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Evaluating the Competitiveness of Medicinal Plants With Antibiotics to Control Salmonella Enterica Serovar Typhimurium in Broiler Chickens | ||
Iranian Journal of Veterinary Medicine | ||
مقاله 7، دوره 17، شماره 2، تیر 2023، صفحه 155-166 اصل مقاله (1.27 M) | ||
نوع مقاله: Original Articles | ||
شناسه دیجیتال (DOI): 10.32598/ijvm.17.2.1005233 | ||
نویسندگان | ||
Ahmad Gholipour-Shoshod1؛ Shaban Rahimi* 1؛ Taghi Zahraei Salehi2؛ Mohammad Amir Karimi Torshizi1؛ Alireza Behnamifar1؛ Tahereh Ebrahimi1؛ Mahmoud Valizadeh Lakeh1؛ Faeze Ganjpoor1 | ||
1Department of Poultry Science, Faculty of Agriculture, Tarbiat Modares University, Tehran, Iran. | ||
2Department of Microbiology and Immunology, Faculty of Veterinary Medicine, University of Tehran, Tehran, Iran | ||
چکیده | ||
Background: Salmonellosis is one of the important diseases in the poultry industry, which also causes public health concerns. Objectives: We studied the effects of enrofloxacin and herbal medicines on growth performance, blood parameters, meat oxidation, and cecal microbial population in broilers challenged with Salmonella enterica serovar Typhimurium (ST). Methods: A total of 240 one-day-old (male) Ross 308 broiler chicks were randomly divided into 6 groups: negative and positive control, enrofloxacin, and three herbal medicines (A, B, and C) containing different proportions of cinnamon, thyme, licorice, and marjoram extracts with compounds of organic acids. The dosage of enrofloxacin and A, B, and C herbal medicines were 1, 1, 1, and 2 mL/L in drinking water, respectively, prescribed from days 16 to 21. On day 10, all groups except negative control were challenged with 1 mL suspension containing 1×107 CFU/mL ST. Performance traits were measured in intervals of 1-10, 11-24, 25-42, and 1-42 days. Blood parameters, meat oxidation, and cecal microbial population were measured on day 21. Results: Among the challenged groups, medicine C and enrofloxacin showed the lowest levels of Salmonella infection (P<0.05). Medicine B had a better effect on performance traits (P<0.05). Medicine A had the lowest amount of malondialdehyde in meat. Medicines A and B caused the lowest cholesterol and triglyceride concentration in serum (P<0.05). Conclusion: The above-mentioned herbal medicines can be used as beneficial additives in poultry nutrition to improve growth performance, reduce the Salmonella population in the gastrointestinal tract, and cholesterol, triglycerides, and meat oxidation. | ||
کلیدواژهها | ||
Cinnamon؛ Licorice؛ Marjoram؛ Salmonella Typhimurium؛ Thyme | ||
عنوان مقاله [English] | ||
ارزیابی رقابت پذیری گیاهان دارویی با آنتیبیوتیک برای کنترل سالمونلا انتریکا سرووار تیفیموریوم در جوجههای گوشتی | ||
نویسندگان [English] | ||
احمد قلی پور شوشود1؛ شعبان رحیمی1؛ تقی زهرایی صالحی2؛ محمد امیر کریمی ترشیزی1؛ علیرضا بهنامی فر1؛ طاهره ابراهیمی1؛ محمود ولی زاده1؛ فائزه گنج پور1 | ||
1گروه پرورش و مدیریت طیور، دانشکده کشاورزی، دانشگاه تربیت مدرس، تهران، ایران. | ||
2گروه میکروبیولوژی و ایمنولوژی، دانشکده دامپزشکی، دانشگاه تهران، تهران، ایران. | ||
چکیده [English] | ||
زمینه مطالعه: سالمونلوز یکی از مهمترین بیماریهای طیور و مورد توجه از نظر بهداشت عمومی است. هدف: مطالعه حاضر اثر انروفلوکساسین و داروهای گیاهی را بر عملکرد رشد، فراسنجههای خونی، اکسیداسیون گوشت و جمعیت میکروبی روده کور در جوجههای گوشتی چالششده با ST بررسی کرد. روش کار: تعداد 240 قطعه جوجه گوشتی یکروزه (نر) سویه راس 308 به طور تصادفی به 6 گروه تقسیم شدند: کنترل منفی، کنترل مثبت، انروفلوکساسین و سه داروی گیاهی (A، B و C) حاوی نسبتهای مختلف عصاره دارچین، آویشن، شیرینبیان و مرزنجوش با ترکیبات اسیدهای آلی. دوز انروفلوکساسین، داروهای A، B و C به ترتیب 1، 1، 1 و 2 میلیلیتر در لیتر آب آشامیدنی بود که در روزهای 16 تا 21 تجویز شد. در روز 10، تمام گروهها بهجز کنترل منفی با 1 میلیلیتر سوسپانسیون حاوی CFU/mL 107×1، ST چالش شدند. صفات عملکردی در فواصل 1-10، 11-24، 25-42 و 1-42 روزگی اندازهگیری شد. فراسنجههای خونی، اکسیداسیون گوشت و جمعیت میکروبی روده کور در روز 21 اندازهگیری شد. نتایج: در میان گروههای مورد چالش، داروی C و انروفلوکساسین کمترین میزان سالمونلا را نشان دادند (0/05>P). داروی B اثر بهتری بر صفات عملکردی داشت (0/05>P). داروی A کمترین مقدار مالوندیآلدئید در گوشت و داروی A و B کمترین غلظت کلسترول و تریگلیسیرید را در سرم داشتند (0/05>P). نتیجهگیری نهایی: داروهای گیاهی فوقالذکر میتوانند به عنوان افزودنیهای مفید در طیور برای بهبود عملکرد، کاهش باکتریهای مضر دستگاه گوارش، کلسترول، تریگلیسیرید و اکسیداسیون گوشت استفاده شوند. | ||
کلیدواژهها [English] | ||
آویشن, دارچین, سالمونلا تیفیموریوم, شیرینبیان, مرزنجوش | ||
اصل مقاله | ||
1. Introduction
2. Materials and Methods
Statistical analysis
3. Results
4. Discussion
5. Conclusion
Ethical Considerations
Compliance with ethical guidelines
Funding
Authors' contributions
Conflict of interest
Acknowledgments
References Ahmed, G., & Abdel-Ghany, A. (2015). The effect of origanum majorana supplementation on growth performance, blood parameters and meat quality in BUT9 commercial Turkeys. Journal of Animal, Poultry & Fish Production, 3(1), 17-29. [DOI:10.21608/japfp.2015.7428] Abdel-Moneim, M. A., Hammady, G. A., Hassanin, M. S., & El-Chaghaby, G. A. (2015). The effect of using marjoram extract as natural growth promoter on the performance and intestinal bacteria of broiler chickens. Journal of Animal and Poultry Production, 6(11), 647-656. [DOI:10.21608/jappmu.2015.52946] Abdel-Wahab, A. A. (2019). Effect of adding marjoram powder to broiler chicks diet on performance, blood and antioxidant enzyme activity. Egyptian Journal of Nutrition and Feeds, 22(3), 611-625. [DOI:10.21608/ejnf.2019.79495] Abudabos, A. M., Alyemni, A. H., Dafalla, Y. M., & Khan, R. U. (2016). The effect of phytogenic feed additives to substitute in-feed antibiotics on growth traits and blood biochemical parameters in broiler chicks challenged with salmonella typhimurium. Environmental Science and Pollution Research, 23(23), 24151–24157. [DOI:10.1007/s11356-016-7665-2] [PMID] Abudabos, A. M., Alyemni, A. H., Dafalla, Y. M., & Khan, R. U. (2018). The effect of phytogenics on growth traits, blood biochemical and intestinal histology in broiler chickens exposed to clostridium perfringens challenge. Journal of Applied Animal Research, 46(1), 691-695. [DOI:10.1080/09712119.2017.138325] Adhikari, P., Yadav, S., Cosby, D. E., Cox, N. A., Jendza, J. A., & Kim, W. K. (2020). Research note: Effect of organic acid mixture on growth performance and Salmonella Typhimurium colonization in broiler chickens. Poultry Science, 99(5), 2645–2649. [DOI:10.1016/j.psj.2019.12.037] [PMID] [PMCID] Afshari, A., Baratpour, A., Khanzade, S., & Jamshidi, A. (2018). Salmonella enteritidis and salmonella typhimorium identification in poultry carcasses. Iranian Journal of Microbiology, 10(1), 45–50. [PMID] [PMCID] Akbarian, A., Michiels, J., Golian, A., Buyse, J., Wang, Y., & De Smet, S. (2014). Gene expression of heat shock protein 70 and antioxidant enzymes, oxidative status, and meat oxidative stability of cyclically heat-challenged finishing broilers fed origanum compactum and Curcuma xanthorrhiza essential oils. Poultry Science, 93(8), 1930–1941. [DOI:10.3382/ps.2014-03896] [PMID] Alagawany, M., Elnesr, S. S., Farag, M. R., Abd El-Hack, M. E., Khafaga, A. F., & Taha, A. E., et al. (2019). Use of licorice (glycyrrhiza glabra) herb as a feed additive in poultry: Current knowledge and prospects. Animals: An Open Access Journal from MDPI, 9(8), 536. [DOI:10.3390/ani9080536] [PMID] [PMCID] Akintayo-Balogun Omolere, M., & Alagbe, J.O. (2020). Probiotics and medicinal plants in poultry nutrition: A review. International Journal on Integrated Education, 3(10), 214-221. [DOI:10.31149/ijie.v3i10.730] Al-Kassie, G. A. M. (2009). Influence of two plant extracts derived from thyme and cinnamon on broiler performance. Pakistan Veterinary Journal, 29(4), 169-173. [Link] Amad, A. A., Wendler, K. R., & Zentek, J. (2013). Effects of a phytogenic feed additive on growth performance, selected blood criteria and jejunal morphology in broiler chickens. Emirates Journal of Food and Agriculture, 25(7), 549-55. [DOI:10.9755/ejfa.v25i7.12364] Amerah, A. M., Mathis, G., & Hofacre, C. L. (2012). Effect of xylanase and a blend of essential oils on performance and salmonella colonization of broiler chickens challenged with salmonella heidelberg. Poultry Science, 91(4), 943–947. [DOI:10.3382/ps.2011-01922] [PMID] Basmacioğlu-Malayoğlu, H., Ozdemir, P., & Bağriyanik, H. A. (2016). Influence of an organic acid blend and essential oil blend, individually or in combination, on growth performance, carcass parameters, apparent digestibility, intestinal microflora and intestinal morphology of broilers. British Poultry Science, 57(2), 227–234. [DOI:10.1080/00071668.2016.1141171] [PMID] Bjerrum, L., Engberg, R. M., & Pedersen, K. (2003). Infection models for salmonella typhimurium DT110 in day-old and 14-day-old broiler chickens kept in isolators. Avian diseases, 47(4), 1474–1480. [DOI:10.1637/7051] [PMID] Bölükbaşı, Ş. C., Erhan, M. K., & Kaynar, Ö. The effect of feeding thyme, sage and rosemary oil on laying hen performance, cholesterol and some proteins ratio of egg yolk and Escherichia Coli count in feces. Archives fur Geflugelkunde, 72(5), 231-237. [Link] Bozkurt, M., Küçükyılmaz, K., Çatlı, A. U., & Çınar, M. (2009). Effect of dietary mannan oligosaccharide with or without oregano essential oil and hop extract supplementation on the performance and slaughter characteristics of male broilers. South African Journal of Animal Science, 39(3), 223-232. [DOI:10.4314/sajas.v39i3.49157] Broom, L. J. (2015). Organic acids for improving intestinal health of poultry. World's Poultry Science Journal, 71(4), 630-642. [DOI:10.1017/S0043933915002391] Calo, J.R., Crandall, P.G., O'Bryan, C.A. & Ricke, S.C. (2015). Essential oils as antimicrobials in food systems-a review. Food Control, 54, 111-119. [DOI:10.1016/j.foodcont.2014.12.040] Cerisuelo, A., Marín, C., Sánchez-Vizcaíno, F., Gómez, E. A., De La Fuente, J. M., & Durán, R., et al. (2014). The impact of a specific blend of essential oil components and sodium butyrate in feed on growth performance and Salmonella counts in experimentally challenged broilers. Poultry Science, 93(3), 599–606. [DOI:10.3382/ps.2013-03528] [PMID] Chaney, W. E., Naqvi, S. A., Gutierrez, M., Gernat, A., Johnson, T. J., & Petry, D. (2022). Dietary inclusion of a saccharomyces cerevisiae-derived postbiotic is associated with lower salmonella enterica burden in broiler chickens on a commercial farm in Honduras. Microorganisms, 10(3), 544. [DOI:10.3390/microorganisms10030544] [PMID] [PMCID] Chun, S. S., Vattem, D. A., Lin, Y. T., & Shetty, K. (2005). Phenolic antioxidants from clonal oregano (origanum vulgare) with antimicrobial activity against helicobacter pylori. Process Biochemistry, 40(2), 809-816. [DOI:10.1016/j.procbio.2004.02.018] Cox, N. A., Oladeinde, A. A., Cook, K. L., Zock, G. S., Berrang, M. E., & Ritz, C. W., et al. (2020). Research note: Evaluation of several inoculation procedures for colonization of day-old broiler chicks with Salmonella Heidelberg. Poultry Science, 99(3), 1615–1617. [DOI:10.1016/j.psj.2019.10.020] [PMID] [PMCID] Dar, M. A., Ahmad, S. M., Bhat, S. A., Ahmed, R., Urwat, U., & Mumtaz, P. T., et al. (2017). Salmonella typhimurium in poultry: A review. World's Poultry Science Journal, 73(2), 345-354. [DOI:10.1017/S0043933917000204] Du, E., Gan, L., Li, Z., Wang, W., Liu, D., & Guo, Y. (2015). In vitro antibacterial activity of thymol and carvacrol and their effects on broiler chickens challenged with clostridium perfringens. Journal of Animal Science and Biotechnology, 6(58), 1-12. [DOI:10.1186/s40104-015-0055-7] [PMID] [PMCID] El-Saadony, M. T., Salem, H. M., El-Tahan, A. M., Abd El-Mageed, T. A., Soliman, S. M., & Khafaga, A. F., et al. (2022). The control of poultry salmonellosis using organic agents: An updated overview. Poultry Science, 101(4), 101716. [DOI:10.1016/j.psj.2022.101716] [PMID] [PMCID] Franz, C., Baser, K. H. C., & Windisch, W. (2010). Essential oils and aromatic plants in animal feeding-a European perspective. A review. Flavour and Fragrance Journal, 25(5), 327-340. [DOI:10.1002/ffj.1967] Gholami-Ahangaran, M., Ahmadi-Dastgerdi, A., Azizi, S., Basiratpour, A., Zokaei, M., & Derakhshan, M. (2022). Thymol and carvacrol supplementation in poultry health and performance. Veterinary Medicine and Science, 8(1), 267–288.[DOI:10.1002/vms3.663] [PMID] [PMCID] Giannenas, I. A., Papaneophytou, C. P., Tsalie, E., Triantafillou, E., Tontis, D., & Kontopidis, G. A. (2014). The effects of benzoic acid and essential oil compounds in combination with protease on the performance of chickens. Journal of Animal and Feed Sciences, 23(1), 73-81. [DOI:10.22358/jafs/65719/2014] Hashemipour, H., Kermanshahi, H., Golian, A., & Veldkamp, T. (2013). Effect of thymol and carvacrol feed supplementation on performance, antioxidant enzyme activities, fatty acid composition, digestive enzyme activities, and immune response in broiler chickens. Poultry Science, 92(8), 2059–2069.[DOI:10.3382/ps.2012-02685] [PMID] Hashemzadeh, Z., Karimi Torshizi, M. A., Rahimi, S., Razban, V., & Zahraei Salehi, T. (2010). Prevention of salmonella colonization in neonatal broiler chicks by using different routes of probiotic administration in hatchery evaluated by culture and PCR techniques. Journal of Agricultural Science and Technology, 12(4), 425-432. [Link] Helander, I. M., Alakomi, H. L., Latva-Kala, K., Mattila-Sandholm, T., Pol, I., & Smid, E. J., et al. (1998). Characterization of the action of selected essential oil components on gram-negative bacteria. Journal of Agricultural and Food Chemistry, 46(9), 3590-3595. [DOI:10.1021/jf980154m] Ibrahim, D., Abdelfattah-Hassan, A., Badawi, M., Ismail, T. A., Bendary, M. M., & Abdelaziz, A. M., et al. (2021). Thymol nanoemulsion promoted broiler chicken's growth, gastrointestinal barrier and bacterial community and conferred protection against Salmonella Typhimurium. Scientific Reports, 11(1), 7742. [DOI:10.1038/s41598-021-86990-w] [PMID] [PMCID] Jazi, V., Mohebodini, H., Ashayerizadeh, A., Shabani, A., & Barekatain, R. (2019). Fermented soybean meal ameliorates Salmonella typhimurium infection in young broiler chickens. Poultry Science, 98(11), 5648–5660. [DOI:10.3382/ps/pez338] [PMID] Kang, C.W., Jungbauer, L., Mader, A., & Jolain, S. (2010). Effects of a phytogenic feed additive on Performance and bioavailability of nutrients in broilers. In XIIIth European Poultry Conference, Tours, France, 23-27 August 2010: CD of Proceedings World's Poultry Science Journal, (eds). Champaign, World's Poultry Science Association. [Link] Khan, S. H., & Iqbal, J. (2016). Recent advances in the role of organic acids in poultry nutrition. Journal of Applied Animal Research, 44(1), 359-369. [DOI:10.1080/09712119.2015.1079527] Khatibjoo, A., Aalaei, M., Fattahnia, F., Neamati, M., Hafezi Ahmadi, M. R., & Farzadi, H., (2020). [Use of essential oils in broiler chickens: In-vitro antimicrobial activities and effects on growth performance, intestinal morphology and microflora (Persian)]. Iranian Journal of Animal Science Research, 11(4), 463-479. [Link] Lee, K. W., Everts, H., Kapperst, H. J., Yeom, K. H., & Beynen, A. C. (2003). Dietary carvacrol lowers body weight gain but improves feed conversion in female broiler chickens. Journal of Applied Poultry Research, 12(4), 394-399. [DOI:10.1093/japr/12.4.394] Lee, K. W., Everts, H., Kappert, H. J., Frehner, M., Losa, R., & Beynen, A. C. (2003). Effects of dietary essential oil components on growth performance, digestive enzymes and lipid metabolism in female broiler chickens. British Poultry Science, 44(3), 450–457. [DOI:10.1080/0007166031000085508] [PMID] Machado, J., Beirão, B. C. B., Fernandes Filho, T., Lourenço, M. C., Joineau, M. L., & Santin, E., et al. (2014). Use of blends of organic acids and oregano extracts in feed and water of broiler chickens to control salmonella enteritidis persistence in the crop and ceca of experimentally infected birds. Journal of Applied Poultry Research, 23(4), 671-682. [DOI:10.3382/japr.2014-00979] Mead G. C. (2000). Prospects for 'competitive exclusion' treatment to control salmonellas and other foodborne pathogens in poultry. Veterinary Journal , 159(2), 111–123. [DOI:10.1053/tvjl.1999.0423] [PMID] Ocak, N., Erener, G., Burak Ak, F., Sungu, M., Altop, A., & Ozmen, A. (2008). Performance of broilers fed diets supplemented with dry peppermint (mentha piperita L.) or thyme (thymus vulgaris l.) leaves as growth promoter source. Czech Journal of Animal Science, 53(4), 169-175. [DOI:10.17221/373-CJAS] Oluwafemi, R. A., Olawale, A. I., & Alagbe, J. O. (2020). Recent trends in the utilization of medicinal plants as growth promoters in poultry nutrition-a review. Research in: Agricultural and Veterinary Sciences, 4(1), 5-11. [Link] Radwan, N. L. (2003). Effect of using some medicinal plants on performance and immunity of broiler chicks [PhD dissertation]. Cairo: Cairo University. [Link] Randall, L. P., Eaves, D. J., Cooles, S. W., Ricci, V., Buckley, A., & Woodward, M. J., et al. (2005). Fluoroquinolone treatment of experimental salmonella enterica serovar typhimurium DT104 infections in chickens selects for both gyrA mutations and changes in efflux pump gene expression. The Journal of Antimicrobial Chemotherapy, 56(2), 297–306.[DOI:10.1093/jac/dki189] [PMID] Rathod, N. B., Kulawik, P., Ozogul, F., Regenstein, J. M. & Ozogul, Y. (2021). Biological activity of plant-based carvacrol and thymol and their impact on human health and food quality. Trends in Food Science & Technology, 116, 733-748. [DOI:10.1016/j.tifs.2021.08.023] Remus, A., Hauschild, L., Andretta, I., Kipper, M., Lehnen, C. R., & Sakomura, N. K. (2014). A meta-analysis of the feed intake and growth performance of broiler chickens challenged by bacteria. Poultry Science, 93(5), 1149–1158. [DOI:10.3382/ps.2013-03540] [PMID] Rouger, A., Tresse, O., & Zagorec, M. (2017). Bacterial contaminants of poultry meat: Sources, species, and dynamics. Microorganisms, 5(3), 50-56. [DOI:10.3390/microorganisms5030050] [PMID] [PMCID] Sarica, S., Corduk, M., Yarim, G. F., Yenisehirli, G., & Karatas, U. (2009). Effects of novel feed additives in wheat based diets on performance, carcass and intestinal tract characteristics of quail. South African Journal of Animal Science, 39(2), 144-157. [DOI:10.4314/sajas.v39i2.44388] Scandorieiro, S., De Camargo, L. C., Lancheros, C. A., Yamada-Ogatta, S. F., Nakamura, C. V., & De Oliveira, A. G., et al. (2016). Synergistic and additive effect of oregano essential oil and biological silver nanoparticles against multidrug-resistant bacterial strains. Frontiers in Microbiology, 7, 760. [DOI:10.3389/fmicb.2016.00760] [PMID] [PMCID] Schumacher, M. M., & DeBose-Boyd, R. A. (2021). Posttranslational regulation of HMG CoA reductase, the rate-limiting enzyme in synthesis of cholesterol. Annual Review of Biochemistry, 90, 659–679. [DOI:10.1146/annurev-biochem-081820-101010] [PMID] Schwartz, B., & Vetvicka, V. (2021). Review: β-glucans as effective antibiotic alternatives in poultry. Molecules, 26(12), 3560. [DOI:10.3390/molecules26123560] [PMID] [PMCID] Stamilla, A., Russo, N., Messina, A., Spadaro, C., Natalello, A., & Caggia, C., et al. (2020). Effects of microencapsulated blend of organic acids and essential oils as a feed additive on quality of chicken breast meat. Animals: An Open Access Journal from MDPI, 10(4), 640. [DOI:10.3390/ani10040640] [PMID] [PMCID] Sultan, A., Ullah, T., Khan, S., & Khan, R. U. (2015). Effect of organic acid supplementation on the performance and ileal microflora of broiler during finishing period. Pakistan Journal of Zoology, 47(3), 635-639. [Link] Thames, H. T., Fancher, C. A., Colvin, M. G., McAnally, M., Tucker, E., & Zhang, L., et al. (2022). The prevalence of salmonella and campylobacter on broiler meat at different stages of commercial poultry processing. Animals: An Open Access Journal from MDPI, 12(18), 2460. [DOI:10.3390/ani12182460] [PMID] [PMCID] Tongnuanchan, P., & Benjakul, S. (2014). Essential oils: Extraction, bioactivities, and their uses for food preservation. Journal of Food Science, 79(7), R1231–R1249. [DOI:10.1111/1750-3841.12492] [PMID] Ultee, A., Bennik, M. H., & Moezelaar, R. (2002). The phenolic hydroxyl group of carvacrol is essential for action against the food-borne pathogen Bacillus cereus. Applied and Environmental Microbiology, 68(4), 1561–1568. [DOI:10.1128/AEM.68.4.1561-1568.2002] [PMID] [PMCID] Vandeplas, S., Dauphin, R. D., Thiry, C., Beckers, Y., Welling, G. W., & Thonart, P., et al. (2009). Efficiency of a lactobacillus plantarum-xylanase combination on growth performances, microflora populations, and nutrient digestibilities of broilers infected with salmonella typhimurium. Poultry Science, 88(8), 1643–1654. [DOI:10.3382/ps.2008-00479] [PMID] Wibisono, F. M., Wibisono, F. J., Effendi, M. H., Plumeriastuti, H., Hidayatullah, A. R., & Hartadi, E. B., et al. (2020). A review of salmonellosis on poultry farms: Public health importance. Systematic Reviews in Pharmacy, 11(9), 481-486. [Link] Wilson, K. M., Bourassa, D. V., Davis, A. J., Freeman, M. E., & Buhr, R. J. (2016). The addition of charcoals to broiler diets did not alter the recovery of salmonella typhimurium during grow-out. Poultry Science, 95(3), 694–704. [DOI:10.3382/ps/pev371] [PMID] Yakhkeshi, S., Rahimi, S., & Gharib Naseri, K. (2011). [The effects of comparison of herbal extracts, antibiotic, probiotic and organic acid on serum lipids, immune response, git microbial population, intestinal morphology and performance of broilers (Persian)]. Journal of Medicinal Plants, 10(37), 80-95. [Link] Zhai, H., Liu, H., Wang, S., Wu, J., & Kluenter, A. M. (2018). Potential of essential oils for poultry and pigs. Animal Nutrition, 4(2), 179–186. [DOI:10.1016/j.aninu.2018.01.005] [PMID] [PMCID] | ||
مراجع | ||
Ahmed, G., & Abdel-Ghany, A. (2015). The effect of origanum majorana supplementation on growth performance, blood parameters and meat quality in BUT9 commercial Turkeys. Journal of Animal, Poultry & Fish Production, 3(1), 17-29. [DOI:10.21608/japfp.2015.7428] Abdel-Moneim, M. A., Hammady, G. A., Hassanin, M. S., & El-Chaghaby, G. A. (2015). The effect of using marjoram extract as natural growth promoter on the performance and intestinal bacteria of broiler chickens. Journal of Animal and Poultry Production, 6(11), 647-656. [DOI:10.21608/jappmu.2015.52946] Abdel-Wahab, A. A. (2019). Effect of adding marjoram powder to broiler chicks diet on performance, blood and antioxidant enzyme activity. Egyptian Journal of Nutrition and Feeds, 22(3), 611-625. [DOI:10.21608/ejnf.2019.79495] Abudabos, A. M., Alyemni, A. H., Dafalla, Y. M., & Khan, R. U. (2016). The effect of phytogenic feed additives to substitute in-feed antibiotics on growth traits and blood biochemical parameters in broiler chicks challenged with salmonella typhimurium. Environmental Science and Pollution Research, 23(23), 24151–24157. [DOI:10.1007/s11356-016-7665-2] [PMID] Abudabos, A. M., Alyemni, A. H., Dafalla, Y. M., & Khan, R. U. (2018). The effect of phytogenics on growth traits, blood biochemical and intestinal histology in broiler chickens exposed to clostridium perfringens challenge. Journal of Applied Animal Research, 46(1), 691-695. [DOI:10.1080/09712119.2017.138325] Adhikari, P., Yadav, S., Cosby, D. E., Cox, N. A., Jendza, J. A., & Kim, W. K. (2020). Research note: Effect of organic acid mixture on growth performance and Salmonella Typhimurium colonization in broiler chickens. Poultry Science, 99(5), 2645–2649. [DOI:10.1016/j.psj.2019.12.037] [PMID] [PMCID] Afshari, A., Baratpour, A., Khanzade, S., & Jamshidi, A. (2018). Salmonella enteritidis and salmonella typhimorium identification in poultry carcasses. Iranian Journal of Microbiology, 10(1), 45–50. [PMID] [PMCID] Akbarian, A., Michiels, J., Golian, A., Buyse, J., Wang, Y., & De Smet, S. (2014). Gene expression of heat shock protein 70 and antioxidant enzymes, oxidative status, and meat oxidative stability of cyclically heat-challenged finishing broilers fed origanum compactum and Curcuma xanthorrhiza essential oils. Poultry Science, 93(8), 1930–1941. [DOI:10.3382/ps.2014-03896] [PMID] Alagawany, M., Elnesr, S. S., Farag, M. R., Abd El-Hack, M. E., Khafaga, A. F., & Taha, A. E., et al. (2019). Use of licorice (glycyrrhiza glabra) herb as a feed additive in poultry: Current knowledge and prospects. Animals: An Open Access Journal from MDPI, 9(8), 536. [DOI:10.3390/ani9080536] [PMID] [PMCID] Akintayo-Balogun Omolere, M., & Alagbe, J.O. (2020). Probiotics and medicinal plants in poultry nutrition: A review. International Journal on Integrated Education, 3(10), 214-221. [DOI:10.31149/ijie.v3i10.730] Al-Kassie, G. A. M. (2009). Influence of two plant extracts derived from thyme and cinnamon on broiler performance. Pakistan Veterinary Journal, 29(4), 169-173. [Link] Amad, A. A., Wendler, K. R., & Zentek, J. (2013). Effects of a phytogenic feed additive on growth performance, selected blood criteria and jejunal morphology in broiler chickens. Emirates Journal of Food and Agriculture, 25(7), 549-55. [DOI:10.9755/ejfa.v25i7.12364] Amerah, A. M., Mathis, G., & Hofacre, C. L. (2012). Effect of xylanase and a blend of essential oils on performance and salmonella colonization of broiler chickens challenged with salmonella heidelberg. Poultry Science, 91(4), 943–947. [DOI:10.3382/ps.2011-01922] [PMID] Basmacioğlu-Malayoğlu, H., Ozdemir, P., & Bağriyanik, H. A. (2016). Influence of an organic acid blend and essential oil blend, individually or in combination, on growth performance, carcass parameters, apparent digestibility, intestinal microflora and intestinal morphology of broilers. British Poultry Science, 57(2), 227–234. [DOI:10.1080/00071668.2016.1141171] [PMID] Bjerrum, L., Engberg, R. M., & Pedersen, K. (2003). Infection models for salmonella typhimurium DT110 in day-old and 14-day-old broiler chickens kept in isolators. Avian diseases, 47(4), 1474–1480. [DOI:10.1637/7051] [PMID] Bölükbaşı, Ş. C., Erhan, M. K., & Kaynar, Ö. The effect of feeding thyme, sage and rosemary oil on laying hen performance, cholesterol and some proteins ratio of egg yolk and Escherichia Coli count in feces. Archives fur Geflugelkunde, 72(5), 231-237. [Link] Bozkurt, M., Küçükyılmaz, K., Çatlı, A. U., & Çınar, M. (2009). Effect of dietary mannan oligosaccharide with or without oregano essential oil and hop extract supplementation on the performance and slaughter characteristics of male broilers. South African Journal of Animal Science, 39(3), 223-232. [DOI:10.4314/sajas.v39i3.49157] Broom, L. J. (2015). Organic acids for improving intestinal health of poultry. World's Poultry Science Journal, 71(4), 630-642. [DOI:10.1017/S0043933915002391] Calo, J.R., Crandall, P.G., O'Bryan, C.A. & Ricke, S.C. (2015). Essential oils as antimicrobials in food systems-a review. Food Control, 54, 111-119. [DOI:10.1016/j.foodcont.2014.12.040] Cerisuelo, A., Marín, C., Sánchez-Vizcaíno, F., Gómez, E. A., De La Fuente, J. M., & Durán, R., et al. (2014). The impact of a specific blend of essential oil components and sodium butyrate in feed on growth performance and Salmonella counts in experimentally challenged broilers. Poultry Science, 93(3), 599–606. [DOI:10.3382/ps.2013-03528] [PMID] Chaney, W. E., Naqvi, S. A., Gutierrez, M., Gernat, A., Johnson, T. J., & Petry, D. (2022). Dietary inclusion of a saccharomyces cerevisiae-derived postbiotic is associated with lower salmonella enterica burden in broiler chickens on a commercial farm in Honduras. Microorganisms, 10(3), 544. [DOI:10.3390/microorganisms10030544] [PMID] [PMCID] Chun, S. S., Vattem, D. A., Lin, Y. T., & Shetty, K. (2005). Phenolic antioxidants from clonal oregano (origanum vulgare) with antimicrobial activity against helicobacter pylori. Process Biochemistry, 40(2), 809-816. [DOI:10.1016/j.procbio.2004.02.018] Cox, N. A., Oladeinde, A. A., Cook, K. L., Zock, G. S., Berrang, M. E., & Ritz, C. W., et al. (2020). Research note: Evaluation of several inoculation procedures for colonization of day-old broiler chicks with Salmonella Heidelberg. Poultry Science, 99(3), 1615–1617. [DOI:10.1016/j.psj.2019.10.020] [PMID] [PMCID] Dar, M. A., Ahmad, S. M., Bhat, S. A., Ahmed, R., Urwat, U., & Mumtaz, P. T., et al. (2017). Salmonella typhimurium in poultry: A review. World's Poultry Science Journal, 73(2), 345-354. [DOI:10.1017/S0043933917000204] Du, E., Gan, L., Li, Z., Wang, W., Liu, D., & Guo, Y. (2015). In vitro antibacterial activity of thymol and carvacrol and their effects on broiler chickens challenged with clostridium perfringens. Journal of Animal Science and Biotechnology, 6(58), 1-12. [DOI:10.1186/s40104-015-0055-7] [PMID] [PMCID] El-Saadony, M. T., Salem, H. M., El-Tahan, A. M., Abd El-Mageed, T. A., Soliman, S. M., & Khafaga, A. F., et al. (2022). The control of poultry salmonellosis using organic agents: An updated overview. Poultry Science, 101(4), 101716. [DOI:10.1016/j.psj.2022.101716] [PMID] [PMCID] Franz, C., Baser, K. H. C., & Windisch, W. (2010). Essential oils and aromatic plants in animal feeding-a European perspective. A review. Flavour and Fragrance Journal, 25(5), 327-340. [DOI:10.1002/ffj.1967] Gholami-Ahangaran, M., Ahmadi-Dastgerdi, A., Azizi, S., Basiratpour, A., Zokaei, M., & Derakhshan, M. (2022). Thymol and carvacrol supplementation in poultry health and performance. Veterinary Medicine and Science, 8(1), 267–288.[DOI:10.1002/vms3.663] [PMID] [PMCID] Giannenas, I. A., Papaneophytou, C. P., Tsalie, E., Triantafillou, E., Tontis, D., & Kontopidis, G. A. (2014). The effects of benzoic acid and essential oil compounds in combination with protease on the performance of chickens. Journal of Animal and Feed Sciences, 23(1), 73-81. [DOI:10.22358/jafs/65719/2014] Hashemipour, H., Kermanshahi, H., Golian, A., & Veldkamp, T. (2013). Effect of thymol and carvacrol feed supplementation on performance, antioxidant enzyme activities, fatty acid composition, digestive enzyme activities, and immune response in broiler chickens. Poultry Science, 92(8), 2059–2069.[DOI:10.3382/ps.2012-02685] [PMID] Hashemzadeh, Z., Karimi Torshizi, M. A., Rahimi, S., Razban, V., & Zahraei Salehi, T. (2010). Prevention of salmonella colonization in neonatal broiler chicks by using different routes of probiotic administration in hatchery evaluated by culture and PCR techniques. Journal of Agricultural Science and Technology, 12(4), 425-432. [Link] Helander, I. M., Alakomi, H. L., Latva-Kala, K., Mattila-Sandholm, T., Pol, I., & Smid, E. J., et al. (1998). Characterization of the action of selected essential oil components on gram-negative bacteria. Journal of Agricultural and Food Chemistry, 46(9), 3590-3595. [DOI:10.1021/jf980154m] Ibrahim, D., Abdelfattah-Hassan, A., Badawi, M., Ismail, T. A., Bendary, M. M., & Abdelaziz, A. M., et al. (2021). Thymol nanoemulsion promoted broiler chicken's growth, gastrointestinal barrier and bacterial community and conferred protection against Salmonella Typhimurium. Scientific Reports, 11(1), 7742. [DOI:10.1038/s41598-021-86990-w] [PMID] [PMCID] Jazi, V., Mohebodini, H., Ashayerizadeh, A., Shabani, A., & Barekatain, R. (2019). Fermented soybean meal ameliorates Salmonella typhimurium infection in young broiler chickens. Poultry Science, 98(11), 5648–5660. [DOI:10.3382/ps/pez338] [PMID] Kang, C.W., Jungbauer, L., Mader, A., & Jolain, S. (2010). Effects of a phytogenic feed additive on Performance and bioavailability of nutrients in broilers. In XIIIth European Poultry Conference, Tours, France, 23-27 August 2010: CD of Proceedings World's Poultry Science Journal, (eds). Champaign, World's Poultry Science Association. [Link] Khan, S. H., & Iqbal, J. (2016). Recent advances in the role of organic acids in poultry nutrition. Journal of Applied Animal Research, 44(1), 359-369. [DOI:10.1080/09712119.2015.1079527] Khatibjoo, A., Aalaei, M., Fattahnia, F., Neamati, M., Hafezi Ahmadi, M. R., & Farzadi, H., (2020). [Use of essential oils in broiler chickens: In-vitro antimicrobial activities and effects on growth performance, intestinal morphology and microflora (Persian)]. Iranian Journal of Animal Science Research, 11(4), 463-479. [Link] Lee, K. W., Everts, H., Kapperst, H. J., Yeom, K. H., & Beynen, A. C. (2003). Dietary carvacrol lowers body weight gain but improves feed conversion in female broiler chickens. Journal of Applied Poultry Research, 12(4), 394-399. [DOI:10.1093/japr/12.4.394] Lee, K. W., Everts, H., Kappert, H. J., Frehner, M., Losa, R., & Beynen, A. C. (2003). Effects of dietary essential oil components on growth performance, digestive enzymes and lipid metabolism in female broiler chickens. British Poultry Science, 44(3), 450–457. [DOI:10.1080/0007166031000085508] [PMID] Machado, J., Beirão, B. C. B., Fernandes Filho, T., Lourenço, M. C., Joineau, M. L., & Santin, E., et al. (2014). Use of blends of organic acids and oregano extracts in feed and water of broiler chickens to control salmonella enteritidis persistence in the crop and ceca of experimentally infected birds. Journal of Applied Poultry Research, 23(4), 671-682. [DOI:10.3382/japr.2014-00979] Mead G. C. (2000). Prospects for 'competitive exclusion' treatment to control salmonellas and other foodborne pathogens in poultry. Veterinary Journal , 159(2), 111–123. [DOI:10.1053/tvjl.1999.0423] [PMID] Ocak, N., Erener, G., Burak Ak, F., Sungu, M., Altop, A., & Ozmen, A. (2008). Performance of broilers fed diets supplemented with dry peppermint (mentha piperita L.) or thyme (thymus vulgaris l.) leaves as growth promoter source. Czech Journal of Animal Science, 53(4), 169-175. [DOI:10.17221/373-CJAS] Oluwafemi, R. A., Olawale, A. I., & Alagbe, J. O. (2020). Recent trends in the utilization of medicinal plants as growth promoters in poultry nutrition-a review. Research in: Agricultural and Veterinary Sciences, 4(1), 5-11. [Link] Radwan, N. L. (2003). Effect of using some medicinal plants on performance and immunity of broiler chicks [PhD dissertation]. Cairo: Cairo University. [Link] Randall, L. P., Eaves, D. J., Cooles, S. W., Ricci, V., Buckley, A., & Woodward, M. J., et al. (2005). Fluoroquinolone treatment of experimental salmonella enterica serovar typhimurium DT104 infections in chickens selects for both gyrA mutations and changes in efflux pump gene expression. The Journal of Antimicrobial Chemotherapy, 56(2), 297–306.[DOI:10.1093/jac/dki189] [PMID] Rathod, N. B., Kulawik, P., Ozogul, F., Regenstein, J. M. & Ozogul, Y. (2021). Biological activity of plant-based carvacrol and thymol and their impact on human health and food quality. Trends in Food Science & Technology, 116, 733-748. [DOI:10.1016/j.tifs.2021.08.023] Remus, A., Hauschild, L., Andretta, I., Kipper, M., Lehnen, C. R., & Sakomura, N. K. (2014). A meta-analysis of the feed intake and growth performance of broiler chickens challenged by bacteria. Poultry Science, 93(5), 1149–1158. [DOI:10.3382/ps.2013-03540] [PMID] Rouger, A., Tresse, O., & Zagorec, M. (2017). Bacterial contaminants of poultry meat: Sources, species, and dynamics. Microorganisms, 5(3), 50-56. [DOI:10.3390/microorganisms5030050] [PMID] [PMCID] Sarica, S., Corduk, M., Yarim, G. F., Yenisehirli, G., & Karatas, U. (2009). Effects of novel feed additives in wheat based diets on performance, carcass and intestinal tract characteristics of quail. South African Journal of Animal Science, 39(2), 144-157. [DOI:10.4314/sajas.v39i2.44388] Scandorieiro, S., De Camargo, L. C., Lancheros, C. A., Yamada-Ogatta, S. F., Nakamura, C. V., & De Oliveira, A. G., et al. (2016). Synergistic and additive effect of oregano essential oil and biological silver nanoparticles against multidrug-resistant bacterial strains. Frontiers in Microbiology, 7, 760. [DOI:10.3389/fmicb.2016.00760] [PMID] [PMCID] Schumacher, M. M., & DeBose-Boyd, R. A. (2021). Posttranslational regulation of HMG CoA reductase, the rate-limiting enzyme in synthesis of cholesterol. Annual Review of Biochemistry, 90, 659–679. [DOI:10.1146/annurev-biochem-081820-101010] [PMID] Schwartz, B., & Vetvicka, V. (2021). Review: β-glucans as effective antibiotic alternatives in poultry. Molecules, 26(12), 3560. [DOI:10.3390/molecules26123560] [PMID] [PMCID] Stamilla, A., Russo, N., Messina, A., Spadaro, C., Natalello, A., & Caggia, C., et al. (2020). Effects of microencapsulated blend of organic acids and essential oils as a feed additive on quality of chicken breast meat. Animals: An Open Access Journal from MDPI, 10(4), 640. [DOI:10.3390/ani10040640] [PMID] [PMCID] Sultan, A., Ullah, T., Khan, S., & Khan, R. U. (2015). Effect of organic acid supplementation on the performance and ileal microflora of broiler during finishing period. Pakistan Journal of Zoology, 47(3), 635-639. [Link] Thames, H. T., Fancher, C. A., Colvin, M. G., McAnally, M., Tucker, E., & Zhang, L., et al. (2022). The prevalence of salmonella and campylobacter on broiler meat at different stages of commercial poultry processing. Animals: An Open Access Journal from MDPI, 12(18), 2460. [DOI:10.3390/ani12182460] [PMID] [PMCID] Tongnuanchan, P., & Benjakul, S. (2014). Essential oils: Extraction, bioactivities, and their uses for food preservation. Journal of Food Science, 79(7), R1231–R1249. [DOI:10.1111/1750-3841.12492] [PMID] Ultee, A., Bennik, M. H., & Moezelaar, R. (2002). The phenolic hydroxyl group of carvacrol is essential for action against the food-borne pathogen Bacillus cereus. Applied and Environmental Microbiology, 68(4), 1561–1568. [DOI:10.1128/AEM.68.4.1561-1568.2002] [PMID] [PMCID] Vandeplas, S., Dauphin, R. D., Thiry, C., Beckers, Y., Welling, G. W., & Thonart, P., et al. (2009). Efficiency of a lactobacillus plantarum-xylanase combination on growth performances, microflora populations, and nutrient digestibilities of broilers infected with salmonella typhimurium. Poultry Science, 88(8), 1643–1654. [DOI:10.3382/ps.2008-00479] [PMID] Wibisono, F. M., Wibisono, F. J., Effendi, M. H., Plumeriastuti, H., Hidayatullah, A. R., & Hartadi, E. B., et al. (2020). A review of salmonellosis on poultry farms: Public health importance. Systematic Reviews in Pharmacy, 11(9), 481-486. [Link] Wilson, K. M., Bourassa, D. V., Davis, A. J., Freeman, M. E., & Buhr, R. J. (2016). The addition of charcoals to broiler diets did not alter the recovery of salmonella typhimurium during grow-out. Poultry Science, 95(3), 694–704. [DOI:10.3382/ps/pev371] [PMID] Yakhkeshi, S., Rahimi, S., & Gharib Naseri, K. (2011). [The effects of comparison of herbal extracts, antibiotic, probiotic and organic acid on serum lipids, immune response, git microbial population, intestinal morphology and performance of broilers (Persian)]. Journal of Medicinal Plants, 10(37), 80-95. [Link] Zhai, H., Liu, H., Wang, S., Wu, J., & Kluenter, A. M. (2018). Potential of essential oils for poultry and pigs. Animal Nutrition, 4(2), 179–186. [DOI:10.1016/j.aninu.2018.01.005] [PMID] [PMCID] | ||
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