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Research Article

Effect of dietary supplementation of humic acid and lincomycin on growth performance, nutrient digestibility, blood biochemistry, and gut morphology in broilers under clostridium infection

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Pages 440-452 | Received 27 Mar 2022, Accepted 09 Jun 2022, Published online: 24 Jun 2022

References

  • Abd El-Hack ME. 2016. Impacts of dietary humic acid supplementation on growth performance, some blood metabolites and carcass traits of broiler chicks. Indian J Anim Sci. 86(9):1073–1078.
  • Abdel-Mageed M. 2012. Effect of dietary humic substances supplementation on performance and immunity of Japanese quail. Egyptian Poult Sci J. 32(3):645–660.
  • Abdo M, Zeinb A. 2004. Efficacy of acetic acid in improving the utilization of low protein-low energy broiler diets. Egypt Poult Sci. 24:123–141.
  • Abudabos AM, Ali MH, Nassan MA, Saleh AA. 2019. Ameliorative effect of Bacillus subtilis on growth performance and intestinal architecture in broiler infected with salmonella. Animals. 9(1):190–197. doi:10.3390/ani9040190.
  • Adil S, Banday MT, Bhat GA, Qureshi SD, Wani SA. 2011. Effect of supplemental organic acids on growth performance and gut microbial population of broiler chicken. Livest Res Rural Dev. 23(1):241–149.
  • Adil S, Banday T, Bhat GA, Mir MS, Rehman M. 2010. Effect of dietary supplementation of organic acids on performance, intestinal histomorphology, and serum biochemistry of broiler chicken. Vet Med Int. 2010:1–7.
  • Aksu T, Bozkurt SA. 2009. Effect of dietary essential oils and/or humic acids on broiler performance, microbial population of intestinal content and antibody titres in the summer season. Kafkas Univ Vet Fak Derg. 15:185–190.
  • Ali SA, Hasan KA, Bin Asif H, Abbasi A. 2014. Environmental enterococci: I. Prevalence of virulence, antibiotic resistance and species distribution in poultry and its related environment in Karachi, Pakistan. Lett Appl Microbiol. 58(5):423–432.
  • Aljumaah MR, Alkhulaifi MM, Abudabos AM, Alabdullatifb A, El-Mubarak AH, Al Suliman AR, Stanley D. 2020. Organic acid blend supplementation increases butyrate and acetate production in Salmonella enterica serovar typhimurium challenged broilers. PLoS One. 15(6):e0232831. doi:10.1371/journal.pone.0232831.
  • Andreopoulou M, Tsiouris V, Georgopoulou I. 2014. Effects of organic acids on the gut ecosystem and on the performance of broiler chickens. J Hell Vet Med Soc. 65(4):289–302.
  • AOAC International. 1996. International official methods of analysis, of the Association of Official Analytical Chemists. Arlington (VA): AOAC International.
  • Arif M, Rehman A, Abd El-Hack ME, Saeed M, Khan F, Akhtar M, Swelum AA, Saadeldin IM, Alowaimer AN. 2018. Growth, carcass traits, cecal microbial counts, and blood chemistry of meat-type quail fed diets supplemented with humic acid and black cumin seeds. Asian Australas J Anim Sci. 31(12):1930–1938.
  • Avci M, Denek N, Kaplan O. 2007. Effects of humic acid at different levels on growth performance, carcass yields and some biochemical parameters of quails. Humic Acid. 16:3.00–3.75.
  • Aviagen R. 2014. Ross 308 nutrition specifications. Newbridge: Aviagen.
  • Bahadori Z, Esmaielzadeh L, Karimi-Torshizi MA, Seidavi A, Olivares J, Rojas S, Salem AZ, Khusro A, López S. 2017. The effect of earthworm (Eisenia foetida) meal with vermi-humus on growth performance, hematology, immunity, intestinal microbiota, carcass characteristics, and meat quality of broiler chickens. Livest Sci. 202:74–81.
  • Bancroft J, Gamble M. 2007. Theory and practice of histological techniques. Edinburgh: Churchill-Livingston, Elsevier.
  • Brul S, Coote P, Oomes S, Mensonides F, Hellingwerf K, Klis F. 2002. Physiological actions of preservative agents: prospective of use of modern microbiological techniques in assessing microbial behaviour in food preservation. Int J Food Microbiol. 79(1–2):55–64.
  • Chan G, Guthrie A, Sivaramalingam T, Wilson J, Vancraeynest D, Moody R, Clark S. 2015. A framework for assessing the efficacy of antimicrobials in the control of necrotic enteritis in broiler chickens. J Appl Poult Res. 24(2):246–256.
  • Dar PS, Wani SA, Wani AH, Hussain I, Maqbool R, Ganaie MY, Kashoo ZA, Qureshi S. 2017. Isolation, identification and molecular characterization of clostridium perfringens from poultry in Kashmir valley, India. J Entomol Zool Stud. 5(5):409–414.
  • Dibner J, Buttin P. 2002. Use of organic acids as a model to study the impact of gut microflora on nutrition and metabolism. J Appl Poult Res. 11(4):453–463.
  • Dosoky WM, Al-Banna AA, Zahran SM, Farag SA, Abdelsalam NR, Khafaga AF. 2022. Zinc oxide nanoparticles induce dose-dependent toxicosis in broiler chickens reared in summer season. Environ Sci Pollut Res. doi:10.1007/s11356-022-19156-4
  • Dosoky, W.M., Fouda, M.M.G., Alwan, A.B., Abdelsalam NR, Taha AE, Ghareeb RY, El-Aassar MR, Khafaga AF. 2021. Dietary supplementation of silver-silica nanoparticles promotes histological, immunological, ultrastructural, and performance parameters of broiler chickens. Sci Rep. 11:4166. doi:10.1038/s41598-021-83753-5
  • Elkomy AA, Farag E, Elgharbawy EI, Elbadawy M. 2019. Comparative studies on the effects of lincomycin and bacitracin on hematobiochemical and immunological parameters in broiler chickens. Int J Pharmacol Toxicol. 7(1):1–5.
  • Elwinger KA, Schneitz C, Berndtson E, Fossum O, Teglöf B, Engstöm B. 1992. Factors affecting the incidence of necrotic enteritis, caecal carriage of clostridium perfringens and bird performance in broiler chicks. Acta Vet Scand. 33(4):369–378.
  • Forgetta V, Rempel H, Malouin F, Vaillancourt R Jr, Topp E, Dewar K, Diarra MS. 2012. Pathogenic and multidrug-resistant Escherichia fergusonii from broiler chicken. Poult Sci. 91(2):512–525.
  • Fouda MMG, Dosoky WM, Radwan NS, Abdelsalam NR, Taha AE, Khafaga AF. 2021. Oral administration of silver nanoparticles-adorned starch as a growth promotor in poultry: immunological and histopathological study. Int J Biol Macromol. 187:830–839. doi:10.1016/j.ijbiomac.2021.07.157.
  • Furtula V, Farrell EG, Diarrassouba F, Rempel H, Pritchard J, Diarra MS. 2010. Veterinary pharmaceuticals and antibiotic resistance of Escherichia coli isolates in poultry litter from commercial farms and controlled feeding trials. Poult Sci. 89(1):180–188.
  • Ghazalah A, Atta AM, Elkloub K, Moustafa ME, Shata RF. 2011. Effect of dietary supplementation of organic acids on performance, nutrients digestibility and health of broiler chicks. Int J Poult Sci. 10(3):176–184.
  • Greenwood D, Norrby SR, Whitley RJ. 2004. Antibiotic and chemotherapy: anti-infective agents and their use in therapy. Philadelphia (PA): Churchill Livingstone.
  • Humin T. 2004. Humin animal feed supplements and veterinary medicine and humic acid based products. Vol. 189. Dusseldrof (Germany): Humintech-Humintech GmbH.
  • Huyghebaert G, Ducatelle R, Van Immerseel F. 2011. An update on alternatives to antimicrobial growth promoters for broilers. Vet J. 187(2):182–188.
  • Islam KMS, Schuhmacher A, Gropp J. 2005. Humic acid substances in animal agriculture. Pak J Nutr. 4(3):126–134.
  • Ivarsson E, Wall H. 2017. Effects of toasting, inclusion levels and different enzyme supplementations of faba beans on growth performance of broiler chickens. J Appl Poult Res. 26(4):467–475.
  • Jaďuttová I, Marcinčáková D, Bartkovský M, Semjon B, Harčárová M, Nagyová A, Váczi P, Marcinčák S. 2019. The effect of dietary humic substances on the fattening performance, carcass yield, blood biochemistry parameters and bone mineral profile of broiler chickens. Acta Vet Brno. 88(3):307–313.
  • Kaldhusdal M, Schneitz C, Hofshagen M, Skjerve E. 2001. Reduced incidence of clostridium perfringens-associated lesions and improved performance in broiler chickens treated with normal intestinal bacteria from adult fowl. Avian Dis. 45:149–156.
  • Kaya CA, Tuncer SD. 2009. The effects of humates on fattening performance, carcass quality and some blood parameters of broilers. J Animal Vet Adv. 8(2):281–284.
  • Khan A, Nagra S. 2010. Performance of broiler chicks as influenced by feeding diets supplemented with organic acids. Indian J Poult Sci. 45(1):30–34.
  • Khan RU, Naz S, Raziq F, Qudratullah Q, Khan NA, Laudadio V, Tufarelli V, Ragni M. 2022. Prospects of organic acids as safe alternative to antibiotics in broilerchickens diet. Environ Sci Pollut Res. doi:10.1007/s11356-022-19241-8
  • Kocabağli N, Alp M, Acar N, Kahraman R. 2002. The effects of dietary humate supplementation on broiler growth and carcass yield. Poult Sci. 81(2):227–230.
  • Lala A, Okwelum N, Bello KO, Famakinde NA, Alamu MO. 2016. Comparative study between ISA brown and fulani ecotype chickens supplemented with humic acid. Slovak J Anim Sci. 49(2):68–75.
  • Li X-K, Wang JZ, Wang CQ, Zhang CH, Li X, Tang CH, Wei XL. 2016. Effect of dietary phosphorus levels on meat quality and lipid metabolism in broiler chickens. Food Chem. 205:289–296.
  • Mahgoub SA, Abd El-Hack ME, Saadeldin IM, Hussein MA, Swelum AA, Alagawany M. 2019. Impact of rosmarinus officinalis cold-pressed oil on health, growth performance, intestinal bacterial populations, and immunocompetence of Japanese quail. Poult Sci. 98(5):2139–2149.
  • Morar M, Bhullar K, Hughes DW, Junop M, Wright GD. 2009. Structure and mechanism of the lincosamide antibiotic adenylyltransferase LinB. Structure. 17(12):1649–1659.
  • Nagaraju R, Reddy BS, Gloridoss R, Suresh BN, Ramesh C. 2014. Effect of dietary supplementation of humic acids on performance of broilers. Indian J Anim Sci. 84(4):447–452.
  • Ozturk E, Coskun I, Ocak N, Erener G, Dervisoglu M, Turhan S. 2014. Performance, meat quality, meat mineral contents and caecal microbial population responses to humic substances administered in drinking water in broilers. Br Poult Sci. 55(5):668–674.
  • Ozturk E, Ocak N, Coskun I, Turhan S, Erener G. 2010. Effects of humic substances supplementation provided through drinking water on performance, carcass traits and meat quality of broilers. J Anim Physiol Anim Nutr. 94(1):78–85.
  • Ozturk E, Ocak N, Turan A, Erener G, Altop A, Cankaya S. 2012. Performance, carcass, gastrointestinal tract and meat quality traits, and selected blood parameters of broilers fed diets supplemented with humic substances. J Sci Food Agric. 92(1):59–65.
  • Paiva D, McElroy A. 2014. Necrotic enteritis: applications for the poultry industry. J Appl Poult Res. 23(3):557–566.
  • Pistová V, Arpášová H, Hrnčár C, Kačániová M, Haščík P. 2016. The effect of the humic acid and herbal additive supplement on production parameters of broiler chicken. Sci Pap Anim Sci Biotechnol/Lucr Stiint Zooteh Biotehnol. 49(2):166–169.
  • Porter RE Jr. 1998. Bacterial enteritides of poultry. Poult Sci. 77(8):1159–1165.
  • Quinn P, Carter ME, Markey BK, Carter GR. 1994. Clostridium species. Clin Vet Microbiol. 2:191–208.
  • Rath N, Huff W, Huff G. 2006. Effects of humic acid on broiler chickens. Poult Sci. 85(3):410–414.
  • Salah H, Mansour E, Abd El Hamid ES. 2015. Study on the effect of humic acid on growth performance, immunological, some blood parameters and control intestinal closterdium in broiler chickens. Zagazig Vet J. 43(1):102–109.
  • Saleem K, Rahman A, Pasha TN, Mahmud A, Hayat Z. 2020. Effects of dietary organic acids on performance, cecal microbiota, and gut morphology in broilers. Trop Anim Health Prod. 52(6):3589–3596.
  • Saleh AA. 2013. Effects of fish oil on the production performances, polyunsaturated fattyacids and cholesterol levels of yolk in hens. Emir J Food Agric. 25:605–612.
  • Saleh AA. 2016. Effect of low-protein in Iso-energetic diets on performance, carcass characteristics, digestibilities and plasma lipids of broiler chickens. Egyptain Poult Sci. 36(I):251–262.
  • Saleh AA, Ahmed EAM, Ebeid TA. 2019. The impact of phytoestrogen sources supplementation on reproductive performance, plasma profile, yolk fatty acids and antioxidative status in aged laying hens. Reprod Domest Anim. 54(6):846–854.
  • Saleh AA, Amber K, Mohammed AA. 2020. Dietary supplementation with avilamycin and lactobacillus acidophilus effects growth performance and the expression of growth-related genes in broilers. Anim Prod Sci. 60(14):1704–1710.
  • Saleh AA, Hayashi K. 2011. Aspergillus niger reduces skeletal muscle protein breakdown and stimulates growth in broilers. Res Opin Anim Vet Sci. 1(4):209–212.
  • Saleh AA, Shukry M, Farrag F, Soliman MM, Abdel-Moneim AM. 2021. Effect of feeding wet feed or wet feed fermented by Bacillus licheniformis on growth performance, histopathology and growth and lipid metabolism marker genes in broiler chicken. Animals. 11(1):83–89.
  • Shermer C, Maciorowski KG, Bailey CA, Byers FM, Ricke SC. 1998. Caecal metabolites and microbial populations in chickens consuming diets containing a mined humate compound. J Sci Food Agric. 77(4):479–486.
  • Son J, Ragland D, Adeola O. 2002. Quantification of digesta flow into the caeca. Br Poult Sci. 43(2):322–324.
  • Sun X, McElroy A, Webb KE Jr, Sefton AE, Novak C. 2005. Broiler performance and intestinal alterations when fed drug-free diets. Poult Sci. 84(8):1294–1302.
  • Taklimi S, Ghahri H, Isakan MA. 2012. Influence of different levels of humic acid and esterified glucomannan on growth performance and intestinal morphology of broiler chickens. Agric Sci. 3:663–668.
  • Tugnoli B, Giovagnoni G, Piva A, Grilli E. 2020. From acidifiers to intestinal health enhancers: how organic acids can improve growth efficiency of pigs. Animals. 10(1):134.
  • Wang S, Zeng XF, Wang QW, Zhu JL, Peng Q, Hou CL, Thacker P, Qiao SY. 2015. The antimicrobial peptide sublancin ameliorates necrotic enteritis induced by clostridium perfringens in broilers. J Anim Sci. 93(10):4750–4760.
  • Xia M, Hu C, Xu Z. 2004. Effects of copper-bearing montmorillonite on growth performance, digestive enzyme activities, and intestinal microflora and morphology of male broilers. Poult Sci. 83(11):1868–1875.
  • Young K, Foegeding PM. 1993. Foegeding, acetic, lactic and citric acids and pH inhibition of listeria monocytogenes scott A and the effect on intracellular pH. J Appl Bacteriol. 74(5):515–520.