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The impact of cereal non-starch polysaccharides on intestinal development and function in broiler chickens

Published online by Cambridge University Press:  18 September 2007

P.A. Iji
Affiliation:
Department of Animal & Poultry Science, University of Natal, Pietermaritzburg Campus, Private Bag X01, Scottsville 3209, South Africa
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Abstract

The review presents information on non-starch polysaccharides (NSPs), the major antinutritive factors found in cereals and a variety of other feed ingredients. The unique characteristics of these compounds and their effects on the utilisation of other dietary components are highlighted. The effects of NSP on the gross weight of the gastrointestinal tract, mucosal structure and function are examined and some reference is made to other species on which more research has been conducted. More research is required into the effects of NSPs on the integrity of the intestinal mucosa in poultry. Such information may assist in the development of breeding and management strategies to reduce the effects of NSPs.

Type
Research Article
Copyright
Copyright © Cambridge University Press 1999

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References

Almirall, M., Francesch, M., Perez, V.A.M., Brufau, J. and Esteve-Garcia, E. (1995) The differences in intestinal viscosity produced by barley and beta-glucanase alter digestive enzyme activities and ileal nutrient digestibilities more in broilers than in cocks. Journal of Nutrition 125: 947955Google ScholarPubMed
Annison, G. (1989) Depression of apparent metabolisable energy caused by polysaccharides in broiler diets. Proceedings of the Nutrition Society, Australia 14: 96Google Scholar
Annison, G. (1990) Polysaccharide composition of Australian wheats and the digestibility of their starches in broiler chicken diets. Australian Journal of Experimental Agriculture 30: 183186CrossRefGoogle Scholar
Annison, G. (1993) The role of wheat non-starch polysaccharides in broiler nutrition. Australian Journal of Agricultural Research 44: 405422Google Scholar
Bach Knudsen, K.E. (1991) Breakdown of plant polysaccharides in the gastrointestinal tract of pigs. In: Proceedings of the 5th International Symposium on Digestive Physiology in Pigs,Wageningen,Netherlands,24–26 April 1991 pp. 428–433Google Scholar
Bach Knudsen, K.E., Hansen, I. and Bach Knudsen, K.E. (1991) Gastrointestinal implications in pigs of wheat and oat fractions. 1. Digestibility and bulking properties of polysaccharides and other major constituents. British Journal of Nutrition 65: 217232CrossRefGoogle ScholarPubMed
Bamba, T., Fuse, K., Chun, W. and Hosoda, S. (1993) Polydextrose and activities of brushborder membrane enzymes of small intestine in rats and glucose absorption in humans. Nutrition 9: 233236Google ScholarPubMed
Baranylova, E. and Holman, J. (1976) Morphological changes in the intestinal wall in fed and fasted chickens in the first week after hatching. Acta Veterinaria Brno 45: 151158Google Scholar
Bengtsson, S., Aman, P., Graham, H., Newman, C.W. and Newman, R.K. (1990) Chemical studies on mixed-linked beta-glucans in hull-less barley cultivars giving different hypocholesterolaemic responses in chickens. Journal of the Science of Food and Agriculture 52: 435445CrossRefGoogle Scholar
Bengtsson, S., Andersson, R., Westerlund, E. and Aman, P. (1992) Content, structure and viscosity of soluble arabinoxylans in rye grain from several countries. Journal of the Science of Food and Agriculture 58: 331337CrossRefGoogle Scholar
Brenes, A., Trevino, J., Centeno, C. and Yuste, P. (1989) The influence of alpha-galactosides extracted from lupin seed (Lupinus albus) on the digestion of dietary starch by growing chickens. In: Recent Advances of Research in Anti-nutritional Factors in Legume Seeds (Huisman, J., van der Poel, T.F.B. and Liener, I.E., Eds). PUDOC, Wageningen, The Netherlands, pp. 374377Google Scholar
Brunsgaard, G. and Eggum, B.O. (1995) Small intestinal tissue structure and proliferation as influenced by adaptation period and indigestible polysaccharides. Comparative Biochemistry and Physiology 112A: 365377CrossRefGoogle Scholar
Carre, B., Gomez, J. and Chagneau, A.M. (1995) Contribution of oligosaccharide and polysaccharide digestion, and excreta losses of lactic acid and short chain fatty acids, to dietary metabolisable energy values in broiler chickens and adult cockerels. British Poultry Science 36: 611629CrossRefGoogle ScholarPubMed
Chinery, R., Goodlad, R.A. and Wright, N.A. (1992) Soy polysaccharide in an enteral diet: effects on rat intestinal cell proliferation, morphology and metabolic function. Clinical Nutrition 11: 277283CrossRefGoogle Scholar
Choct, M. and Annison, G. (1990) Anti-nutritive activity of wheat pentosans in broiler diets. British Poultry Science 31: 811821CrossRefGoogle ScholarPubMed
Choct, M. and Annison, G. (1992) Anti-nutritive effect of wheat pentosans in broiler chickens: roles of viscosity and gut microflora. British Poultry Science 33: 821834CrossRefGoogle ScholarPubMed
Choct, M., Hughes, R.J., Trimble, R.P., Angkanaporn, K. and Annison, G. (1995) Non-starch polysaccharide-degrading enzymes increase the performance of broiler chickens fed wheat of low apparent metabolizable energy. Journal of Nutrition 125: 485492Google ScholarPubMed
Choct, M., Hughes, R.J., Wang, J., Bedford, M.R., Morgan, A.J. and Annison, G. (1996) Increased small intestinal fermentation is partly responsible for the anti-nutritive activity of non-starch polysaccharides in chickens. British Poultry Science 37: 609621CrossRefGoogle ScholarPubMed
Classen, H.L. and Bedford, M.R. (1991) The use of enzymes to improve the nutritive value of poultry feeds. In: Recent Advances in Animal Nutrition, 1991 (Haresign, W. and Cole, D.J.A., Eds), Butterworth-Heinemann, Oxford, pp. 95116CrossRefGoogle Scholar
Colombel, J.E, Vaerman, J.P., Hallgren, R., Dehennin, JP., Wain, E., Modiliani, R. and Cortot, A. (1992) Effect of intrajejunal elemental diet perfusion on jejunal secretion of immunoglobulins, albumin and hyaluronan in man. Gut 33: 4447CrossRefGoogle ScholarPubMed
Dahle, H.K., Eikum, E. and Lilleeng, K.N. (1992) Glucanases in feed products. Norsk Landbruksforsking 6: 15Google Scholar
Dusel, G., Kluge, H., Glaser, K., Simon, O., Hartmann, G., Von Lengerken, J. and Jeroch, H. (1997) An investigation into the variability of extract viscosity of wheat: relationship with the content of non-starch polysaccharide fractions and metabolisable energy for broiler chickens. Archives of Animal Nutrition 50: 121135Google ScholarPubMed
Evans, A.J., Cheung, P.C.K. and Cheetham, W.H. (1993) The carbohydrate composition of cotyledons and hulls of cultivars of Lupinus angustifolius from Western Australia. Journal of the Science of Food and Agriculture 61: 189194CrossRefGoogle Scholar
Fengler, A.L., Pawlik, J.R. and Marquardt, R.R. (1988) Improvement in nutrient retention and changes in excreta viscosities in chicks fed rye-containing diets supplemented with fungal enzymes, sodium taurocholate and penicillin. Canadian Journal of Animal Science 68: 483491CrossRefGoogle Scholar
Friesen, O.D., Guenter, W., Marquardt, R.R. and Rotter, B.A. (1992) The effect of enzyme supplementation on the apparent metabolizable energy and nutrient digestibilities of wheat, barley, oats, and rye for the young broiler chick. Poultry Science 71: 17101721CrossRefGoogle ScholarPubMed
Goodlad, R.A., Ratcliffe, B., Fordham, J.P. and Wright, N.A. (1989) Does dietary fibre stimulate intestinal epithelial cell proliferation in germ free rats? Gut 30: 820825CrossRefGoogle ScholarPubMed
Green, S. (1988) Effect of dietary fibre and caecotomy on the excretion of endogenous amino acids from adult cockerels. British Poultry Science 29: 419429CrossRefGoogle Scholar
Huisman, J. and Tolman, G.H. (1992) Anti-nutritional factors in the plant proteins of diets for non-ruminants. In: Recent Advances in Animal Nutrition 1992 (Haresign, W. and Cole, D.J.A., Eds), Butterworth Heinemann, Oxford, pp. 331CrossRefGoogle Scholar
Iji, P.A. (1998) Natural development and dietary regulation of body and intestinal growth in broiler chickens. PhD thesis, The University of Adelaide, Australia, 306ppGoogle Scholar
Ikeda, K. and Kusano, T. (1983) In vitro inhibition of digestive enzymes by indigestible polysaccharides. Cereal Chemistry 60: 260263Google Scholar
Ikegami, S., Tsuchihashi, F., Harada, H., Nishide, E. and Innami, S. (1990) Effect of viscous indigestible polysaccharides on pancreatic-bilary secretion and digestive organs in rats. Journal of Nutrition 120: 353360CrossRefGoogle Scholar
Irish, G.G. and Balnave, D. (1993) Non-starch polysaccharides and broiler performance on diets containing soyabean meal as sole protein concentrate. Australian Journal of Agricultural Research 44: 14831499CrossRefGoogle Scholar
Jacobs, L.R. and White, F.A. (1983) Modulation of mucosal cell proliferation in the intestine of rats fed a wheat bran diet. American Journal of Clinical Nutrition 37: 945953CrossRefGoogle ScholarPubMed
Jin, S., Corless, A. and Sell, J.L. (1998) Digestive system development in post-hatch poultry. World's Poultry Science Journal 54: 335345CrossRefGoogle Scholar
Johnson, I.T. and Gee, J.M. (1986) Gastrointestinal adaptation in response to soluble non-available polysaccharides in the rat. British Journal of Nutrition 55: 497505CrossRefGoogle ScholarPubMed
Johnson, I.T., Gee, J.M. and Mahoney, R.R. (1984) Effect of dietary supplements of guar gum and cellulose on intestinal cell proliferation, enzyme levels and sugar transport in the rat. British Journal of Nutrition 52: 477487CrossRefGoogle ScholarPubMed
Jorgensen, H., Xinquan, Z., Bach Knudsen, K.E., Eggum, B.O. and Zhao, X.Q. (1996) The influence of dietary fibre source and level on development of the gastrointestinal tract, digestibility and energy metabolism in broiler chickens. British Journal of Nutrition 75: 379395CrossRefGoogle ScholarPubMed
Kenny, A.J. and Turner, A.J. (1987) What are ecto-enzymes? In: Mammalian Ecto-enzymes, Elsevier, New York & Oxford, pp. 213Google Scholar
Klopfenstein, C.F. (1988) The role of cereal beta-glucans in nutrition and health. Cereal Foods World 33: 865869Google Scholar
Macdonald, R.S., Steel-Goodwin, L. and Smith, R.J. (1991) Influence of dietary fiber on insulin receptors in rat intestinal mucosa. Annals of Nutrition and Metabolism 35: 328338CrossRefGoogle ScholarPubMed
Mathers, J.C. and Kennard, J. (1993) Gastrointestinal responses to oats consumption in young adult and elderly rats: digestion, large bowel fermentation and crypt cell proliferation rates. British Journal of Nutrition 70: 567584CrossRefGoogle ScholarPubMed
Mohamed, A.A. and Rayas-Duarte, P. (1995) Non-starchy polysaccharide analysis of cotyledon and hull of Lupinus albus. Cereal Chemistry 72: 648651Google Scholar
Nestor, K.E., Cantor, A.H., Bacon, W.L. and Brown, K.I. (1981) The influence of body weight restriction during the growing and holding periods on reproduction of turkey females from strains differing in body weight. Poultry Science 60: 14581467CrossRefGoogle Scholar
Palo, P.E., Sell, J.S., Piquer, F.J., Soto-Salanova, M.F. and Vilaseca, L. (1995) Effect of early nutrient restriction on on broiler chickens. 1. Effect and development of the gastrointestinal tract. Poultry Science 74: 88101CrossRefGoogle ScholarPubMed
Pawlik, J.R., Fengler, A.I. and Marquardt, R.R. (1990) Improvement of the nutritional value of rye by the partial hydrolysis of the viscous water-soluble pentosans following water-soaking or fungal enzyme treatment. British Poultry Science 31: 525538CrossRefGoogle Scholar
Pell, J.D., Gee, J.M., Wortley, G.M. and Johnson, I.T. (1992) Dietary corn oil and guar gum stimulate intestinal crypt cell proliferation in rats by independent but potentially synergistic mechanisms. Journal of Nutrition 122: 24472456CrossRefGoogle ScholarPubMed
Pettersson, D. and Aman, P. (1989) Enzyme supplementation of a poultry diet containing wheat and rye. British Journal of Nutrition 62: 139149CrossRefGoogle Scholar
Pettersson, D., Graham, H. and Aman, P. (1990) Enzyme supplementation of broiler chicken diets based on cereals with endosperm cell walls rich in arabinoxylans or mixed-link beta-glucans. Animal Production 51: 201207Google Scholar
Rakowska, M., Kupets, R. and Madei, A. (1990) Polysaccharide-protein complex in rye grain: digestibility and retention in monogastric animals. Selektsiya rzhi pp. 143150Google Scholar
Rakowska, M., Rek-Cieply, B., Lipinska, E., Kubinski, T., Barcz, I. and Afanasjew, B. (1993) The effect of rye, probiotics and nisin on faecal flora and histology of the small intestine of chicks. Journal of Animal Feed Science 2: 7381CrossRefGoogle Scholar
Read, N.W. (1987) Viscosity of food gums determined in vitro related to their hypoglycemic actions. American Journal of Clinical Nutrition 46: 7277Google Scholar
Ricke, S.C., Van Deraar, P.J., Fahey, G.C. Jr. and Berger, L.L. (1982) Influence of dietary fibers on peformance and fermentation characteristics of gut contents from growing chicks. Poultry Science 61: 13351343CrossRefGoogle Scholar
Saastamoinen, M., Plaami, S. and Kumpulainen, J. (1989) Pentosan and beta-glucan content of Finnish winter rye varieties as compared with rye of six other countries. Journal of Cereal Science 10: 199207CrossRefGoogle Scholar
Saini, H.S. (1989) Legume seed oligosaccharides. In: Recent Advances of Research in Anti-nutritional Factors in Legume Seeds (Huisman, J., van der Poel, T.F.B. and Liener, I.E., Eds), PUDOC, Wageningen, The Netherlands, pp. 329341Google Scholar
Sakata, T., Adachi, M., Hashida, M., Sato, N. and Kojima, T. (1995) Effect of n-butyric acid on epithelial cell proliferation of pig colonic mucosa in short-term culture. Deutsche Tierarztliche Wochenschrift 102: 163164Google ScholarPubMed
Salih, M.E., Classen, H.L. and Campbell, G.L. (1990) Response of chickens fed hull-less barley to dietary β-glucanase at different ages. Animal Feed Science and Technology 33: 139149CrossRefGoogle Scholar
Siri, S., Tobioka, H. and Tasaki, I. (1992) Effects of dietary fibers on growth performance, development of internal organs, protein and energy utilization, and lipid content of growing chicks. Japanese Poultry Science 29: 106114CrossRefGoogle Scholar
Smits, C.H.M. and Annison, G. (1996) Non-starch polysaccharides in broiler nutrition: towards a physiologically valid approach to their determination. World's Poultry Science Journal 52: 203221CrossRefGoogle Scholar
Smits, C.H.M., Veldman, A., Verstegen, M.W.A. and Beynen, A.C. (1997) Dietary carboxymethylcellulose with high instead of low viscosity reduces macronutrient digestion in broiler chickens. Journal of Nutrition 127: 483487CrossRefGoogle ScholarPubMed
Smits, C.H.M., Veldman, A., Verkade, A. and Beynen, A.C. (1998) The inhibitory effect of carboxymethylcellulose with high viscosity on lipid absorption in broiler chickens coincidcs with reduced bile salt concentration and raised microbial numbers in the small intestine. Poultry Science 77: 15341539CrossRefGoogle ScholarPubMed
Steeb, C.B., Shoubridge, C.A., Tivey, D.R. and Read, L.C. (1997) Systemic infusion of IGF-I or LR-3IGF-I stimulates visceral organ growth and proliferation of gut tissues in suckling rats. American Journal of Physiology 272: G522–533Google ScholarPubMed
Stevens, B.R., Ross, H.J. and Wright, E.M. (1984) Intestinal transport of amino acids and sugars: advances using membrane vesicles. Annual Review of Physiology 46: 417433CrossRefGoogle ScholarPubMed
Tivey, D.R., Morovat, A. and Dauncey, M.J. (1993) Administration of 3,5,3′-triiodothyronine induces a rapid increase in enterocyte lactase-phlorizin hydrolase activity of young pigs on a low energy intake. Experimental Physiology 78: 337346CrossRefGoogle ScholarPubMed
Tovar, J., Bjorck, I. and Asp, N.G. (1989) On the nutritional properties of starch and dietary fiber in cassava bread. Nutrition Reports International 39: 12371246Google Scholar
Tulung, B., Remesy, C. and Demigne, C. (1987) Specific effects of guar gum or gum arabic on adaptation of cecal digestion to high fiber diets in the rat. Journal of Nutrition 117: 15561561CrossRefGoogle ScholarPubMed
Uni, Z., Noy, Y. and Sklan, D. (1995 a) Posthatch changes in morphology and function of the small intestines in heavy– and light-strain chicks. Poultry Science 74: 16221629CrossRefGoogle ScholarPubMed
Uni, Z., Noy, Y. and Sklan, D. (1995 b) Development of the small intestine in heavy and light strain chicks before and after hatching. British Poultry Science 36: 6371Google Scholar
Uni, Z., Ganot, S. and Sklan, D. (1998) Posthatch development of mucosal function in the broiler small intestine. Poultry Science 77: 7582CrossRefGoogle ScholarPubMed
Van Der Klis, J.D., Verstegen, M.W.A and Van Voorst, A. (1993) Effect of a soluble polysaccharide (carboxy methylcellulose) on the absorption of minerals from the gastrointestinal tract of broilers. British Poultry Science 34: 985997CrossRefGoogle ScholarPubMed
Viveros, A., Brenes, A., Pizarro, M. and Castano, M. (1994) Effect of enzyme supplementation of a diet based on barley, and autoclave treatment, on apparent digestibility, growth performance and gut morphology of broilers. Animal Feed Science and Technology 48: 237251CrossRefGoogle Scholar
Watkins, B.A., Manning, B. and Al-Athari, A.K. (1988) The effects of Lupinus albus ultra on broiler performance. Nutrition Reports International 38: 173181Google Scholar
Yamauchi, K., Kamisoyama, H. and Isshiki, Y. (1996) Effects of fasting and refeeding on structures of the intestinal villi and epithelial cells in White Leghorn hens. British Poultry Science 37: 909921CrossRefGoogle ScholarPubMed
Yun, C.H., Estrada, A., Van Kessel, A., Gajadhar, A.A., Redmond, M.J. and Laarveld, B. (1997) Beta-(1 →3, 1 →4) oat glucan enhances resistance to Eimeria vermiformis infection in immunosuppressed mice. International Journal of Parasitology 27: 329337CrossRefGoogle ScholarPubMed