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Review

Role of supplemental oligosaccharides in poultry diets

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References

  • Adhikari, P., D. E. Cosby, N. A. Cox, M. S. Franca, S. M. Williams, R. M. Gogal Jr, C. W. Ritz, and W. K. Kim. 2018. “Effect of Dietary Fructooligosaccharide Supplementation on Internal Organs Salmonella Colonization, Immune Response, Ileal Morphology, and Ileal Immunohistochemistry in Laying Hens Challenged with Salmonella Enteritidis.” Poultry Science 97 (7): 2525–2533. doi:10.3382/ps/pey101.
  • Akpinar, O., K. Erdogan, and S. Bostanci. 2009. “Enzymatic Production of Xylooligosaccharide from Selected Agricultural Wastes.” Food and Bioproducts Processing 87 (2): 145–151. doi:10.1016/j.fbp.2008.09.002.
  • Alagawany, M., S. S. Elnesr, and M. Farag. 2018. “The Role of Exogenous Enzymes in Promoting Growth and Improving Nutrient Digestibility in Poultry.” Iranian Journal of Veterinary Research 19 (3): 157–164.
  • Amerah, A., L. Romero, A. Awati, and V. Ravindran. 2017. “Effect of Exogenous Xylanase, Amylase, and Protease as Single or Combined Activities on Nutrient Digestibility and Growth Performance of Broilers Fed Corn/soy Diets.” Poultry Science 96 (4): 807–816. doi:10.3382/ps/pew297.
  • Ashraf, S., H. Zaneb, H. Rehman, S. Masood, S. Yousaf, M. Usman, A. Sikandar, and H. Rehman. 2017. “Influence of β-galacto-oligosaccharide on Growth Performance and Components of Intestinal Barrier in Broilers during Heat Stress.” South African Journal of Animal Science 47 (5): 616–625. doi:10.4314/sajas.v47i5.4.
  • Aulrich, K., and G. Flachowsky. 2001. “Studies on the Mode of Action of Non‐starch‐polysaccharides (Nsp)‐degrading Enzymes in Vitro: 2. Communication: Effects on Nutrient Release and Hydration Properties.” Archives of Animal Nutrition 54 (1): 19–32. doi:10.1080/17450390109381963.
  • Ávila, P. F., M. Martins, F. A. de Almeida Costa, and R. Goldbeck. 2020. “Xylooligosaccharides Production by Commercial Enzyme Mixture from Agricultural Wastes and Their Prebiotic and Antioxidant Potential.” Bioactive Carbohydrates and Dietary Fibre 24: 100234. doi:10.1016/j.bcdf.2020.100234.
  • Awaad, M., A. Atta, W. El-Ghany, M. Elmenawey, K. Ahmed, A. Hassan, A. Nada, G. Abdelaleem, and A. Kawkab. 2011. “Effect of a Specific Combination of Mannan-oligosaccharides and β-glucans Extracted from Yeast Cell Wall on the Health Status and Growth Performance of Ochratoxicated Broiler Chickens.” Journal of American Science 7 (3): 82–96.
  • Bajpai, P. 2014. “Chapter 2 - Xylan: Occurrence and Structure.” In Xylanolytic Enzymes, edited by P. Bajpai, 9–18. Amsterdam: Academic Press.
  • Baker, J. T., M. E. Duarte, D. M. Holanda, and S. W. Kim. 2021. “Friend or Foe? Impacts of Dietary Xylans, Xylooligosaccharides, and Xylanases on Intestinal Health and Growth Performance of Monogastric Animals.” Animals 11 (3): 609. doi:10.3390/ani11030609.
  • Bao, Y., and M. Choct. 2010. “Dietary NSP Nutrition and Intestinal Immune System for Broiler Chickens.” World’s Poultry Science Journal 66 (3): 511–518. doi:10.1017/S0043933910000577.
  • Baurhoo, B., L. Phillip, and C. Ruiz-Feria. 2007. “Effects of Purified Lignin and Mannan Oligosaccharides on Intestinal Integrity and Microbial Populations in the Ceca and Litter of Broiler Chickens.” Poultry Science 86 (6): 1070–1078. doi:10.1093/ps/86.6.1070.
  • Bautil, A., J. Verspreet, J. Buyse, P. Goos, M. Bedford, and C. Courtin. 2020. “Arabinoxylan-oligosaccharides Kick-start Arabinoxylan Digestion in the Aging Broiler.” Poultry Science 99 (5): 2555–2565. doi:10.1016/j.psj.2019.12.041.
  • Bednarczyk, M., K. Stadnicka, I. Kozłowska, C. Abiuso, A. D. Siria Tavaniello, Dankowiakowska, A., A. Sławińska, and G. Maiorano. 2016. “Influence of Different Prebiotics and Mode of Their Administration on Broiler Chicken Performance.” Animal 10 (8): 1271–1279. doi:10.1017/S1751731116000173.
  • Biggs, P., C. M. Parsons, and G. C. Fahey. 2007. “The Effects of Several Oligosaccharides on Growth Performance, Nutrient Digestibilities, and Cecal Microbial Populations in Young Chicks.” Poultry Science 86 (11): 2327–2336. doi:10.3382/ps.2007-00427.
  • Bozkurt, M., K. Kucukyilmaz, A. Çatli, and M. Çinar. 2008. “Growth Performance and Slaughter Characteristics of Broiler Chickens Fed with Antibiotic, Mannan Oligosaccharide and Dextran Oligosaccharide Supplemented Diets.” International Journal of Poultry Science 7 (10): 669–677. doi:10.3923/ijps.2008.969.977.
  • Broekaert, W. F., C. M. Courtin, K. Verbeke, T. V. de Wiele, W. Verstraete, and J. A. Delcour. 2011. “Prebiotic and Other Health-related Effects of Cereal-derived Arabinoxylans, Arabinoxylan-oligosaccharides, and Xylooligosaccharides.” Critical Reviews in Food Science and Nutrition 51 (2): 178–194. doi:10.1080/10408390903044768.
  • Carvalho, A. F. A., P. de Oliva Neto, D. F. Da Silva, and G. M. Pastore. 2013. “Xylo-oligosaccharides from Lignocellulosic Materials: Chemical Structure, Health Benefits and Production by Chemical and Enzymatic Hydrolysis.” Food Research International 51 (1): 75–85. doi:10.1016/j.foodres.2012.11.02.
  • Chacher, M., Z. Kamran, U. Ahsan, S. Ahmad, K. Koutoulis, H. Q. U. Din, and Ö. Cengiz. 2017. “Use of Mannan Oligosaccharide in Broiler Diets: An Overview of Underlying Mechanisms.” World’s Poultry Science Journal 73 (4): 831–844. doi:10.1017/S0043933917000757.
  • Chapla, D., P. Pandit, and A. Shah. 2012. “Production of Xylooligosaccharides from Corncob Xylan by Fungal Xylanase and Their Utilization by Probiotics.” Bioresource Technology 115: 215–221. doi:10.1016/j.biortech.2011.10.083.
  • Cheled-Shoval, S., E. Amit-Romach, M. Barbakov, and Z. Uni. 2011. “The Effect of in Ovo Administration of Mannan Oligosaccharide on Small Intestine Development during the Pre-and Posthatch Periods in Chickens.” Poultry Science 90 (10): 2301–2310. doi:10.3382/ps.2011-01488.
  • Cho, H. M., G. González-Ortiz, D. Melo-Durán, J. M. Heo, G. Cordero, M. R. Bedford, and J. C. Kim. 2020. “Stimbiotic Supplementation Improved Performance and Reduced Inflammatory Response via Stimulating Fiber Fermenting Microbiome in Weaner Pigs Housed in a Poor Sanitary Environment and Fed an Antibiotic-free Low Zinc Oxide Diet.” PloS One 15 (11): e0240264. doi:10.1371/journal.pone.0240264.
  • Chotinsky, D. 2015. “The Use of Enzymes to Improve Utilization of Nutrient in Poultry Diets.” Bulgarian Journal of Agricultural Science 21 (2): 429–435.
  • Courtin, C. M., W. F. Broekaert, K. Swennen, O. Lescroart, O. Onagbesan, J. Buyse, E. Decuypere, T. V. de Wiele, M. Marzorati, and W. Verstraete. 2008a. “Dietary Inclusion of Wheat Bran Arabinoxylooligosaccharides Induces Beneficial Nutritional Effects in Chickens.” Cereal Chemistry 85 (5): 607–613. doi:10.1094/CCHEM-85-5-0607.
  • Courtin, C. M., K. Swennen, W. F. Broekaert, Q. Swennen, J. Buyse, E. Decuypere, C. W. Michiels, B. De Ketelaere, and J. A. Delcour. 2008b. “Effects of Dietary Inclusion of Xylooligo‐saccharides, Arabinoxylooligosaccha‐rides and Soluble Arabinoxylan on the Microbial Composition of Caecal Contents of Chickens.” Journal of the Science of Food and Agriculture 88 (14): 2517–2522. doi:10.1002/jsfa.3373.
  • Courtois, J. 2009. “Oligosaccharides from Land Plants and Algae: Production and Applications in Therapeutics and Biotechnology.” Current Opinion in Microbiology 12 (3): 261–273. doi:10.1016/j.mib.2009.04.007.
  • Cowieson, A., M. Hruby, and E. M. Pierson. 2006. “Evolving Enzyme Technology: Impact on Commercial Poultry Nutrition.” Nutrition Research Reviews 19 (1): 90–103. doi:10.1079/NRR2006121.
  • Craig, A., F. Khattak, P. Hastie, M. R. Bedford, and O. Olukosi. 2020. “Xylanase and Xylo-oligosaccharide Prebiotic Improve the Growth Performance and Concentration of Potentially Prebiotic Oligosaccharides in the Ileum of Broiler Chickens.” British Poultry Science 61 (1): 70–78. doi:10.1080/00071668.2019.167331.
  • Crittenden, R. G., and M. J. Playne. 1996. “Production, Properties and Applications of Food-grade Oligosaccharides.” Trends in Food Science & Technology 7 (11): 353–361. doi:10.1016/S0924-2244(96)10038-8.
  • Cruz-Requena, M., S. Escobedo-García, J. Salas-Tovar, Y. Mora-Cura, M. Chávez-González, F. Castillo-Reyes, A. Flores-Gallegos, and R. Rodríguez-Herrera. 2019. “Definitions and Regulatory Perspectives of Dietary Fibers.” In Dietary Fiber: Properties, Recovery, and Applications, 1–25. Amsterdam: Academic Press. doi:10.1016/B978-0-12-816495-2.00001-0.
  • Cummings, J. H., G. T. Macfarlane, and H. N. Englyst. 2001. “Prebiotic Digestion and Fermentation.” The American Journal of Clinical Nutrition 73 (2): 415s–420s. doi:10.1093/ajcn/73.2.415s.
  • De Maesschalck, C., V. Eeckhaut, L. Maertens, L. De Lange, L. Marchal, C. Nezer, S. De Baere, S. Croubels, G. Daube, and J. Dewulf. 2015. “Effects of Xylo-oligosaccharides on Broiler Chicken Performance and Microbiota.” Applied and Environmental Microbiology 81 (17): 5880–5888. doi:10.1128/AEM.01616-15.
  • De Vries, S., A. Pustjens, H. Schols, W. Hendriks, and W. Gerrits. 2012. “Improving Digestive Utilization of Fiber-rich Feedstuffs in Pigs and Poultry by Processing and Enzyme Technologies: A Review.” Animal Feed Science and Technology 178 (3–4): 123–138. doi:10.1016/j.anifeedsci.2012.10.004.
  • Ding, X., D. Li, S. Bai, J. Wang, Q. Zeng, Z. Su, Y. Xuan, and K. Zhang. 2018. “Effect of Dietary Xylooligosaccharides on Intestinal Characteristics, Gut Microbiota, Cecal Short-chain Fatty Acids, and Plasma Immune Parameters of Laying Hens.” Poultry Science 97 (3): 874–881. doi:10.3382/ps/pex372.
  • Donalson, L., W. Kim, V. Chalova, P. Herrera, J. McReynolds, V. Gotcheva, D. Vidanović, C. Woodward, L. Kubena, and D. Nisbet. 2008. “In Vitro Fermentation Response of Laying Hen Cecal Bacteria to Combinations of Fructooligosaccharide Prebiotics with Alfalfa or a Layer Ration.” Poultry Science 87 (7): 1263–1275. doi:10.3382/ps.2007-00179.
  • Engberg, R., M. Hedemann, S. Steenfeldt, and B. Jensen. 2004. “Influence of Whole Wheat and Xylanase on Broiler Performance and Microbial Composition and Activity in the Digestive Tract.” Poultry Science 83 (6): 925–938. doi:10.1093/ps/83.6.925.
  • Eseceli, H., E. Demir, N. Degirmencioglu, and M. Bilgic. 2010. “The Effects of Bio-Mos® Mannan Oligosaccharide and Antibiotic Growth Promoter Performance of Broilers.” Journal of Animal Veterinary Advances 9 (2): 392–395. doi:10.3923/javaa.2010.392.395.
  • Faustino, M., J. Durão, C. F. Pereira, M. E. Pintado, and A. P. Carvalho. 2021. “Mannans and Mannan Oligosaccharides (MOS) from Saccharomyces cerevisiae–A Sustainable Source of Functional Ingredients.” Carbohydrate Polymers 272: 118467. doi:10.1016/j.carbpol.2021.118467.
  • Fernandez, F., M. Hinton, and B. V. Gils. 2002. “Dietary Mannan-oligosaccharides and Their Effect on Chicken Caecal Microflora in Relation to Salmonella Enteritidis Colonization.” Avian Pathology 31 (1): 49–58. doi:10.1080/03079450120106000.
  • Funane, K., K. Terasawa, Y. Mizuno, H. Ono, T. Miyagi, S. Gibu, T. Tokashiki, Y. Kawabata, Y.-M. Kim, and A. Kimura. 2007. “A Novel Cyclic Isomaltooligosaccharide (Cycloisomaltodecaose, CI-10) Produced by Bacillus Circulans T-3040 Displays Remarkable Inclusion Ability Compared with Cyclodextrins.” Journal of Biotechnology 130 (2): 188–192. doi:10.1016/j.jbiotec.2007.03.009.
  • Ghasemian, M., and R. Jahanian. 2016. “Dietary Mannan-oligosaccharides Supplementation Could Affect Performance, Immunocompetence, Serum Lipid Metabolites, Intestinal Bacterial Populations, and Ileal Nutrient Digestibility in Aged Laying Hens.” Animal Feed Science and Technology 213: 81–89. doi:10.1016/j.anifeedsci.2015.12.012.
  • Gibson, G. R., and M. B. Roberfroid. 1995. “Dietary Modulation of the Human Colonic Microbiota: Introducing the Concept of Prebiotics.” The Journal of Nutrition 125 (6): 1401–1412. doi:10.1093/jn/125.6.1401.
  • González-Ortiz, G., T. T. Dos Santos, and M. R. Bedford. 2021. “Evaluation of Xylanase and a Fermentable Xylo-oligosaccharide on Performance and Ileal Digestibility of Broiler Chickens Fed Energy and Amino Acid Deficient Diets.” Animal Nutrition 7 (2): 488–495. doi:10.1016/j.aninu.2020.07.008.
  • Hooge, D. M. 2004. “Meta-analysis of Broiler Chicken Pen Trials Evaluating Dietary Mannan Oligosaccharide, 1993-2003.” International Journal of Poultry Science 3 (3): 163–174. doi:10.3923/ijps.2004.163.174.
  • Iji, P. A., A. A. Saki, and D. R. Tivey. 2001. “Intestinal Structure and Function of Broiler Chickens on Diets Supplemented with a Mannan Oligosaccharide.” Journal of the Science of Food and Agriculture 81 (12): 1186–1192. doi:10.1002/jsfa.925.
  • Jahanian, R., and M. Ashnagar. 2015. “Effect of Dietary Supplementation of Mannan-oligosaccharides on Performance, Blood Metabolites, Ileal Nutrient Digestibility, and Gut Microflora in Escherichia Coli-challenged Laying Hens.” Poultry Science 94 (9): 2165–2172. doi:10.3382/ps/pev180.
  • Jommuengbout, P., S. Pinitglang, K. L. Kyu, and K. Ratanakhanokchai. 2009. “Substrate-binding Site of Family 11 Xylanase from Bacillus Firmus K-1 by Molecular Docking.” Bioscience, Biotechnology, and Biochemistry 73 (4): 833–839. doi:10.1271/bbb.80731.
  • Jung, S., R. Houde, B. Baurhoo, X. Zhao, and B. Lee. 2008. “Effects of Galacto-oligosaccharides and a Bifidobacteria Lactis-based Probiotic Strain on the Growth Performance and Fecal Microflora of Broiler Chickens.” Poultry Science 87 (9): 1694–1699. doi:10.3382/ps.2007-00489.
  • Katapodis, P., and P. Christakopoulos. 2008. “Enzymic Production of Feruloyl Xylo-oligosaccharides from Corn Cobs by a Family 10 Xylanase from Thermoascus Aurantiacus.” LWT-Food Science and Technology 41 (7): 1239–1243. doi:10.1016/j.lwt.2007.08.004.
  • Kim, W., S. Bloomfield, and S. Ricke. 2011. “Effects of Age, Vitamin D3, and Fructooligosaccharides on Bone Growth and Skeletal Integrity of Broiler Chicks.” Poultry Science 90 (11): 2425–2432. doi:10.3382/ps.2011-01475.
  • Kim, S., M. J. Jang, S. Y. Kim, Y. Yang, H. O. Pavlidis, and S. C. Ricke. 2019. “Potential for Prebiotics as Feed Additives to Limit Foodborne Campylobacter Establishment in the Poultry Gastrointestinal Tract.” Frontiers in Microbiology 10: 91. doi:10.3389/fmicb.2019.00091.
  • Kim, S., W. Kim, and I. K. Hwang. 2003. “Optimization of the Extraction and Purification of Oligosaccharides from Defatted Soybean Meal.” International Journal of Food Science and Technology 38 (3): 337–342. doi:10.1046/j.1365-2621.2003.00679.x.
  • Kiran, E. U., O. Akpinar, and U. Bakir. 2013. “Improvement of Enzymatic Xylooligosaccharides Production by the Co-utilization of Xylans from Different Origins.” Food and Bioproducts Processing 91 (4): 565–574. doi:10.1016/j.fbp.2012.12.002.
  • Lee, S., J. Apajalahti, K. Vienola, G. González-Ortiz, C. Fontes, and M. Bedford. 2017. “Age and Dietary Xylanase Supplementation Affects Ileal Sugar Residues and Short Chain Fatty Acid Concentration in the Ileum and Caecum of Broiler Chickens.” Animal Feed Science and Technology 234: 29–42. doi:10.1016/j.anifeedsci.2017.07.017.
  • Li, D., X. Ding, K. Zhang, S. Bai, J. Wang, Q. Zeng, Z. Su, and L. Kang. 2017. “Effects of Dietary Xylooligosaccharides on the Performance, Egg Quality, Nutrient Digestibility and Plasma Parameters of Laying Hens.” Animal Feed Science and Technology 225: 20–26. doi:10.1016/j.anifeedsci.2016.12.010.
  • Li, X., L. Liu, K. Li, K. Hao, and C. Xu. 2007. “Effect of Fructooligosaccharides and Antibiotics on Laying Performance of Chickens and Cholesterol Content of Egg Yolk.” British Poultry Science 48 (2): 185–189. doi:10.1080/00071660701261310.
  • Liu, W.-C., and I.-H. Kim. 2017. “Effects of Dietary Xylanase Supplementation on Performance and Functional Digestive Parameters in Broilers Fed Wheat-based Diets.” Poultry Science 96 (3): 566–573. doi:10.3382/ps/pew258.
  • Lodhi, G., Y.-S. Kim, J.-W. Hwang, S.-K. Kim, Y.-J. Jeon, J.-Y. Je, C.-B. Ahn, S.-H. Moon, B.-T. Jeon, and P.-J. Park. 2014. “Chitooligosaccharide and Its Derivatives: Preparation and Biological Applications.” BioMed Research International 2014: 654913. doi:10.1155/2014/654913.
  • Long, L., D. Tian, R. Zhai, X. Li, Y. Zhang, J. Hu, F. Wang, and J. Saddler. 2018. “Thermostable Xylanase-aided Two-stage Hydrolysis Approach Enhances Sugar Release of Pretreated Lignocellulosic Biomass.” Bioresource Technology 257: 334–338. doi:10.1016/j.biortech.2018.02.104.
  • Mahmoud, U. T., and M. S. Elsayed. 2017. “Behavioral and Physiological Effects of Mannan-oligosaccharide and β-glucan Prebiotic Combination on Heat Stressed Broiler Chickens.” Journal of Advanced Veterinary Research 7 (3): 81–86.
  • Malgas, S., and B. I. Pletschke. 2019. “The Effect of an Oligosaccharide Reducing-end Xylanase, BhRex8A, on the Synergistic Degradation of Xylan Backbones by an Optimised Xylanolytic Enzyme Cocktail.” Enzyme and Microbial Technology 122: 74–81. doi:10.1016/j.enzmictec.2018.12.010.
  • McLoughlin, R. F., B. S. Berthon, M. E. Jensen, K. J. Baines, and L. G. Wood. 2017. “Short-chain Fatty Acids, Prebiotics, Synbiotics, and Systemic Inflammation: A Systematic Review and Meta-analysis.” The American Journal of Clinical Nutrition 106 (3): 930–945. doi:10.3945/ajcn.117.156265.
  • Melo-Durán, D., D. Solá-Oriol, S. Villagomez-Estrada, and J. F. Pérez. 2019. “Chapter 20. Enzymes as an Alternative to Antibiotics: An Overview.” In The Value of Fibre: Engagung the Second Brain for Animal Nutrition, 351–365. Wageningen, Netherlands: Wageningen Academic Publishers.
  • Micciche, A. C., S. L. Foley, H. O. Pavlidis, D. R. McIntyre, and S. C. Ricke. 2018. “A Review of Prebiotics against Salmonella in Poultry: Current and Future Potential for Microbiome Research Applications.” Frontiers in Veterinary Science 15 (5): 191. doi:10.3389/fvets.2018.00191.
  • Morgan, N. K., G. A. Gomes, and J. C. Kim. 2021. “Comparing the Efficacy of Stimbiotic and a Combination of Xylanase and Beta-glucanase, in Broilers Fed Wheat-barley Based Diets with High or Low AME.” Poultry Science 100 (10): 101383. doi:10.1016/j.psj.2021.101383.
  • Morgan, N. K., C. Keerqin, A. Wallace, S.-B. Wu, and M. Choct. 2019. “Effect of Arabinoxylo-oligosaccharides and Arabinoxylans on Net Energy and Nutrient Utilization in Broilers.” Animal Nutrition 5 (1): 56–62. doi:10.1016/j.aninu.2018.05.001.
  • Morgan, N. K., A. Wallace, M. R. Bedford, K. L. Hawking, I. Rodrigues, M. Hilliar, and M. Choct. 2020. “In Vitro versus in Situ Evaluation of Xylan Hydrolysis into Xylo-oligosaccharides in Broiler Chicken Gastrointestinal Tract.” Carbohydrate Polymers 230: 115645. doi:10.1016/j.carbpol.2019.115645.
  • Moure, A., P. Gullón, H. Domínguez, and J. C. Parajó. 2006. “Advances in the Manufacture, Purification and Applications of Xylo-oligosaccharides as Food Additives and Nutraceuticals.” Process Biochemistry 41 (9): 1913–1923. doi:10.1016/j.procbio.2006.05.011.
  • Munyaka, P., N. Nandha, E. Kiarie, C. Nyachoti, and E. Khafipour. 2016. “Impact of Combined β-glucanase and Xylanase Enzymes on Growth Performance, Nutrients Utilization and Gut Microbiota in Broiler Chickens Fed Corn or Wheat-based Diets.” Poultry Science 95 (3): 528–540. doi:10.3382/ps/pev333.
  • Mussatto, S. I., and I. M. Mancilha. 2007. “Non-digestible Oligosaccharides: A Review.” Carbohydrate Polymers 68 (3): 587–597. doi:10.1016/j.carbpol.2006.12.011.
  • Newman, K. 1994. “Mannan-oligosaccharides: Natural Polymers with Significant Impact on the Gastrointestinal Microflora and the Immune System.” Biotechnology in the Feed Industry 10: 167–174.
  • Okada, H., E. Fukushi, A. Yamamori, N. Kawazoe, S. Onodera, J. Kawabata, and N. Shiomi. 2010. “Novel Fructopyranose Oligosaccharides Isolated from Fermented Beverage of Plant Extract.” Carbohydrate Research 345 (3): 414–418. doi:10.1016/j.carres.2009.12.003.
  • Owens, B., L. Tucker, M. Collins, and K. McCracken. 2008. “Effects of Different Feed Additives Alone or in Combination on Broiler Performance, Gut Microflora and Ileal Phistology.” British Poultry Science 49 (2): 202–212. doi:10.1080/00071660802004890.
  • Patel, S., and A. Goyal. 2011. “Functional Oligosaccharides: Production, Properties and Applications.” World Journal of Microbiology & Biotechnology 27 (5): 1119–1128. doi:10.1007/s11274-010-0558-5.
  • Picazo, B., A. C. Flores-Gallegos, D. B. Muñiz-Márquez, A. Flores-Maltos, M. R. Michel-Michel, O. de la Rosa, R. M. Rodríguez-Jasso, R. Rodríguez-Herrera, and C. N. Aguilar-González. 2019. “Enzymes for Fructooligosaccharides Production: Achievements and Opportunities.” In Enzymes in Food Biotechnology, 303–320. Amsterdam: Academic Press. doi:10.1016/B978-0-12-813280-7.00018-9.
  • Pourabedin, M., Q. Chen, M. Yang, and X. Zhao. 2017. “Mannan-and Xylooligosaccharides Modulate Caecal Microbiota and Expression of Inflammatory-related Cytokines and Reduce Caecal Salmonella Enteritidis Colonisation in Young Chickens.” FEMS Microbiology Ecology 93 (1): fiw226. doi:10.1093/femsec/fiw226.
  • Pourabedin, M., L. Guan, and X. Zhao. 2015. “Xylo-oligosaccharides and Virginiamycin Differentially Modulate Gut Microbial Composition in Chickens.” Microbiome 3 (1): 1–12. doi:10.1186/s40168-015-0079-4.
  • Raza, A., S. Bashir, and R. Tabassum. 2019. “An Update on Carbohydrases: Growth Performance and Intestinal Health of Poultry.” Heliyon 5 (4): e01437. e01437 10.1016/j.heliyon.2019
  • Ribeiro, T., V. Cardoso, L. Ferreira, M. Lordelo, E. Coelho, A. Moreira, M. Domingues, M. Coimbra, M. Bedford, and C. Fontes. 2018. “Xylo-oligosaccharides Display a Prebiotic Activity When Used to Supplement Wheat or Corn-based Diets for Broilers.” Poultry Science 97 (12): 4330–4341. doi:10.3382/ps/pey336.
  • Ricke, S. 2015. “Potential of Fructooligosaccharide Prebiotics in Alternative and Nonconventional Poultry Production Systems.” Poultry Science 94 (6): 1411–1418. doi:10.3382/ps/pev049.
  • Ricke, S. C. 2018. “Focus: Nutrition and Food Science: Impact of Prebiotics on Poultry Production and Food Safety.” The Yale Journal of Biology and Medicine 91 (2): 151–159.
  • Ricke, S. C., S. I. Lee, S. A. Kim, S. H. Park, and Z. Shi. 2020. “Prebiotics and the Poultry Gastrointestinal Tract Microbiome.” Poultry Science 99 (2): 670–677. doi:10.1016/j.psj.2019.12.018.
  • Rossi, M., C. Corradini, A. Amaretti, M. Nicolini, A. Pompei, S. Zanoni, and D. Matteuzzi. 2005. “Fermentation of Fructooligosaccharides and Inulin by Bifidobacteria: A Comparative Study of Pure and Fecal Cultures.” Applied and Environmental Microbiology 71 (10): 6150–6158.
  • Russell, J. B., and F. Diez-Gonzalez. 1997. “The Effects of Fermentation Acids on Bacterial Growth.” Advances in MicrobialPphysiology 39: 205–234. doi:10.1016/S0065-2911(08)60017-X.
  • Sako, T., K. Matsumoto, and R. Tanaka. 1999. “Recent Progress on Research and Applications of Non-digestible Galacto-oligosaccharides.” International Dairy Journal 9 (1): 69–80. doi:10.1016/S0958-6946(99)00046-1.
  • Samanta, A., N. Jayapal, A. Kolte, S. Senani, M. Sridhar, A. Dhali, K. Suresh, C. Jayaram, and C. Prasad. 2015. “Process for Enzymatic Production of Xylooligosaccharides from the Xylan of Corn Cobs.” Journal of Food Processing and Preservation 39 (6): 729–736. doi:10.1111/jfpp.12282.
  • Samanta, A., A. Kotte, A. Elangovan, A. Dhali, S. Senani, M. Sridhar, and N. Jayapal. 2017. “Effects of Corn Husks Derived Xylooligosaccharides on Performance of Broiler Chicken.” Indian Journal of Animal Science 87 (5): 640–643.
  • Shang, Y., S. Kumar, H. Thippareddi, and W. K. Kim. 2018. “Effect of Dietary Fructooligosaccharide (FOS) Supplementation on Ileal Microbiota in Broiler Chickens.” Poultry Science 97 (10): 3622–3634. doi:10.3382/ps/pey131.
  • Shang, Y., A. Regassa, J. H. Kim, and W. K. Kim. 2015. “The Effect of Dietary Fructooligosaccharide Supplementation on Growth Performance, Intestinal Morphology, and Immune Responses in Broiler Chickens Challenged with Salmonella Enteritidis Lipopolysaccharides.” Poultry Science 94 (12): 2887–2897. doi:10.3382/ps/pev275.
  • Shashidhara, R., and G. Devegowda. 2003. “Effect of Dietary Mannan Oligosaccharide on Broiler Breeder Production Traits and Immunity.” Poultry Science 82 (8): 1319–1325. doi:10.1093/ps/82.8.1319.
  • Slawinska, A., A. Dunislawska, A. Plowiec, M. Radomska, J. Lachmanska, M. Siwek, S. Tavaniello, and G. Maiorano. 2019. “Modulation of Microbial Communities and Mucosal Gene Expression in Chicken Intestines after Galactooligosaccharides Delivery in Ovo.” PLoS One 14 (2): e0212318. doi:10.1371/journal.pone.0212318.
  • Slawinska, A., M. Zampiga, F. Sirri, A. Meluzzi, M. Bertocchi, S. Tavaniello, and G. Maiorano. 2020. “Impact of Galactooligosaccharides Delivered in Ovo on Mitigating Negative Effects of Heat Stress on Performance and Welfare of Broilers.” Poultry Science 99 (1): 407–415. doi:10.3382/ps/pez512.
  • Sohail, M., M. Hume, J. Byrd, D. Nisbet, A. Ijaz, A. Sohail, M. Shabbir, and H. Rehman. 2012. “Effect of Supplementation of Prebiotic Mannan-oligosaccharides and Probiotic Mixture on Growth Performance of Broilers Subjected to Chronic Heat Stress.” Poultry Science 91 (9): 2235–2240. doi:10.3382/ps.2012-02182.
  • Spring, P., C. Wenk, K. Dawson, and K. Newman. 2000. “The Effects of Dietary Mannaoligosaccharides on Cecal Parameters and the Concentrations of Enteric Bacteria in the Ceca of Salmonella-challenged Broiler Chicks.” Poultry Science 79 (2): 205–211. doi:10.1093/ps/79.2.205.
  • Suo, H.-Q., L. Lin, G.-H. Xu, X. Lin, X.-G. Chen, R.-R. Xia, L.-Y. Zhang, and X.-G. Luo. 2015. “Effectiveness of Dietary Xylo-oligosaccharides for Broilers Fed a Conventional Corn-soybean Meal Diet.” Journal of Integrative Agriculture 14 (10): 2050–2057. doi:10.1016/S2095-3119(15)61101-7.
  • Teng, C., Q. Yan, Z. Jiang, G. Fan, and B. Shi. 2010. “Production of Xylooligosaccharides from the Steam Explosion Liquor of Corncobs Coupled with Enzymatic Hydrolysis Using a Thermostable Xylanase.” Bioresource Technology 101 (19): 7679–7682. doi:10.1016/j.biortech.2010.05.004.
  • Torres, D. P., M. D. P. F. Gonçalves, J. A. Teixeira, and L. R. Rodrigues. 2010. “Galacto‐oligosaccharides: Production, Properties, Applications, and Significance as Prebiotics.” Comprehensive Reviews in Food Science and Food Safety 9 (5): 438–454. doi:10.1111/j.1541-4337.2010.00119.x.
  • Tuohy, K., G. Rouzaud, W. Bruck, and G. Gibson. 2005. “Modulation of the Human Gut Microflora Towards Improved Health Using Prebiotics-assessment of Efficacy.” Current Pharmaceutical Design 11 (1): 75–90. doi:10.2174/1381612053382331.
  • Van Leeuwen, S. S., B. J. Kuipers, L. Dijkhuizen, and J. P. Kamerling. 2016. “Comparative Structural Characterization of 7-commercial Galacto-oligosaccharide (GOS) Products.” Carbohydrate Research 425: 48–58. doi:10.1016/j.carres.2016.03.006.
  • Vera, C., C. Guerrero, R. Conejeros, and A. Illanes. 2012. “Synthesis of Galacto-oligosaccharides by β-galactosidase from Aspergillus Oryzae Using Partially Dissolved and Supersaturated Solution of Lactose.” Enzyme and Microbial Technology 50 (3): 188–194. doi:10.1016/j.enzmictec.2011.12.003.
  • Wang, Q., X. Wang, T. Xing, J. Li, X. Zhu, L. Zhang, and F. Gao. 2021. “The Combined Impact of Xylo-oligosaccharides and Gamma-irradiated Astragalus Polysaccharides on Growth Performance and Intestinal Mucosal Barrier Function of Broilers.” Poultry Science 100 (3): 100909. doi:10.1016/j.psj.2020.11.075.
  • Westphal, Y., S. Kühnel, P. de Waard, S. W. Hinz, H. A. Schols, A. G. Voragen, and H. Gruppen. 2010. “Branched Arabino-oligosaccharides Isolated from Sugar Beet Arabinan.” Carbohydrate Research 345 (9): 1180–1189. doi:10.1016/j.carres.2010.03.042.
  • Williams, J., S. Mallet, M. Leconte, M. Lessire, and I. Gabriel. 2008. “The Effects of Fructo-oligosaccharides or Whole Wheat on the Performance and Digestive Tract of Broiler Chickens.” British Poultry Science 49 (3): 329–339. doi:10.1080/00071660802123351.
  • Wu, Q., G. Fan, T. Yu, B. Sun, H. Tang, C. Teng, R. Yang, and X. Li. 2019. “Biochemical Characteristics of the Mutant Xylanase T-XynC (122) C (166) and Production of Xylooligosaccharides from Corncobs.” Industrial Crops and Products 142: 111848. doi:10.1016/j.indcrop.2019.111848.
  • Xia, X., W. Yachao, H. Jian, and L. Yuanfeng. 2020. “Effects of Xylooligosaccharide (XOS) and Probiotics (PRO) on Production Performance, Egg Quality and Intestinal Short-chain Fatly Acids of Laying Hens in Late Laying Period.” Animal Husbandry and Feed Science 12 (1): 21–25. doi:10.19578/j.cnki.ahfs.2020.01.005.
  • Xu, Z., C. Hu, M. Xia, X. Zhan, and M. Wang. 2003. “Effects of Dietary Fructooligosaccharide on Digestive Enzyme Activities, Intestinal Microflora and Morphology of Male Broilers.” Poultry Science 82 (6): 1030–1036. doi:10.1093/ps/82.6.1030.
  • Xuebin, Z., C. V. Du Jiang, and Y. Xianxiang. 2009. “Effects of Xylooligosaccharides on Growth Performance, Biochemical Indexes and Egg Quality in Laying Hens.” Journal of Anhui Agricultural University 36 (2): 267–272.
  • Yadav, S., and R. Jha. 2019. “Strategies to Modulate the Intestinal Microbiota and Their Effects on Nutrient Utilization, Performance, and Health of Poultry.” Journal of Animal Science and Biotechnology 10 (1): 1–11. doi:10.1186/s40104-018-0310-9.
  • Yaghobfar, A., and M. Kalantar. 2017. “Effect of Non-starch Polysaccharide (NSP) of Wheat and Barley Supplemented with Exogenous Enzyme Blend on Growth Performance, Gut Microbial, Pancreatic Enzyme Activities, Expression of Glucose Transporter (SGLT1) and Mucin Producer (MUC2) Genes of Broiler Chickens.” Brazilian Journal of Poultry Science 19: 629–638. doi:10.1590/1806-9061-2016-0441.
  • Yang, Y., P. Iji, and M. Choct. 2007. “Effects of Different Dietary Levels of Mannanoligosaccharide on Growth Performance and Gut Development of Broiler Chickens.” Asian-Australasian Journal of Animal Sciences 20 (7): 1084–1091. doi:10.5713/ajas.2007.1084.
  • Yang, Y., P. Iji, A. Kocher, E. Thomson, L. Mikkelsen, and M. Choct. 2008. “Effects of Mannanoligosaccharide in Broiler Chicken Diets on Growth Performance, Energy Utilisation, Nutrient Digestibility and Intestinal Microflora.” British Poultry Science 49 (2): 186–194. doi:10.1080/00071660801998613.
  • Yousaf, M., I. Ahmad, K. Ashraf, M. Rashid, A. Hafeez, A. Ahmad, H. Zaneb, R. Naseer, M. Numan, and J. Zentek. 2017. “Comparative Effects of Different Dietary Concentrations of β-galacto-oligosaccharides on Serum Biochemical Metabolites, Selected Caecel Microbiota and Immune Response in Broilers.” Journal of Animal and Plant Science 27 (1): 98–105.
  • Yuan, L., W. Li, Q. Huo, C. Du, Z. Wang, B. Yi, and M. Wang. 2018. “Effects of Xylo-oligosaccharide and Flavomycin on the Immune Function of Broiler Chickens.” Peer J 6: e4435. doi:10.7717/peerj.4435.
  • Zarghi, H. 2018. “Application of Xylanas and β-glucanase to Improve Nutrient Utilization in Poultry Fed Cereal Base Diets: Used of Enzymes in Poultry Diet.” Insights in Enzyme Research 2 (1): 11–17. doi:10.21767/2573-4466.100011.
  • Zhao, C., Y. Wu, X. Liu, B. Liu, H. Cao, H. Yu, S. D. Sarker, L. Nahar, and J. Xiao. 2017. “Functional Properties, Structural Studies and Chemo-enzymatic Synthesis of Oligosaccharides.” Trends in Food Science & Technology 66: 135–145. doi:10.1016/j.tifs.2017.06.008.
  • Zhou, E., X. Pan, and X. Tian. 2009. “Application Study of Xylo-oligosaccharide in Layer Production.” Modern Applied Science 3 (1): 103–107. doi:10.5539/mas.v3n1p103.

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