, Jeston PJ, Molloy JB, Blight GW, Dalgliesh RJ. Isolation and pathogenicity of Australian strains of Eimeria praecox and Eimeria mitis. Aust Vet J 2008;75: 592-595.   DOI
17 AL-Attar MA. Factors affecting the pathogenesis of E. necatrix infections in chicken [PhD dissertation]. Guelph, ON: University of Guelph; 1981.
18 Kidd M, Ferket P, Qureshi M. Zinc metabolism with special reference to its role in immunity. Worlds Poult Sci J 1996;52: 309-324.   DOI
19 Ahmadi F, Ebrahimnezhad Y, Maheri Sis N, Ghalehkandi JG. The effects of zinc oxide nanoparticles on performance, digestive organs and serum lipid concentrations in broiler chickens during starter period. 2013;3:23-29.
20 Prasad AS, Bao B, Beck FW, Sarkar FH. Zinc enhances the expression of interleukin-2 and interleukin-2 receptors in HUT78 cells by way of NF-kappaB activation. J Lab Clin Med 2002;140:272-289.   DOI
21 Abedini M, Shariatmadari F, Torshizi MA, Ahmadi H. Effects of Zinc oxide nanoparticles on performance, egg quality, tissue zinc content, bone parameters, and antioxidative status in laying hens. Biol Trace Elem Res 2018;184:259-267.   DOI
22 Hafez A, Nassef E, Fahmy M, Elsabagh M, Bakr A, Hegazi E. Impact of dietary nano-zinc oxide on immune response and antioxidant defense of broiler chickens. Environ Sci Pollut Res Int 2020;27:19108-19114.   DOI
23 Iacob OC, Duma V. Clinical, paraclinical and morphopathological aspects in cecal eimeriosis of broilers. Revista Scientia Parasitologica 2009;10:43-50.
24 Wang H, Zhang J, Yu H. Elemental selenium at nano size possesses lower toxicity without compromising the fundamental effect on selenoenzymes: comparison with selenomethionine in mice. Free Radic Biol Med 2007;42:1524-1533.   DOI
25 Al-Gawad AA, Mahdy OA, El-Massry AA, Al-Aziz MSA. Studies on coccidia of Egyptian balady breed chickens. Life Sci J 2012;9:568-576.
26 Morris GM, Woods WG, Richards DG, Gasser RB. Investigating a persistent coccidiosis problem on a commercial broiler-breeder farm utilising PCR-coupled capillary electrophoresis. Parasitol Res 2007;101:583-589.   DOI
27 Gyorke A, Pop L, Cozma V. Prevalence and distribution of Eimeria species in broiler chicken farms of different capacities. Parasite 2013;20:50.   DOI
28 Dkhil MA, Al-Quraishy S, Wahab R. Anticoccidial and antioxidant activities of zinc oxide nanoparticles on Eimeria papillata-induced infection in the jejunum. Int J Nanomedicine 2015;10:1961-1968.   DOI
29 Mohd Yusof H, Mohamad R, Zaidan UH, Abdul Rahman NA. Microbial synthesis of zinc oxide nanoparticles and their potential application as an antimicrobial agent and a feed supplement in animal industry: a review. J Anim Sci Biotechnol 2019;10:57.   DOI
30 Abd El Megid AD, Khaled M, Emam MA, Adel A. Biochemical role of zinc oxide and propolis nanoparticles in protection rabbits against coccidiosis. Benha Vet Med J 2018;34:314-328.   DOI
31 Bauomy AA. Zinc oxide nanoparticles and L-carnitine effects on neuro-schistosomiasis mansoni induced in mice. Environ Sci Pollut Res Int 2020;27:18699-18707.   DOI
32 Bafundo KW, Baker DH, Fitzgerald PR. The iron-zinc interrelationship in the chick as influenced by Eimeria acervulina infection. J Nutr 1984;114:1306-1312.   DOI