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The pathogen inhibition effects of probiotics and prebiotics against Salmonella spp. in chicken


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Abd El-Hack M.E., Mahgoub S.A., Alagawany M., Ashour E.A. (2017). Improving productive performance and mitigating harmful emissions from laying hen excreta via feeding on graded levels of corn DDGS with or without Bacillus subtilis probiotic. J. Anim. Physiol. Anim. Nutr., 101: 904–913. Search in Google Scholar

Abd El-Hack M.E., Samak D.H., Noreldin A.E., El-Naggar K., Abdo M. (2018). Probiotics and plant-derived compounds as eco-friendly agents to inhibit microbial toxins in poultry feed: a comprehensive review. Environ. Sci. Poll. Res., 25: 31971–31986. Search in Google Scholar

Abd El-Hack M.E., Mahrose K.M., Attia F.A., Swelum A.A., Taha A.E., Shewita R.S., Alowaimer A.N. (2019). Laying performance, physical, and internal egg quality criteria of hens fed distillers dried grains with solubles and exogenous enzyme mixture. Animals, 9: 150. Search in Google Scholar

Abdel-Shafi S., Al-Mohammadi A.R., Negm S., Enan G. (2014). Antibacterial activity of Lactobacillus delbreukii subsp. bulgaricus isolated from Zabady. Life Sci. J., 2: 264–270. Search in Google Scholar

Alagawany M., Abd El-Hack M.E., Arif M., Ashour E.A. (2016). Individual and combined effects of crude protein, methionine, and probiotic levels on laying hen productive performance and nitrogen pollution in the manure. Environ. Sci. Poll. Res., 23: 22906–22913. Search in Google Scholar

Alagawany M., Abd El-Hack M.E., Farag M.R., Sachan S., Karthik K., Dhama K. (2018). The use of probiotics as eco-friendly alternatives for antibiotics in poultry nutrition. Environ. Sci. Poll. Res., 25: 10611–10618. Search in Google Scholar

Alvarez J., Sota M., Vivanco A.B., Perales I., Cisterna R., Rementeria A., Graizar J. (2004): Development of a multiplex PCR technique for detection and epidemiological typing of Salmonella in human clinical samples. J. Clin. Microbiol., 42: 1734–1738. Search in Google Scholar

Andreeva P., Dimitrov A. (2002). The probiotic Lactobacillus acidophilus, an alternative treatment of bacterial vaginosis. Akush Ginekol, Sofia, 41: 29–31. Search in Google Scholar

Biomerieux S.A. (1992). Analytical Profile Index. BioMerieux Sa au capital de 45068400f/imprime en France/RCS Lyon B673620399. Search in Google Scholar

Collins C.H., Lyne P., Grange J.M. (1995). Microbiological Methods, 7th Edition. The Williams and Wilkins, Baltimore, London. Search in Google Scholar

Crawford I.S. (1979). Probiotics in animal nutrition. Proc. 1979 Arkansas Nutrition Conference, USA, pp. 45–55. Search in Google Scholar

Enan G., Abdel-Shafi S., Ouda S., Negm S. (2013). Novel antibacterial activity of Lactococcus lactis subsp. lactis Z11 isolated from Zabady. Inter J. Biomed. Sci., 9: 174–180. Search in Google Scholar

Enan G., Abdel-Shafi M.F., Nigm S.C. (2014 a). Characterization of probiotic lactic acid bacteria to be used as starter and protective culture for dairy fermentation. Int. J. Probiot. Prebiot., 8: 157–163. Search in Google Scholar

Enan G., Al-Mohammadi A.R., El-Didamony G., Abdel-Haliem M.E.F. (2014 b). Antimicrobial activity of Enterococcus faecium NM2 isolated from urine: purification, characterization and bactericidal action of enterocin NM2. Asian J. Appl. Sci., 7: 721–734. Search in Google Scholar

Enan G., El-Didamony G., Mohamed E.H., Zakaria A. (2014 c). Novel antibacterial activity of Enterococcus faecium NM2 isolated from urine of healthy people. Asian J. Appl. Sci., 7: 66–78. Search in Google Scholar

Enan G., Negm S., Ismaiel A., Abdel-Shafi S., Mamdouh M. (2018). Classification, antimicrobial potential and industrial applications of LAB: A review article. Res. J. Appl. Sci., 13: 742–757. Search in Google Scholar

Gast R.K. (2003). Salmonella infection. In: Diseases of poultry, Saif Y.M., Barnes H.J., Fadly A.M., Swayed D.E. (eds). 11th ed. Iowa State Press, Iowa, USA. Search in Google Scholar

Hui A.K., Das R. (2001). Studies isolation, serotyping and antibiotic sensitivity of Salmonellae isolated from ducks. Ind. V. J., 78: 1058–1059. Search in Google Scholar

Jajere S.M. (2019). A review of Salmonella enterica with particular focus on the pathogenicity and virulence factors, host specificity and antimicrobial resistance including multidrug resistance. Vet. World., 12: 504–521. Search in Google Scholar

Jin L.Z., Ho Y.W., Abdullah N., Jalaludin S. (1997). Growth performance, intestinal microflora populations and serum cholesterol for broilers led diets containing Lactobacillus cultures. Poultry Sci., 77: 1259–1265. Search in Google Scholar

Kauffman F. (1972). Serological Salmonella species, Kauffman– White scheme. Minksgand, Copenhagen, Denmark. Keller S.E., Van Doren J.M., Grasso E.M., Kalik L.A. (2013). Growth and survival of Salmonella in ground black pepper (Piper nigrium). Food Microbiol., 34: 182–188. Search in Google Scholar

Khodary R., El-Sayed E. (1997). Treatment of duckling colibacillosis by enrofloxacin. Assuit Vet. J., 36: 262–270. Search in Google Scholar

Lamas A., Miranda J.M., Regal P., Vàzquez B., Franco C.M., Cepeda A. (2018). A comprehensive review of non-enterica subspecies of Salmonella enterica. Microbiol. Res., 206: 60–73. Search in Google Scholar

Lilly D.M., Stillwell R.H. (1965). Probiotics: Growth promoting factors produced by microorganisms. Poultry Sci., 147: 747–748. Search in Google Scholar

Mahrose K.M., Abd El-Hack M.E., Mahgoub S.A., Attia F.A. (2019). Influences of stocking density and dietary probiotic supplementation on growing Japanese quail performance. Ann. Acad. Bras. Ciên., 91. Search in Google Scholar

MurugKar H.V., Rahman H., Dutta P.K. (2003). Distribution of virulence genes in Salmonella serovars isolated from man and animals. Indian J. Med. Res., 117: 66–70. Search in Google Scholar

Oliveira S.D., Rodenbusch C.R., Ce M.C., Rocha S.L., Canal C.W. (2003). Evaluation of selective and non-selective enrichment PCR procedures for Salmonella detection. Lett. Appl. Microbiol., 36: 217–221. Search in Google Scholar

Othman S.I., Allam A.A., Sedeik M.E. (2019). The simultaneous administration of a probiotic or prebiotic with live Salmonella vaccine improves growth performance and reduces fecal shedding of the bacterium in Salmonella-challenged broilers. Animals, 10: 70. Search in Google Scholar

Piatek J., Krauss H., Ciechelska-Rybarczyk A., Bernatek M., Wojtyla-Buciora P., Sommermeyer H. (2020). In vitro growth inhibition of bacterial pathogen by probiotic and symbiotic product. Int. J. Environ. Res. Publ. Health, 17: 3332. Search in Google Scholar

Reda F.M., Abdel-Shafi S., Ismail M. (2019). Potential control of Salmonella spp. isolated from different environmental sources by combined mixture of henna, garlic and onion extracts. Biocat. Agric. Biotech, 22: 101350. Search in Google Scholar

Sambrook J., Fritsch E.F., Maniatis T. (1989). Molecular cloning. A laboratory manual. Vol. 1. Cold Spring Harbor Laboratory Press, New York. Search in Google Scholar

Schalm O.W., Jain N.C., Carroll E.T. (1975). Veterinary haematology, 3rd ed. Lea and Febiger, Philadelphia, USA. Sanders M.E., Merenstin D., Merrifield C.A., Hulkins R. (2017). Probiotics for human use. Nutr. Bul., Doi: 10111/nb4.12334. Search in Google Scholar

Soomro R.N., Abd El-Hack M.E., Shah S.S., Taha A.E., Alagawany M., Swelum A.A., Tufarelli V. (2019). Impact of restricting feed and probiotic supplementation on growth performance, mortality and carcass traits of meat-type quails. Anim. Sci. J., 90: 1388–1395. Search in Google Scholar

Tamhane A., Dunlop D. (2000). Statistics and data analysis: From elementary to intermediate. Pearson, 736 pp. Search in Google Scholar

Wilkinson P.C (1977). Techniques in clinical immunology. Thompson R.A. (ed.). Blackwell Scientific Publications, Osney Mead, Oxford, USA. Search in Google Scholar

Zhang L., Zhang R., Jia H., Li M. (2021). Supplementation of probiotics in water beneficial growth performance, carcass traits, immune function, and antioxidant capacity in broiler chickens. Life Sci., 16: 311–322. Search in Google Scholar

Zou M., Keelara S., Thakur S. (2012). Molecular characterization of Salmonella enterica serotype Enteritidis isolates from humans by antimicrobial resistance, virulence genes, and pulsed-field gel electrophoresis. Foodborne Pathogen. Dis., 9: 232–238. Search in Google Scholar

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Biologie, Biotechnologie, Zoologie, Medizin, Veterinärmedizin