Abou-Jaoudeh C, Andary J & Abou-Khalil R. 2024. Antibiotic residues in poultry products and bacterial resistance: A review in developing countries. Journal of Infection and Public Health, 17 (12): 102592. DOI: 10.1016/j.jiph.2024.102592.
Abou-Kassem DE, Elsadek MF, Abdel-Moneim AE, Mahgoub SA, Elaraby GM, Taha AE, Elshafie MM, Alkhawtani DM, Abd El-Hack ME & Ashour EA. 2021. Growth, carcass characteristics, meat quality, and microbial aspects of growing quail fed diets enriched with two different types of probiotics (Bacillus toyonensis and Bifidobacterium bifidum). Poultry Science, 100 (1): 84-93. DOI: 10.1016/j.psj.2020.04.019.
Acosta A, Tirkaso W, Nicolli F, Van Boeckel TP, Cinardi G & Song J. 2025. The future of antibiotic use in livestock. Nature Communications, 16 (1): 2469. DOI: 10.1038/s41467-025-56825-7.
Aghaei A, Tabatabaei S, Chaji M & Nazari M. 2010. Effects of dried whey (probiotic) and probiotics in laying hen’s performance and intestinal flora. Journal of Animal and Veterinary Advances, 9 (15): 1996-2000. DOI: 10.3923/javaa.2010.1996.2000.
Alaqil AA, Abbas AO, El-Beltagi HS, El-Atty HKA, Mehaisen GM & Moustafa ES. 2020. Dietary supplementation of probiotic Lactobacillus acidophilus modulates cholesterol levels, immune response, and productive performance of laying hens. Animals, 10: 1588. DOI: 10.3390/ani10091588.
AOAC. 2005. Official methods of analysis (18th ed.). Association of Official Analytical Chemists.
Aruwa CE, Pillay C, Nyaga MM & Sabiu S. 2021. Poultry gut health – microbiome functions, environmental impacts, microbiome engineering and advancements in characterization technologies. Journal of Animal Science and Biotechnology, 12: 1-5. DOI: 10.1186/s40104-021-00640-9.
Ashayerizadeh O, Dastar B, Shams Shargh M, Ashayerizadeh A & Mamooee M. 2009. Influence of antibiotic, prebiotic and probiotic supplementation to diets on carcass characteristics, hematological indices and internal organ size of young broiler chickens. Journal of Animal and Veterinary Advances, 8 (9): 1772-1776.
Ashour EA, Abd El-Hack ME, Alagawany M, Swelum AA, Osman AO, Saadeldin IM, Abdel-Hamid M & Hussein ES. 2019. Use of whey protein concentrates in broiler diets. Journal of Applied Poultry Research, 28 (4): 1078-1088. DOI: 10.3382/japr/pfz070.
Belhadj Slimen I, Yerou H, Ben Larbi M, M'Hamdi N & Najar T. 2023. Insects as an alternative protein source for poultry nutrition: A review. Frontiers in Veterinary Science, 10: 1200031. DOI: 10.3389/fvets.2023.1200031.
Biasato I, Gasco L, De Marco M, Renna M, Rotolo L, Dabbou S, Capucchio MT, Biasibetti E, Tarantola M, Sterpone L & Cavallarin L. 2018. Yellow mealworm larvae (Tenebrio molitor) inclusion in diets for male broiler chickens: Effects on growth performance, gut morphology, and histological findings. Poultry Science, 97: 540-548. DOI: 10.3382/ps/pex308.
Biswas A, Junaid N, Kumawat M, Qureshi S & Mandal AB. 2018. Influence of dietary supplementation of probiotics on intestinal histo-morphometry, blood chemistry and gut health status of broiler chickens. South African Journal of Animal Science, 48 (5): 968-976. DOI: 10.4314/sajas.v48i5.17.
Cao F, Ding Q, Zhuge H, Lai S, Chang K, Le C, Yang G, Valencak TG, Li S & Ren D. 2023. Lactobacillus plantarum ZJUIDS14 alleviates non-alcoholic fatty liver disease in mice in association with modulation in the gut microbiota. Frontiers in Nutrition, 9: 1071284. DOI: 10.3389/fnut.2022.1071284.
Colombino E, Biasato I, Ferrocino I, Bellezza Oddon S, Caimi C, Gariglio M, Dabbou S, Caramori M, Battisti E, Zanet S & Ferroglio E. 2021. Effect of insect live larvae as environmental enrichment on poultry gut health: Gut mucin composition, microbiota and local immune response evaluation. Animals, 11 (10): 2819. DOI: 10.3390/ani11102819.
Dalle Zotte A, Singh Y, Palumbo B, Contiero B & Cullere M. 2024. Live yellow mealworm (Tenebrio molitor) larvae: A promising nutritional enrichment for laying quails. Poultry Science, 103: 103759. DOI: 10.1016/j.psj.2024.103759.
Das B, Desai M, Bhagora NJ, Koringa P, Pathan M, Thakor JC, Savaliya FP, Adil S & Hati S. 2025. Influence of fermented whey protein fractions on the growth performance, haematological traits, serum biochemistry, faecal and caeca microbiota of broiler chickens. Scientific Reports, 15 (1): 23678. DOI: 10.1038/s41598-025-09289-0.
Derakhshan M, Ghasemian SO & Gholami-Ahangaran M. 2023. The effects of probiotic and phytase on growth performance, biochemical parameters and antioxidant capacity in broiler chickens. Veterinary Medicine and Science, 9 (2): 860-866. DOI: 10.1002/vms3.1075.
Eisen EJ, Bohren BB & McKean HE. 1962. The Haugh unit as a measure of egg albumen quality. Poultry Science, 41: 1461-1468. DOI: 10.3382/ps.0411461.
Hajati H & Negarandeh R. 2021. Does mealworm (Tenebrio molitor) can be considered as a functional additive in Japanese quails' diets? Iranian Journal of Applied Animal Science, 11: 835-843.
Hall WL, Millward DJ, Long SJ & Morgan LM. 2003. Casein and whey exert different effects on plasma amino acid profiles, gastrointestinal hormone secretion and appetite. British Journal of Nutrition, 89 (2): 239-248. DOI: 10.1079/BJN2002760.
Hamzehee Z, Torki M, Rashidi K & Abdolmohammadi A. 2025. Effects of dietary Bacillus coagulans, whey powder, and their interaction on the performance of Lohmann LSL-lite laying hens in the late production phase. PLoS One, 20 (5): e0322557. DOI: 10.1371/journal.pone.0322557.
He T, Long S, Mahfuz S, Wu D, Wang X, Wei X & Piao X. 2019. Effects of probiotics as antibiotics substitutes on growth performance, serum biochemical parameters, intestinal morphology, and barrier function of broilers. Animals, 9 (11): 985. DOI: 10.3390/ani9110985.
Hilmi M, Prastujati AU, Khusnah A, Khirzin MH & Yannuarista D. 2020. Influence of adding fermented whey cheese into drinking water of laying hens. Journal of World’s Poultry Research, 10 (1): 81-86. DOI: 10.36380/jwpr.2020.11.
Hong J, Han T & Kim YY. 2020. Mealworm (Tenebrio molitor larvae) as an alternative protein source for monogastric animal: A review. Animals, 10 (11): 2068. DOI: 10.3390/ani10112068.
Idowu PA, Mpofu TJ, Magoro AM, Modiba MC, Nephawe KA & Mtileni B. 2025. Impact of probiotics on chicken gut microbiota, immunity, behavior, and productive performance – A systematic review. Frontiers in Animal Science, 6: 1562527. DOI: 10.3389/fanim.2025.1562527.
Iji PA, Hughes RJ, Choct M & Tive DR. 2001. Intestinal structure and function of broiler chickens on wheat-based diets supplemented with a microbial enzyme. Asian-Australasian Journal of Animal Sciences, 14 (1): 54-60. DOI: 10.5713/ajas.2001.54.
Islam M & Yang CJ. 2017. Efficacy of mealworm and super mealworm larvae probiotics as an alternative to antibiotics challenged orally with Salmonella and Escherichia coli infection in broiler chicks. Poultry Science, 96 (1): 27-34. DOI: 10.3382/ps/pew220.
Ito Y, Kihara M, Nakamura E, Yonezawa S & Yoshizaki N. 2003. Vitellogenin transport and yolk formation in the quail ovary. Zoological Science, 20 (6): 717-726. DOI: 10.2108/zsj.20.717.
Jazi V, Ashayerizadeh A, Toghyani M, Shabani A, Tellez G & Toghyani M. 2018. Fermented soybean meal exhibits probiotic properties when included in Japanese quail diet in replacement of soybean meal. Poultry Science, 97 (6): 2113-2122. DOI: 10.3382/ps/pey071.
Jazi V, Farahi M, Khajali F, Abousaad Sh, Ferket P & Assadi Soumeh E. 2020. Effect of dietary supplementation of whey powder and Bacillus subtilis on growth performance, gut and hepatic function, and muscle antioxidant capacity of Japanese quail. Journal of Animal Physiology and Animal Nutrition, 104 (3): 886-897. DOI: 10.1111/jpn.13323.
Kazemi SA, Ahmadi H & Karimi Torshizi MA. 2019. Evaluating two multistrain probiotics on growth performance, intestinal morphology, lipid oxidation and ileal microflora in chickens. Journal of Animal Physiology and Animal Nutrition, 103 (5): 1399-1407. DOI: 10.1111/jpn.13124.
Khan RU & Naz S. 2013. The applications of probiotics in poultry production. World’s Poultry Science Journal, 69 (3): 621-632. DOI: 10.1017/S0043933913000627.
Kröncke N & Benning R. 2023. Influence of dietary protein content on the nutritional composition of mealworm larvae (Tenebrio molitor L.). Insects, 14 (3): 261. DOI: 10.3390/insects14030261.
Latorre JD, Hernandez-Velasco X, Kallapura G, Menconi A, Pumford NR, Morgan MJ, Layton SL, Bielke LR, Hargis BM & Tellez G. 2014. Evaluation of germination, distribution, and persistence of Bacillus subtilis spores through the gastrointestinal tract of chickens. Poultry Science, 93 (7): 1793-1800. DOI: 10.3382/ps.2013-03809.
Madureira AR, Pereira CI, Gomes AM, Pintado ME & Malcata FX. 2007. Bovine whey proteins – Overview on their main biological properties. Food Research International, 40 (10): 1197-1211. DOI: 10.1016/j.foodres.2007.07.005.
Manafi M, Khalaji S & Hedayati M. 2016. Assessment of a probiotic containing Bacillus subtilis on the performance and gut health of laying Japanese quails (Coturnix coturnix japonica). Brazilian Journal of Poultry Science, 18: 599-606. DOI: 10.1590/1806-9061-2016-0220.
Marono S, Piccolo G, Loponte R, Di Meo C, Attia YA, Nizza A & Bovera F. 2015. In vitro crude protein digestibility of Tenebrio molitor and Hermetia illucens insect meals and its correlation with chemical composition traits. Italian Journal of Animal Science, 14 (3): 338-349. DOI: 10.4081/ijas.2015.3889.
Mohammadian A, Mehdizadeh SM, Lotfollahian H, Mirzaei F & Noroozian H. 2013. Influence of dietary probiotic (Biomin IMBO) on performance of laying hen. Agricultural Science, 4: 23-26. DOI: 10.4236/as.2013.41004.
Mohebbifar A, Kashani S, Afsari M & Torki M. 2013. Effects of commercial prebiotic and probiotics of diet on performance of laying hens, egg traits and some blood parameters. Annals of Research Review in Biology, 3: 921-934.
Naeem M & Bourassa D. 2025. Probiotics in poultry: Unlocking productivity through microbiome modulation and gut health. Microorganisms, 13 (2): 257. DOI: 10.3390/microorganisms13020257.
National Research Council (NRC). 1994. Nutrient requirements of poultry (9th revised ed.). National Academy Press.
Neves DP, Banhazi TM & Nääs IA. 2014. Feeding behaviour of broiler chickens: A review on the biomechanical characteristics. Brazilian Journal of Poultry Science, 16 (1): 1-16. DOI: 10.1590/1516-635x16021-16.
Pandey KR, Naik SR & Vakil BV. 2015. Probiotics, prebiotics and synbiotics – A review. Journal of Food Science and Technology, 52: 7577-7587. DOI: 10.1007/s13197-015-1921-1.
Pineda-Quiroga C, Camarinha-Silva A, Borda Molina D, Atxaerandio R, Ruiz R & Garcia-Rodriguez A. 2018. Feeding broilers with dry whey powder and whey protein concentrate affected productive performance, ileal digestibility of nutrients and cecal microbiota community. Animal, 12 (4): 692-700. DOI: 10.1017/S1751731117002208.
Ricke SC. 2021. Prebiotics and alternative poultry production. Poultry Science, 100 (7): 101174. DOI: 10.1016/j.psj.2021.101174.
Rubin DC & Levin MS. 2016. Mechanisms of intestinal adaptation. Best Practice & Research Clinical Gastroenterology, 30 (2): 237-248. DOI: 10.1016/j.bpg.2016.03.007.
Saksrithai K, Willits NH & King AJ. 2019. Production performance of laying hens at peak lay, sulfur compounds in manure, and selected serum profiles: Efficacy of Lactobacillus species as probiotics. Animal Production Science, 60: 296-304. DOI: 10.1071/AN18724.
Samli HE, Senkoylu N, Koc F, Kanter M & Agma A. 2007. Effects of Enterococcus faecium and dried whey on broiler performance, gut histomorphology and intestinal microbiota. Archives of Animal Nutrition, 61 (1): 42-49. DOI: 10.1080/17450390601106655.
SAS Institute. 2015. SAS/STAT user's guide, Version 9.4. SAS Institute Inc.
Sedgh-Gooya S, Torki M, Darbemamieh M, Khamisabadi H & Abdolmohamadi A. 2021. Effect of dietary inclusion of yellow mealworm (Tenebrio molitor) larvae meal on productive performance, egg quality indices and blood parameters of laying hens. Animal Production Science, 61 (13): 1365-1372. DOI: 10.1071/AN20102.
Sedgh-Gooya S, Torki M, Darbemamieh M, Khamisabadi H & Abdolmohamadi A. 2022. Growth performance and intestinal morphometric features of broiler chickens fed on dietary inclusion of yellow mealworm (Tenebrio molitor) larvae powder. Veterinary Medicine and Science, 8 (4): 2050-2058. DOI: 10.1002/vms3.881.
Shariat Zadeh Z, Kheiri F & Faghani M. 2020. Productive performance, egg-related indices, blood profiles, and interferon-γ gene expression of laying Japanese quails fed on Tenebrio molitor larva meal as a replacement for fish meal. Italian Journal of Animal Science, 19 (1): 274-281. DOI: 10.1080/1828051X.2020.1722970.
Sharifi MR, Shams-Shargh M, Dastar B & Hassani S. 2011. The effect of dietary protein levels and synbiotic on performance parameters, blood characteristics and carcass yields of Japanese quail (Coturnix coturnix japonica). Italian Journal of Animal Science, 10 (1): e4: 16-21. DOI: 10.4081/ijas.2011.e4.
Siadati SA, Ebrahimnezhad Y, Salehi Jouzani G & Shayegh J. 2018. Evaluation of the probiotic potential of some native Lactobacillus strains on the laying performance and egg quality parameters of Japanese quails. Iranian Journal of Applied Animal Science, 8 (4): 703-712.
Slizewska K, Markowiak-Kopeć P, Zbikowski A & Szeleszczuk P. 2020. The effect of synbiotic preparations on the intestinal microbiota and her metabolism in broiler chickens. Scientific Reports, 10: 1-13. DOI: 10.1038/s41598-020-61256-z.
Smith NM, Maloney NG, Shaw S, Horgan GW, Fyfe C, Martin JC, Suter A, Scott KP & Johnstone AM. 2020. Daily fermented whey consumption alters the fecal short-chain fatty acid profile in healthy adults. Frontiers in Nutrition, 7: 165. DOI: 10.3389/fnut.2020.00165.
Stastnik O, Novotny J, Roztocilova A, Kouril P, Kumbar V, Cernik J, Kalhotka L, Pavlata L, Lacina L & Mrkvicova E. 2021. Safety of mealworm meal in layer diets and their influence on gut morphology. Animals, 11 (5): 1439. DOI: 10.3390/ani11051439.
Sultan A, Ahmad U, Islam Z, Ahmad S, Naz S, Alhidary IA, Abdelrahman SH & Chandrasekaran A. 2024. Effect of multi-strain probiotic supplementation as alternative to antibiotics on growth, blood biochemistry, ileal digestibility, bacterial growth, and gut histomorphology of broiler fed on poultry byproduct meal. Journal of Applied Animal Research, 52 (1): 1-8. DOI: 10.1080/09712119.2024.2377243.
Szczurek W, Szymczyk B, Arczewska-Włosek A, Józefiak D & Alloui MN. 2013. The effects of dietary whey protein concentrate level on performance, selected intestinal tract and blood parameters, and thiobarbituric acid reactive substances in the liver and breast meat of broiler chickens. Journal of Animal and Feed Sciences, 22: 342-353.
Tang SGH, Sieo CC, Ramasamy K, Saad WZ, Wong HK & Ho YW. 2017. Performance, biochemical and haematological responses, and relative organ weights of laying hens fed diets supplemented with prebiotic, probiotic and synbiotic. BMC Veterinary Research, 13 (1): 1-12. DOI: 10.1186/s12917-017-1160-y.
Tsiouris V, Kontominas MG, Filioussis G, Chalvatzi S, Giannenas I, Papadopoulos G, Koutoulis K, Fortomaris P & Georgopoulou I. 2020. The effect of whey on performance, gut health and bone morphology parameters in broiler chicks. Foods, 9 (5): 588. DOI: 10.3390/foods9050588.
Tufan T & Bolacali M. 2017. Effects of dietary addition of synbiotic on the performance, carcass traits, and serum parameters of Japanese quails. Brazilian Journal of Veterinary Research and Animal Science, 46: 805-813. DOI: 10.1590/s1806-92902017001000003.
Yang X, Bist RB, Subedi S, Guo Y & Chai L. 2025. The application of probiotics and prebiotics in poultry production and impacts on environment: A review. Encyclopedia, 5 (1): 35. DOI: 10.3390/encyclopedia5010035.
Zadeh ZS, Kheiri F & Faghani M. 2019. Use of yellow mealworm (Tenebrio molitor) as a protein source on growth performance, carcass traits, meat quality and intestinal morphology of Japanese quails (Coturnix japonica). Veterinary and Animal Science, 8: 100066. DOI: 10.1016/j.vas.2019.100066.