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The Effect of a Probiotic Preparation Containing Bacillus subtilis PB6 in the Diet of Chickens on Redox and Biochemical Parameters in Their Blood


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Abudabos M., Alyemni A.H., Dafalla Y.M., Khan R.U. (2017). Effect of organic acid blend and Bacillus subtilis alone or in combination on growth traits, blood biochemical and antioxidant status in broilers exposed to Salmonella typhimurium challenge during the starter phase. J. Appl. Anim. Res., 45: 538–542.10.1080/09712119.2016.1219665Search in Google Scholar

Aebi H. (1984). Catalase in vitro. Meth. Enzymol., 105: 121–126.10.1016/S0076-6879(84)05016-3Search in Google Scholar

Akerboom T.P., Sies H. (1981). Assay of glutathione, glutathione disulfide, and glutathione mixed disulfides in biological samples. Meth. Enzymol., 77: 373–382.10.1016/S0076-6879(81)77050-2Search in Google Scholar

Al-Sagan A.A., Abudabos A.M. (2017). Effect of a prebiotic, probiotic and symbiotic on performance of broilers under Clostridium perfringens challenge. Thai J. Vet. Med., 47: 257–264.Search in Google Scholar

Benzie I.F.F., Strain J.J. (1996). The ferric reducing ability of plasma (FRAP) as a measure of “antioxidant power”: the FRAP assay. Anal. Biochem., 239: 70–76.10.1006/abio.1996.0292Search in Google Scholar

Capcarova M., Weiss J., Hrncar C., Kolesarova A., Pal G. (2010). Effect of Lactobacillus fermentum and Enterococcus faecium strains on internal milieu, antioxidant status and body weight of broiler chickens. J. Anim. Physiol. Anim. Nutr., 94: 215–222.10.1111/j.1439-0396.2010.01010.xSearch in Google Scholar

Chand N., Faheem H., Khan R.U., Qureshi M.S., Alhidary I.A., Abudabos A.M. (2016). Anticoccidial effect of mananoligosacharide against experimentally induced coccidiosis in broiler. Environ Sci. Pollut. Res. Int., 23: 14414–14421.10.1007/s11356-016-6600-xSearch in Google Scholar

Douglas P.M., de Cassia R., dos Santos M., Bolin A.P., Guerra B.A., Hatanaka E., Otton R. (2011). Cytokines and oxidative stress status following a handballgame in elite male players. Oxid. Med. Cell. Longev., ID 804873:1–10.10.1155/2011/804873Search in Google Scholar

El-Faham A., Ali N.G., El-Maaty H.M. (2014). Effect of using some natural feed additives to substitute antibiotic growth promoters on performance and blood parameters of broilers. EPSA, 34: 735–750.Search in Google Scholar

Farina G., de Mello Kessler A., Ebling P.D., Marx F.R., César R., Machado A., Ribeiro L. (2017). Performance of broilers fed different dietary choline sources and levels. Cienc. Anim. Bras., Goiânia, 18, DOI: 10.1590/1089–6891v18e–37633.10.1590/10896891v18e37633Open DOISearch in Google Scholar

Fathi M., Al-Homidan I., Al-Dokhail A., Ebeid T., Abou-Emera O., Mohebbi-far A., Kashani H., Afsari M., Torki M. (2013). Effects of commercial prebiotics and probiotics on performance of laying hens, egg traits and some blood parameters. Ann. Rev. Res. Biol., 3: 921–934.Search in Google Scholar

Fathi M., Al-Homidan I., Al-Dokhail A., Ebeid T., Abou-Emera O., Alsagan A. (2018). Effects of dietary probiotic (Bacillus subtilis) supplementation on productive performance, immune response and egg quality characteristics in laying hens under high ambient temperature. Italian J. Anim. Sci., DOI:10.1080/1828051X.2018.1425104.10.1080/1828051X.2018.1425104Open DOISearch in Google Scholar

Fki I., Sahnoun Z., Sayadi S. (2007). Hypocholesterolemic effects of phenolic extracts and purified hydroxytyrosol recovered from olive mill wastewater in rats fed a cholesterol-rich diet. J. Agric. Food Chem., 7: 624–631.10.1021/jf0623586Search in Google Scholar

Gay C., Gębicki J.M. (2002). Perchloric acid enhances sensitivity and reproducibility of the ferricxylenol orange peroxide assay. Anal. Biochem., 304: 42–46.10.1006/abio.2001.5566Search in Google Scholar

Haque I., Ahmad N., Miah M.A. (2017). Comparative analysis of body weight and serum bio-chemistry in broilers supplemented with some selected probiotics and antibiotic growth promoters. J. Adv. Vet. Anim. Res., 4: 288–294.10.5455/javar.2017.d226Search in Google Scholar

Hooper L.V., Wong M.H., Thelin A. (2001). Molecular analysis of commensal host-microbial relationship in the intestine. Science, 291: 881–884.10.1126/science.291.5505.881Search in Google Scholar

Igwe I.R., Okonkwo C.J., Uzoukwu U.G., Onyenegecha C.O. (2015). The effect of choline chloride on the performance of broiler chickens. J. Adv. Med. Med. Res. Biol., 8: 1–8.10.9734/ARRB/2015/19372Search in Google Scholar

Jankowski J., Kubińska M., Juśkiewicz J., Czech A., Zduńczyk Z. (2016). The effect of dietary methionine levels on fattening performance and selected blood and tissue parameters of turkeys. Arch. Anim. Nutr., 70: 127–140.10.1080/1745039X.2015.1134399Search in Google Scholar

Jankowski J., Kubińska M., Juśkiewicz J., Czech A., Ognik K., Zduńczyk Z. (2017). Effect of different dietary methionine levels on the growth performance and tissue redox parameters of turkeys. Poultry Sci., 1: 1235–1243.10.3382/ps/pew383Search in Google Scholar

Khan R.U., Naz S. (2013). Application of probiotics in poultry production. Worlds Poult. Sci. J., 69: 621–632.10.1017/S0043933913000627Search in Google Scholar

Lee K.W., Lillehoj H.S., Jang S.I., Lee S.H., Bautista D.A., Siragusa G.R. (2013). Effect of Bacillus subtilis-based direct-fed microbials on immune status in broiler chickens raised on fresh or used litter. Asian. Australas. J. Anim. Sci., 26: 1592–1597.10.5713/ajas.2013.13178Search in Google Scholar

Mahmoud K.Z., Obeidat B.S., Al-Sadi M.Z., Hatahet S.R. (2017). Effect of Bacillus subtilis supplementation and dietary crude protein level on growth performance and intestinal morphological changes of meat type chicken. Livest. Sci., 195: 99–104.10.1016/j.livsci.2016.11.015Search in Google Scholar

Metha A., Arora N., Gaur S.M., Singh B. (2009). Choline supplementation reduces oxidative stress in mouse model of allergic airway disease. Eur. J. Clin. Invest., 39: 934–941.10.1111/j.1365-2362.2009.02190.xSearch in Google Scholar

Misra H.P., Fridovich I. (1972). The role of superoxide anion in the autooxidation of epinephrine and a simple assay for superoxide dismutase. J. Biol. Chem., 247: 3170–3175.10.1016/S0021-9258(19)45228-9Search in Google Scholar

Mohebbifar A., Kashani H., Afsari M., Torki M. (2013). Effects of commercial prebiotics and probiotics on performance of laying hens, egg traits and some blood parameters. Ann. Rev. Res. Biol., 3: 921–934.Search in Google Scholar

Naaz F., Abdin M., Javed S. (2014). Protective effect of esculin against prooxidant aflatoxin B1-induced nephrotoxicity in mice. Mycotoxin Res., 30: 25–32.10.1007/s12550-013-0185-8Search in Google Scholar

Nguyen A.T., Nguyen D.V., Tran M.T., Nguyen L.T., Nguyen A.H., Phan T.N. (2015). Isolation and characterization of Bacillus subtilis CH16 strain from chicken gastrointestinal tract for use as a feed supplement to promote weight gain in broiler. Lett Appl. Microbiol., 60: 580–588.10.1111/lam.12411Search in Google Scholar

Nutrient Requirementsfor Poultry(2005). Fourth edition revised and enlarged. Collective work (A. Rutkowski – co-editor), PAN IFiZZ, Jabłonna, Poland.Search in Google Scholar

Ognik K.Cholewińska E., Czech A., Kozłowski K., Wlazło Ł,Nowakowicz--Dębek B., Szlązak R., Tutaj K. (2016). Effect of silver nanoparticles on the immune, redox, and lipid status of chicken blood. Czech J. Anim. Sci., 10: 450–461.10.17221/80/2015-CJASSearch in Google Scholar

Ognik K., Krauze M. (2012) Dietary supplementation of mannanoligosaccharides to turkey hens on their growth performance and antioxidant status in the blood. S. Afr. J. Anim. Sci., 42: 379–388.10.4314/sajas.v42i4.6Search in Google Scholar

Ognik K., Krauze M. (2016). The potential for using enzymatic assays to assess the health of turkeys. Poutry Sci., 72: 535–550.10.1017/S0043933916000246Search in Google Scholar

Ognik K., Krauze M., Cholewińska E., Abramowicz K. (2017). The effect of a probiotic containing Enterococcus faecium DSM 7134 on redox and biochemical parameters in chicken blood. Ann. Anim. Sci., 17: 1075–1088.10.1515/aoas-2016-0097Search in Google Scholar

Oh J.K., Pajarillo E.A., Chae J.P., Kim I.H., Yang D.S., Kang D.K. (2017). Effects of Bacillus subtilis CSL2 on the composition and functional diversity of the faecal microbiota of broiler chickens challenged with Salmonella gallinarum. J. Anim. Sci. Biotechnol., 8: 1–9.10.1186/s40104-016-0130-8Search in Google Scholar

Omaye S.T., Tumbull J.D.H., Sauberlich E. (1979). Selected methods for determination of ascorbic acid in animal cells, tissues and fluids. Meth. Enzymol., 62: 3–11.10.1016/0076-6879(79)62181-XSearch in Google Scholar

Pajare M., Cuadrado A., Engedal N., Jirsova Z., Cahova M. (2018). The role of free radicals in autophagy regulation: implications for ageing. Oxid. Med. Cell. Longev. Article ID: 2450748, https://doi.org/10.1155/2018/2450748.10.1155/2018/2450748584636029682156Open DOISearch in Google Scholar

Park J.H., Kang S.N., Chu G.M., Jin S.K. (2014). Growth performance, blood cell profiles, and meat quality properties of broilers fed with Saposhnikovia divaricata, Lonicera japonica, and Chelidonium majus extracts. Livest. Sci., 165: 87–94.10.1016/j.livsci.2014.04.014Search in Google Scholar

Park J.H., Kim I.H. (2014). Supplemental effect of probiotic Bacillus subtilis B2A on productivity, organ weight, intestinal Salmonella microflora, and breast meat quality of growing broiler chicks. Poultry Sci., 93: 2054–2059.10.3382/ps.2013-03818Search in Google Scholar

Park J.H., Kim I.H. (2015). The effects of the supplementation of Bacillus subtilis RX7 and B2A strains on the performance, blood profiles, intestinal Salmonella concentration, noxious gas emission, organ weight and breast meat quality of broiler challenged with Salmonella typhimurium. J. Anim. Physiol. Anim. Nutr., 99: 326–334.10.1111/jpn.12248Search in Google Scholar

Pompeu M.A., Lara L.J.C., Baião N.C., Ecco R., Cançado S.V., Rocha J.S.R. (2011). Levels of supplementation of choline in diets for male broilers in initial phase. Arq. Bras. Med. Vet. Zootec., 63: 1446–1452.10.1590/S0102-09352011000600023Search in Google Scholar

Pourakbari M., Seidavia., Asadpour L., Martínez A. (2016). Probiotic level effects on growth performance, carcass traits, blood parameters, cecal microbiota, and immune response of broilers. An. Acad. Bras. Ciênc., 88: 1011–1021.10.1590/0001-3765201620150071Search in Google Scholar

Rajput I.R., Li Y.L., Xu X., Huang Y., Zhi W.C., Yu D.Y., Li W. (2013). Supplementary effects of Saccharomyces boulardii and Bacillus subtilis B10 on digestive enzyme activities, antioxidation capacity and blood homeostasis in broiler. IJABE, 15: 231–237.Search in Google Scholar

Salih M., Smith D.M., Price J.F., Dawson L.E. (1987). Modified extraction 2-thiobarbituric acid method for measuring lipid oxidation in poultry. Poultry Sci., 66: 1483–1488.10.3382/ps.0661483Search in Google Scholar

Salim H., Abd-Allah O., Fararh K. (2011). Effect of feeding probiotic on hematological, bio-chemical properties and immune response in broiler. BVMJ, 22: 35–43.Search in Google Scholar

Schenkel L.C., Singh R.K., Michel V., Zeisel S.H., da Costa C.A., Johnson A.R., Mudd H.S., Bakovic M. (2015). Mechanism of choline deficiency and membrane alteration in postural orthostatic tachycardia syndrome primary skin fibroblasts. FASEB J., 29: 1663–1675.10.1096/fj.14-258566Search in Google Scholar

Serviddio G., Giudetti A.M., Bellanti F., Priore P., Rollo T., Tamborra R., Siculella L., Vendemiale G., Altomare E., Gnoni G.V. (2011). Oxidation of hepatic carnitine palmitoyltransferase-I (CPT-I) impairs fatty acid beta-oxidation in rats fed a methionine-choline deficient diet. Plos One, 6: 24–38.10.1371/journal.pone.0024084Search in Google Scholar

Siadati S.A., Ebrahimnezhad Y., Salehi Jouzani G., Shayegh J. (2017). Evaluation of probiotic potential of some native Lactobacillus strains on the growth performance and serum biochemical parameters of Japanese quails (Coturnix coturnix japonica) during rearing period. Braz. J. Poult. Sci., 19: 399–408.10.1590/1806-9061-2016-0393Search in Google Scholar

Sobczak A., Kozłowski K. (2015). The effect of a probiotic preparation containing Bacillus subtilis ATCC PTA-6737 on egg production and physiological parameters of laying hens. Ann. Anim. Sci., 15: 711–723.10.1515/aoas-2015-0040Search in Google Scholar

Sohail M.U., Ijaz A., Yousaf M.S., Ashraf K., Zaneb H., Aleem M., Rehman H. (2010). Alleviation of cyclic heat stress in broilers by dietary supplementation of mannanoligosac-charide and Lactobacillus-based probiotic: Dynamics of cortisol, thyroid hormones, cholesterol, C-reactive protein and humoral immunity. Poultry Sci., 89: 1934–1938.10.3382/ps.2010-00751Search in Google Scholar

Swain B.K., Johri T.S. (2000). Effect of supplemental methionine, choline and their combinations on the performance and immune response of broilers. Brit. Poultry Sci., 41: 83–88.10.1080/00071660086457Search in Google Scholar

Tang S.G.H., Sieo C.C., Ramasamy K., Saad W.Z., Wong H.K., Ho Y.W. (2017). Performance, biochemical and haematological responses, and relative organ weights of laying hens fed diets supplemented with prebiotic, probiotic and symbiotic. Vet. Res., 13: 248–260.10.1186/s12917-017-1160-ySearch in Google Scholar

Verago J.L., Grassi-Kassisse D.M., Spadari-Bratfisch R.C. (2001). Metabolic markers following beta-adrenoceptor agonist infusion in footshock-stressed rats. Braz. J. Med. Biol. Res., 34: 1197–1207.10.1590/S0100-879X2001000900014Search in Google Scholar

Waldroup P.W., Motl M.A., Yan F., Fritts C.A. (2006). Effects of betaine and choline on response to methionine supplementation to broiler diets formulated to industry standards. J. Appl. Poultry Res., 15: 58–71.10.1093/japr/15.1.58Search in Google Scholar

Wang Y., Wu Y., Xu H., Mei X., Yu D., Wang Y., Li L. (2017). Antioxidant properties of probiotic bacteria. Nutrients, 9: 521.10.3390/nu9050521Search in Google Scholar

Yener Z., Celik I., Ilhan F., Bal R. (2009). Effects of Urtica dioica L. seed on lipid peroxidation, antioxidants and liver pathology in aflatoxin-induced tissue injury in rats. Food Chem. Toxicol., 47: 418–424.10.1016/j.fct.2008.11.031Search in Google Scholar

Yeoman C.J., Chia N., Jeraldo P., Sipos M., Goldenfeld N.D., White B.A. (2012). The microbiome of the chicken gastrointestinal tract. Anim. Health Res. Rev., 13: 89–99.10.1017/S1466252312000138Search in Google Scholar

Zarei A., Lavvaf A., Motlagh M.M. (2018). Effects of probiotic and whey powder supplementation on growth performance, microflora population, and ileum morphology in broilers. J. Appl. Anim. Res., 46: 840–844.10.1080/09712119.2017.1410482Search in Google Scholar

Zeisel S.H., da Costa K.A. (2009). Choline: an essential nutrient for public health. Nutr. Rev., 67: 615–623.10.1111/j.1753-4887.2009.00246.xSearch in Google Scholar

Zhang Z.F., Kim I.H. (2014). Effects of multistrain probiotics on growth performance, apparent ileal nutrient digestibility, blood characteristics, cecal microbial shedding, and excreta odor contents in broilers. Poultry Sci., 93: 364–370.10.3382/ps.2013-03314Search in Google Scholar

Zheng A., Luo J., Meng K., Li J., Bryden W., Chang W., Zhang S., Wang L., Liu G., Yao B. (2016). Probiotic (Enterococcus faecium) induced responses of the hepatic proteome improves metabolic efficiency of broiler chickens (Gallus gallus). BMC Genomics, DOI: 10.1186/S12864–016–2371–5.10.1186/S1286401623715Open DOISearch in Google Scholar

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