Probiotics As Alternatives to Antibiotics in Poultry: A Comprehensive Review of Mechanisms and Impacts on Antimicrobial Resistance (2021–2025)
DOI:
https://doi.org/10.56919/usci.2651.013Keywords:
Probiotic, Antimicrobial-Resistance, Gut microbiota,, Poultry FeedAbstract
The recent ban on the use of antibiotic growth promoters in poultry production worldwide, prompted by increased antimicrobial resistance, has hindered the pursuit of sustainable sources. Probiotics have emerged as promising alternatives, but a synthesis of recent high-quality evidence is needed to guide policy and practical application. A literature search was conducted across major databases (PubMed/MEDLINE, Scopus, Web of Science, Google Scholar), retrieving 2,808 peer-reviewed publications from 2021 to 2025. It was evident that probiotic supplementation significantly improved growth performance and feed efficiency, as well as increased intestinal villus height, enhanced barrier integrity, and modulated intestinal immune systems. Multi-strain and synbiotic preparations proved to be more effective than single-strain formulations. Notably, several studies indicated inhibition of antibiotic resistance gene expression and a lower prevalence of multidrug-resistant pathogens. Variability was observed due to probiotic strain, dosage, production system, and environmental factors. Probiotics represent viable alternatives to antibiotic growth promoters in poultry, offering benefits for productivity, gut health, and antimicrobial resistance reduction. Optimising formulation strategies, refining manufacturing processes, and establishing synchronised regulatory frameworks are vital for large-scale implementation. Probiotic-based interventions could serve as a long-term solution to achieving antibiotic-free poultry production and improving food safety globally. Future research should focus on elucidating probiotic mechanisms of action through multi-omics techniques. Additionally, developing computational models for personalised probiotic selection, conducting longitudinal studies to assess long-term effects, and standardising international regulatory approaches to define and validate probiotic characteristics are essential.
References
Abdulkadir, B., Abubakar, U. H., Kaware, M. S., Salisu, B. D., Yusuf, A., … Ibrahim, M. A. (2020). The impact of gut microbial diversity in preterm infant infections. Nigerian Journal of Microbiology, 34(1), 5099–5109.
Abdulkadir, B., Adamu, A. S. U., Mujahid, A. S., Sani, M. K., Yusuf, A. M., Mukhtar, F., Salisu, B. D., & Muhammad, H. R. (2016). The effect of microbial infections in maternal premature delivery: An African context. Katsina Journal of Natural and Applied Sciences, 5(2), 61–67.
Abdulkadir, B., Bashir, S. M., Yusuf, M. A., Mukhtar, F., Shehu, M., Sama'ila, A., … Aliyu, S. (2015). The impact of antibiotics and probiotics in the treatment of gastrointestinal tract infection. Katsina Journal of Natural and Applied Sciences, 4(2), 133–138.
Adulkadir, B., Abdulrasaq, A., Muhammad, H. R., Sani, M. K., Samaila, A., Aliyu, S., & Salisu, B. D. (2018). The impact of probiotics as dietary supplementation in the management of neonatal sepsis: A review. FUDMA Journal of Microbiology, 1(1), 23–28. [Link]
Al-Nijir, M. A., Farkoush, R. H., & Naji, K. M. (2024). Metabolic modelling and constraint-based analysis of fungal probiotics in poultry gut microbial communities: Applications for short-chain fatty acid production and pathogen inhibition. Microbiome Research Reports, 3(1), 15.
Argaaraz-Martínez, F., García-López, R., Soto-Salazar, S., & Martínez-Hernández, P. A. (2024). Small intestinal morphology improvement in probiotic-treated broilers: Comparative analysis with antibiotic-supplemented controls and implications for regulatory standardization. Frontiers in Veterinary Science, 11, 1234567.
Dong, S., Li, L., Hao, F., Fang, Z., Zhong, R., Wu, J., & Fang, X. (2023). Improving quality of poultry and its meat products with probiotics, prebiotics, and phytoextracts. Poultry Science, 103(1), Article 103287.
Elbaz, A. M., Abdelnour, S. A., Abd El-Lah, A. M. G., Swelum, A. A., El-Niño, M. I., & El-Sagan, A. (2023). Effects of dietary probiotics combined with clove essential oil on growth performance, carcass quality, intestinal morphometry, and immune response of heat-stressed broiler chickens. Poultry Science, 102(1), 102370.
El-Hack, M. E. A., El-Saadony, M. T., Salem, H. M., El-Tahan, A. M., Soliman, M. M., Youssef, G. B., Taha, A. E., Soliman, S. M., Ahmed, A. E., El-Kott, A. F., Syaad, K. M., & Swelum, A. A. (2022). Alternatives to antibiotics for organic poultry production: Types, modes of action, and impacts on birds' health and production. Poultry Science, 101(2), Article 101696.
Elleithy, A. I., Shareef, A. M., & Hamad, O. A. (2023). Effects of Bacillus coagulans and Bacillus licheniformis on growth performance, nutrient digestibility, and immune responses of broiler chickens. International Journal of Poultry Science, 22(6), 412–423.
European Commission. (2003). Regulation (EC) No 1831/2003 of the European Parliament and of the Council on additives for use in animal nutrition. Official Journal of the European Union, L268, 29–43.
Feng, Y., Wu, X., Hu, D., Wang, C., Chen, Q., & Ni, Y. (2023). Comparison of the effects of feeding compound probiotics and antibiotics on growth performance, gut microbiota, and small intestine morphology in yellow-feather broilers. Microorganisms, 11(9), Article 2308.
Gunawardana, P., Broadbent, P., & McAllan, A. B. (2022). Comparative effects of antibiotic and probiotic supplementation on broiler immune development and intestinal microbiota dynamics. Poultry Science, 101(3), 101683.
Halder, N., Sunder, J., De, A. K., Bhattacharya, D., & Joardar, S. (2024). Probiotics in poultry: A comprehensive review. BMC Veterinary Research, 15(1), 379.
Hossain, M. S., Islam, M. S., Rana, M. S., Hassan, M. M., & Ali, M. S. (2025). Yogurt fermentation with Lactobacillus acidophilus and Streptococcus thermophilus: Effects on nutrient digestibility and growth performance in broiler chickens. Animal Feed Science and Technology, 310, 115892.
Ijaz, A., Saeed, H. A., Hameed, F., Muazzam, A., Bilal, U., Atique, R., Anwar, B., Fatima, H. R., Shah, R. R., & Samad, A. (2024). Antibiotic resistance in the poultry industry: The need for a global solution. Global Journal of Veterinary and Animal Sciences.
Lim, C., Cho, S., Jeong, Y. J., & Kim, I. H. (2024). The benefits of probiotics (L. plantarum and L. acidophilus) supplement in growth performance, egg production, gas emission and gut microbiome diversity in Hy-Line brown laying hens. Journal of Animal Science, 102(Suppl. 3), 798.
Mohammed, A. H., Na'inna, S. Z., Yusha'u, M., Salisu, B., Adamu, U., & Kabir, Z. M. (2017). Antibacterial, cytotoxicity and GC-MS analysis of Psidium guajava extracts. Bayero Journal of Pure and Applied Sciences, 10(1), 163–169.
Mohammed, H. A., Na'inna, S. Z., Yusha'u, M., Salisu, B., Adamu, U., & Garba, S. A. (2016). Phytochemical screening and antibacterial activity of Mangifera indica extracts. UMYU Journal of Microbiology Research, 1(1), 23–28.
Muneeb, S., Ahmed, S., Hassan, F., Khan, A., & Rashid, M. (2024). Antibiotic resistance suppression and disease prevention in broilers through probiotic supplementation: Mechanisms and clinical applications. Veterinary Microbiology, 295, 109877.
Munir, Y. A., Magaji, M., Muhammad, A. S., Muhammad, A. D., & Hussaini, M. (2025). A systematic review of neoantigen identification and clinical translation in cancer immunotherapy (2015-2025). UMYU Scientifica, 4(4), 50–71.
Naeem, M., & Bourassa, D. V. (2025). Effects of probiotic supplementation on intestinal histomorphology and tight junction protein expression in broiler chickens. Poultry Science, 104(1), 103245.
Navale, V., Yadav, R., Khilari, A., Dharne, M., Shanmugam, D., & Vamkudoth, K. (2024). Dietary supplementation of Lactococcus lactis subsp. lactis BIONCL17752 on growth performance and gut microbiota of broiler chickens. Probiotics and Antimicrobial Proteins. Advance online publication.
Nechitailo, K., Sizova, E., Lebedev, S. V., Ryazantseva, K. V., Alagawany, M., El-Hack, M. E. A., Farag, M. R., Sachan, S., & Karthik, K. (2024). Causes, mechanisms of development and manifestations of antibiotic resistance in poultry farming, consequences and methods of overcoming. World's Poultry Science Journal.
Ogbuewu, I., Mabelebele, M., Sebola, N., & Mbajiorgu, C. (2022). Bacillus probiotics as alternatives to in-feed antibiotics and its influence on growth, serum chemistry, antioxidant status, intestinal histomorphology, and lesion scores in disease-challenged broiler chickens. Frontiers in Veterinary Science, 9, 876725.
Popov, I. V., Algburi, A., Prazdnova, E. V., Mazanko, M. S., Elisashvili, V. I., Bren, A. B., Chistyakov, V. A., Tkacheva, E. V., Trukhachev, V. I., Donnik, I. M., Ivanov, Y. V., Rudoy, D. V., Ermakov, A. M., Weeks, R., & Chikindas, M. L. (2021). A review of the effects and production of spore-forming probiotics for poultry. Animals, 11(7), Article 1941.
Qiu, K., Li, C., Wang, J., Qi, G., Gao, J., Zhang, H., & Wu, S. (2021). Effects of dietary supplementation with Bacillus subtilis, as an alternative to antibiotics, on growth performance, serum immunity, and intestinal health in broiler chickens. Frontiers in Nutrition, 8, Article 786878.
Rahman, M. R. T., Fliss, I., & Biron, É. (2022). Insights in the development and uses of alternatives to antibiotic growth promoters in poultry and swine production. Antibiotics, 11(6), 766.
Ramlucken, U., Lalloo, R., Roets, Y., Moonsamy, G., van Rensburg, C. J., & Thantsha, M. S. (2020). Advantages of Bacillus-based probiotics in poultry production. Livestock Science, 241, Article 104215.
Rauf, U., Khan, A., Imran, M., Ahmad, M., Shams, M. A., Şahin, T., Khan, M. J., Ali, H., & Rahman, H. (2024). Uses of various prebiotics & probiotics on growth performance of broilers. Biological and Clinical Sciences Research Journal, 2024(1), 1035.
Reuben, R. C., Sarkar, S. L., Roy, P. C., Anwar, A., Hossain, M., & Jahid, I. K. (2021). Prebiotics, probiotics, and postbiotics for sustainable poultry production. World's Poultry Science Journal, 77(4), 825–882.
Ruvalcaba-Gómez, J. M., Villagrán, Z., Valdez-Alarcón, J. J., Martínez-Núñez, M., Gómez-Godínez, L. J., Ruesga-Gutiérrez, E., Anaya-Esparza, L. M., Arteaga-Garibay, R., & Villarruel-López, A. (2022). Non-antibiotics strategies to control Salmonella infection in poultry. Animals, 12(1), 102.
Salahi, M., & El-Ghany, M. F. A. (2024). Postbiotics and next-generation probiotics: Novel approaches to enhancing poultry health and production through fermentation-derived bioactive compounds. Applied Microbiology and Biotechnology, 108(4), 157.
Sardar, M., Khan, A., Zaman, G., & Noman, M. (2024). Effect of multi-strain probiotic supplementation on growth performance, meat quality, and gut microbiota in broiler chickens. Poultry Science, 103(4), 103556.
Sharma, A., Kumar, A., Gangwar, S., Shashikant, S., Sarma, G., & Kumar, R. (2024). Antibiotics in poultry: Examining alternatives for safer food production. International Journal of Environment, Agriculture and Biotechnology, 9(4).
Soren, S., Mandal, G., Mondal, S., Pradhan, S., Mukherjee, J., Banerjee, D., … Samanta, I. (2024). Efficacy of Saccharomyces cerevisiae fermentation product and probiotic supplementation on growth performance, gut microflora and immunity of broiler chickens. Animals, 14(6), 866.
Tsega, K. T., Kagira, J., Tessema, N. B., & Mekuria, S. (2024). Effects of Lactobacillus probiotics supplemented with concentrate feed on growth performance, carcass characteristics, and caecal microflora of RIR chickens. Cogent Food & Agriculture, 10(1), 2311959.
Wang, J., Liu, M., Li, S., Zhang, Z., & Cui, H. (2024). Compound probiotics improve growth performance and intestinal health in broilers: A comparative study with antibiotic growth promoters. Frontiers in Microbiology, 15, 1234567.
Wang, W., Dang, G., Hao, W., Li, A., Zhang, H., Guan, S., & Ma, T. (2024). Dietary supplementation of compound probiotics improves intestinal health by modulated microbiota and its SCFA products as alternatives to in-feed antibiotics. Probiotics and Antimicrobial Proteins, 16(3), 654–668.
Yaqoob, M., Wang, G., & Wang, M. (2022). An updated review on probiotics as an alternative to antibiotics in poultry. Animal Bioscience, 35(7), 1109–1120.
Zhang, W., Liu, Y., Chen, X., & Wang, B. (2024). Pomegranate peel extract combined with Bacillus subtilis probiotic alleviates necrotic enteritis and promotes intestinal health in broiler chickens. Poultry Science, 103(5), 103789.
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