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Articles

Role of polysaccharides in food, digestion, and health

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Pages 237-253 | Received 21 Mar 2014, Accepted 24 Jun 2014, Published online: 28 Oct 2016

References

  • A.A.C.C. International (2010). Approved Methods. 11th ed. (online). A.A.C.C. International, St., Paul, MN.
  • Abbas, K. A., Khalil, S. K. and Hussin, A. S. M. (2010). Modified starches and their usages in selected food products: A review study. J. Agric. Sci. 2:90–100.
  • Abete, I., Goyenechea, E., Zulet, M. A. and Martınez, J. A. (2011). Obesity and metabolic syndrome: Potential benefit from specific nutritional components. Nutr. Metab. & Cardiovascular Dis. 21:B1eB15.
  • Alam, M. Ashraful, M. S., Sernia, C., and Brown, L. (2013). Ferulic Acid Improves Cardiovascular and Kidney Structure and Function in Hypertensive Rats. J. of Cardiovascular Pharmacology. 61:240–249.
  • Alan, M.S., Sernia, C. and Brown, L. (2013). Ferulic acid improved cardiovascular and kidney structure and function in hypertensive rats. J. Cardiovasc. Pharmacol. 61:240–249.
  • Albersheim, P., Neukom, H., Deuel, H., (1960). Splitting of pectin chain molecules in neutral solutions, Arch. Biochem. Biophys. 90:46–.
  • Al-Rabadi, G. J. S., Gilbert, R. G. and Gidley, M. J. (2009). Effect of particle size on kinetics of starch digestion in milled barley and sorghum grains by porcine alpha-amylase. J. Cereal Sci. 50:198–204.
  • Altan, A., McCarthy, K. L. and Maskan, M. (2009). Effect of extrusion cooking on functional properties and in vitro starch digestibility of barley-based extrudates from fruit and vegetable by-products. J. Food Sci. 74:77–86.
  • Andersson, H. B. (1992). The ileostomy model for the study of carbohydrate digestion and carbohydrate effects on sterol excretion in man. Eur. J. Clin. Nutr. 46:S69–S76.
  • Asp, N.-G., van Amelsvoort, J. M. M. and Hautvast, J. G. A. J. (1996). Nutritional implications of resistant starch. Nutr. Res. Rev. 9:1–31.
  • A.O.A.C. (2007). Method 991.43. Official Methods of Analysis, 18th ed. (2005), current through revision 2, (online). A.O.A.C. International, Gaithersburg, MD.
  • Aziz, A., Dumais, L. and Barber, J. (2013). Health Canada's evaluation of the use of glycemic index claims on food labels. Am. J. Clin. Nutr. 98:269–274.
  • Bach-Knudsen, K. E. (2001). The nutritional significance of “dietary fiber” analysis. Anim. Feed Sci. Tech. 90:3–20.
  • Beer, M. U., Wood, P. J., Weisz, J. and Fillion, N. (1997). Effect of cooking and storage on the amount and molecular weight of (1→3)(1→4)-β-D-glucan extracted from oat products by an in vitro digestion system. Cereal Chem. 74:705–709.
  • Berry, S. E. E., Tydeman, E. A., Lewis, H. B., Phalora, R., Rosborough, J., Picout, D. R. and Ellis, P. R. (2008). Manipulation of lipid bioaccessibility of almond seeds influences postprandial lipemia in healthy human subjects. Am. J. Clin. Nutr. 88:922–929.
  • Bjorck, I., Granfeldt, Y., Liljeberg, H., Tovar, J. and Asp, N. (1994). Food properties affecting the digestion and absorption of carbohydrates. Am. J. Clin. Nutr. 59:699S–705S.
  • Björck, I., Östmana, E., Kristensen, M., Anson, N. M., Price, R. K., Haenen, G. R. M. M., Havenaar, R., Bach-Knudsen, K. E., Fried, A., Mykkänen, H., Welch, R. W. and Riccardi, G. (2012). Cereal grains for nutrition and health benefits: Overview of results from in vitro, animal and human studies in the healthgrain project. Trends Food Sci. & Technol. 25:87–100.
  • Blaszczak, W., Valverde, S. and Fornal, J. (2005). Effect of high pressure on the structure of potato starch. Carbohydr. Polym. 59:377–383
  • Bogracheva, T. Y., Davydova, N. I., Genin, Y. V. and Hedley, C. L. (1995). Mutant genes at the r and rb loci affect the structure and physico-chemical properties of pea seed starches. J. Exp. Bot. 46:1905–1913.
  • Bornet, F. R., Jardy-Gennetier, A. E., Jacquet, N. and Stowell, J. (2007). Glycaemic response to foods: Impact on satiety and long-term weight regulation. Appetite 49:535–553.
  • Brand, J. C., Colagiuri, S., Crossman, S., Allen, A., Roberts, D. C. K. and Truswell, A. S. (1991). Low glycemic index-foods inprove long-term gycemic control in NIDDM. Diabetes Care 14:95–101.
  • Brownlee, I. A. (2011). The physiological roles of dietary fiber. Food Hydrocolloids 25:238–250.
  • Buléon, A., Colonnaa, P., Planchota, V. and Ballb, S. (1998). Starch granules: Structure and biosynthesis. Int. J. Biol. Macromol. 23:85–112.
  • Buonocone, V., Petrucci, T. and Salano, V. (1977). Wheat protein inhibitors of a-amylase. Phytochem. 16:811–820.
  • Butterworth, P. J., Warren, F. J. and Ellis, P. R. (2011). Human α-amylase and starch digestion: An interesting marriage. Starch—Stärke 63:395–405.
  • Buttriss, J. L. and Stokes, C. S. (2008). Dietary fibre and health, an overview. Nutr. Bull. 33:186–200.
  • Campbell, G., Fang, C.-Y. and Muhamad, I. I. (2007). On predicting roller milling performance VI. Effect of kernel hardness and shape on the particle size distribution from first break milling of wheat. Food and Bioproducts Processing: Transactions of the Institution of Chemical Engineers Part C 85:7–23.
  • Cassady, B. A., Hollis, J. H., Fulford, A. D., Considine, R. V. and Mattes, R. D. (2009). Mastication of almonds: effects of lipid bioaccessibility, appetite, and hormone response. Am. J. Clin. Nutr. 89:794–800.
  • Castro, A., Cespedes, G., Carballo, S., Bergenstahl B. and Tornberg E. (2013). Dietary fiber, fructooligosaccharides, and physicochemical properties of homogenized aqueous suspensions of yacon (Smallanthus sonchifolius). Food Res. Int. 50:392–400.
  • Castro A., Bergenståhl B. and Tornberg, E. (2012). Parsnip (Pastinaca sativa L.): Dietary fiber composition and physicochemical characterization of its homogenized suspensions. Food Res. Int. 48:598–608.
  • Castro, A., Bergenståhl, B. and Tornberg, E. (2013) Effect of heat treatment and homogenization on the rheological properties of aqueous parsnip suspensions. J. Food Engin. 117:383–392.
  • Carpita, N. C. (1996). Structure and biogenesis of cell walls of grasses. Ann. Rev. Plant Physiol. Plant Mol. 47:445–476.
  • Champagne, E. T., Marshall, W. E. and Goynes, W. R. (1990). Effects of degree of milling and lipid removal on starch gelatinization in the brown rice kernel. Cereal Chem. 67:570–574.
  • Chung, H.-J., Shin, D.-H. and Lim, S.-T. (2008). In vitro starch digestibility and estimated glycemic index of chemically modified corn starches. Food Res. Int. 41:579–585.
  • Clegg, M. E., Pratt, M., Markey, O., Shafat, A. and Henry, C. J. K. (2012). Addition of different fats to a carbohydrate food: Impact on gastric emptying, glycaemic and satiety responses and comparison with in vitro digestion. Food Res. Int. 48:91–97.
  • Coffey, D. G., Bell, D. A. and Henderson, A. (2006). Cellulose and cellulose derivatives. In: Food Polysaccharides and their Applications, pp. 147–181. Stephens, A. M., Phillips, G. P. and Williams, P. A., Eds., CRC Press, Boca Raton, Florida, USA.
  • Courtin, C. M. and Delcour, J. A. (2002). Arabinoxylans and endoxylanases in wheat flour breadmaking. J. Cereal Sci. 35:225–243.
  • Cummings, J. H. (1982). Polysaccharide fermentation in the human colon. In: Colon and Nutrition, 91. Kasper, H. and Goebell, H., Eds., MTP Press Ltd., Lancaster.
  • Cummings, J. H. (1983). Fermentation in the human large intestine: Evidence and implications for health. Lancet 321:1206–1209.
  • Cummings, J. H., Edmond, L. M. and Magee, E. A. (2004). Dietary carbohydrates and health: Do we still need the fiber concept? Clin. Nutr. Sup. 1:5–17.
  • Cummings, J. H. and Macfarlane, G. T. (1991). The control and consequences of bacterial fermentation in the human colon. J. Appl. Microbiol. 70:443–459.
  • Dahlqvist, A. and Borgstrom, B. (1961). Digestion and absorption in man. J. Biochem. 81:411–418.
  • De Noni, I. and Pagani, A. (2010) Cooking properties and heat damage of dried pasta as influenced by raw material characteristics and processing conditions. Crit. Rev. Food Sci. Nutr. 50:465–472.
  • Department of Health http://www.dh.gov.uk
  • Dhital, S., Shrestha, A. K. and Gidley, M. J. (2010). Relationship between granule size and in vitro digestibility of maize and potato starches. Carbohyd. Polym. 82:480–488.
  • Diaz, J. V., Anthon, G. E., Barrett, D. M. (2007) Nonenzymatic degradation of citrus pectin and pectate during prolonged heating: Effects of pH, temperature, and degree of methyl esterification. J. Agric. Food Chem. 55:5131–5136.
  • Donald, A. M. (2004). Understanding starch structure and functionality. In: Starch in Food: Structure, Function and Applications, Chapter 5. Eliasson, A.-C., Ed., CRC Press, Boca Raton, Florida, USA.
  • Dona, A. C., Pages, G., Gilbert, R. G. and Kuchel, P. W. (2010). Digestion of starch: In vivo and in vitro kinetic models used to characterise oligosaccharide or glucose release. Carbohyd. Polym. 80:599–617.
  • Dunaif, G. and Schneeman, B. O. (1981). The effect of dietary fiber on human pancreatic-enzyme activity in vitro. Am. J. Clin. Nutr. 34:1034–1035.
  • Dutta, S. K. and Hlasko, J. (1985). Dietary fiber in pancreatic disease - effect of high-fiber diet on fat malabsorption in pancreatic insufficiency and in vitro study of the interaction of dietary fiber with pancreatic-enzymes. Am. J. Clin. Nutr. 41:517–525.
  • Eliasson, A.-C., Bergenståhl, B., Nilsson, L. and Sjöö, M. (2013). From molecules to products: Some aspects of structure–function relationships in cereal starches. Cereal Chem. 90:557–565.
  • Ellis, P. R., Kendall, C. W. C., Ren, Y. L., Parker, C., Pacy, J. F., Waldron, K. W. and Jenkins, D. J. A. (2004). Role of cell walls in the bioaccessibility of lipids in almond seeds. Am. J. Clin. Nutr. 80:604–613.
  • Ellis, P. R., Roberts, F. G., Low, A. G. and Morgan, L. M. (1995). The effcet of high-molecular-weight guar gum on net apparent glucose absorption and net apparent insulin and gastric inhibitory polypeptide production in the growing pig: Relationship to rheological changes in jejunal digesta. Br. J. Nutr. 74:539–556.
  • Englyst, H. N. and Hudson, G. J. (1987). Colorometric method for the routine analysis of dietary fibre as non-starch polysaccharide. A comparison with gas-liquid chromatography. Food Chem. 24:63–76.
  • Evans, I. D., Elson, D. R. H. E. L., Pasternak, C. and McConnaughey, W. B. (1986). The effect of salivary amylase on the viscosity behaviour of gelatinised starch suspensions and the mechanical properties of gelatinised starches. J. Sci Food Agric. 37:573–590.
  • F.A.O./W.H.O. (1998). Carbohydrates in Human Nutrition. Joint F.A.O./W.H.O. Report, Paper 66. F.A.O., Rome.
  • Fincher, G. B. and Stone, B. A. (1986). Advances in Cereal Science and Technology, pp. 207–295. Pomeranz, Y., Ed., A.A.C.C., St. Paul, MN.
  • Foster-Powell, K., Holt, S. H. A. and Brand-Miller, J. C. (2002). International table of glycemic index and glycemic load values: 20021'2. Am J. Clin. Nutr. 76:5–56.
  • Frias, J., Vidal-Valverde, C., Sotomayor, C., Diaz-Pollan, C. and Urbano, G. (2000). Influence of processing on available carbohydrate content and antinutritional factors of chickpeas. Eur. Food Res. Technol. 210:340–345.
  • Fried, M., Abramson, S. and Meyer, J. H. (1987). Passage of salivary amylase through the stomach in humans. Digest. Dis. Sci. 32:1097–1103.
  • Fry, S. C. (2011). Cell wall polysaccharide composition and covalent crosslinking. In: Plant Polysaccharides: Biosynthesis and Bioengineering, pp. 1–42. Ulvskov, P., Ed., Wiley-Blackwell.
  • Fry, S. C. (2011). Cell wall polysaccharide composition and covalent crosslinking. Annual Plant Reviews, Plant Polysaccharides: Biosynthesis and Bioengineering, pp. 1–42. Ulvskov, P., Ed., Wiley-Blackwell. Chichester, West Sussex. UK.
  • Fuentes-Zaragoza, E., Riquelme-Navarrete, M. J., Sanchez-Zapata, E. and Perez-Alvarez, J. A. (2010). Resistant starch as functional ingredient: A review. Food Res. Int. 43:931–942.
  • Garcia-Alonso, A. and Goni, I. (2000). Effect of processing on potato starch: In vitro availability. Starch 2-3:81–84.
  • Geresh, S., Mamontoc, A. and Weinstein, J. (2002). Sulfation of extracellular polysaccharides of red microalgae: Preparation, characterization and properties. J. Biochem. Biophys. Methods 50:179–187.
  • Giacco, R., Brighenti, F., Parillo, M., Capuano, M., Ciardullo, A., Rivieccio, A., Rivellese, A. and Riccardi, G. (2001). Characteristics of some wheat-based foods of the Italian diet in relation to their influence on postprandial glucose metabolism in patients with type 2 diabetes. Br. J. Nutr. 85:33–40.
  • Goesaert, H., Brijs, K., Veraverbeke, W. S., Courtin, C. M., Gebruers, K. and Delcour, J. A. (2005). Wheat flour constituents: How they impact bread quality, and how to impact their functionality. TrendsFood Sci. Technology 16:12–30.
  • Golon, A., Gonzalez, F. J., Davalos, J. Z. and Kuhnert, N. (2013). Investigating the thermal decomposition of starch and cellulose in model systems and toasted bread using domino tandem mass spectrometry. J. Agric. Food Chem. 61:674–684.
  • Gómez, C., Navarro, A., Gamier, C., Horta, A. and Carbonell, J. V. (1997). Physical and structural properties of barley (1-3),(1-4)-β-D-glucan. Part III. Formation of aggregates analysed through its viscoelastic and flow behavior. Carbohyd. Polym. 34:141–148.
  • Grimm, A., Kruger, E. and Burchard, W. (1995). Solution properties of beta-D-(1,3)(1,4)-glucan isolated from beer. Carbohydr. Polym. 27:205–214.
  • Gudmundsson, M. and Eliasson, A. C. (1990). Retrogradation of amylopectin and the effects of amylose and added surfactants/emulsifiers. Carbohyd. Polym. 3:295–315.
  • Guinesi, L. S., Roz, A. L., Corradini, E., Mattoso, L. H. C., Teixeira, E. M. and Curvelo, A. A. S. (2006). Kinetics of thermal degradation applied to starches from different botanical origins by non-isothermal procedures. Thermochimica Acta 447:190–196.
  • Håkansson, A., Ulmius, M. and Nilsson, L. (2012). Asymmetrical flow field-flow fractionation enables the characterization of molecular and supramolecular properties of cereal beta-glucan dispersions. Carbohydr. Polym. 87:518–523.
  • Han, J.-A. and BeMiller, J. N. (2007). Preparation and physical characteristics of slowly digesting modified food starches. Carbohyd. Polym. 67:366–374.
  • Haralampu, S. G. (2000). Resistant starch—a review of the physical properties and biological impact of RS3. Carbohyd. Polym. 285–292.
  • Harholt, J., Suttangkakul, A. and Scheller, H. V. (2010). Biosynthesis of pectins. Plant Physiol. 153:384–395.
  • Hardena, C. J., Richardson, J. C., Dettmarb, P. W., Corfec, B. M. and Paxmana, J. R. (2012). An ionic-gelling alginate drink attenuates postprandial glycaemia in males. J. Funct. Foods 4:122–128.
  • Hendry, G. A. F. (1993). Evolutionary origins and natural functions of fructans; a climatological, biogeographic and mechanistic appraisal. New Phytol. 123:3–14.
  • Henry, C. J., Lightowler, H. J., Newens, K. J. and Pata, N. (2008). The influence of adding fats of varying saturation on the glycaemic response of white bread. Int. J. Food Sci. Nutr. 59:61–69.
  • Hizukuri, S. (1996). Starch analytical aspects. In: Carbohydrates in Foods, pp. 342–429. Eliasson, A.C., Ed., Marcell Dekker, New York.
  • Hoebler, C., Devaux, M. F., Karinthi, A., Belleville, C. and Barry, J. L. (2000). Particle size of solid food after human mastication and in vitro simulation of oral breakdown. Int. J. Food Sci. Nutr. 51:353–366.
  • Hoebler, C., Karinthi, A., Devaux, M.-F., Guillon, F., Gallant, D. J. G., Bouchet, B., Melegary, C. and Barry, J. L. (1998). Physical and chemical transformations of cereal food during oral digestion in human subjects. Br. J. Nutr. 80:429–436.
  • Hoover, R. (2001). Composition, molecular structure, and physicochemical properties of tuber and root starches: A review. Carbohyd. Polym. 45:253–267.
  • Hoover, R. (2010). The impact of heat-moisture treatment on molecular structures and properties of starches isolated from different botanical sources. Crit. Rev. Food Sci. Nutr. 50:835–847.
  • Htoon, A., Shrestha, A., Flanagan, B., Lopezrubio, A., Bird, A. R., Gilbert, E. P. and Gidley, M. J. (2009). Effects of processing high amylose maize starches under controlled conditions on structural organisation and amylase digestibility. Carbohyd. Polym. 75:236–245.
  • Hughes, S. A., Shewry, P. R., Li, L., Gibson, G. R., Sanz, M. L. and Rastall, R. A. (2007). In vitro fermentation by human fecal microflora of wheat arabinoxylans. J. Agric. Food Chem. 55:4589–4595.
  • Hughes, S. A., Shewry, P. R., Gibson, G. R., McCleary, B. V. and Rastall, R. A. (2008). In vitro fermentation of oat and barley derived β-glucans by human faecal microbiota. F.E.M.S. Micro. Ecol. 64:482–493.
  • Hwang, D.-K., Kim, B.-Y. and Baik, M.-Y. (2009). Physicochemical properties of non-thermally cross-linked corn starch with phosphorous oxychloride using ultra high pressure (U.H.P.). Starch 61:438–447.
  • Isaksson, G., Lundquist, I. and Ihse, I. (1982). Effect of dietary fiber on pancreatic-enzyme activity in vitro—the importance of viscosity, pH, ionic-strength, adsorption, and time of incubation Gastroent. 82:918–924.
  • Izydorczyk, M. S. and Biliaderis, C. G. (1995). Cereal arabinoxylans: Advances in structure and physicochemical properties. Carbohyd. Polym. 28:33–48.
  • Jacobs, H. and Delcour, J. A. Hydrothermal modifications of granular starch, with retention of the granular structure:  A review. J. Agric. Food Chem. 46:2895–2905.
  • Janickea, B., Hegardtb, C., Kroghc, M., Önningd, G., Åkessonef, B., Cirenajwisg, H. M., and Oredssong, S. M. (2011). The Antiproliferative Effect of Dietary Fiber Phenolic Compounds Ferulic Acid and p-Coumaric Acid on the Cell Cycle of Caco-2 Cells. Nutrition and Cancer 63:611–622.
  • Janicke, B., Hedgardt, C., Krogh, M., Onning, G., Akesson, B., Cireanajwis, H.M. and Oredsson, S. M. (2007). The antiproliferative effect of dietary fibre phenolic compounds ferulic acid and p-coumaric acid on the cell cycle of Caco-2 cells. Nutrition and Cancer 63:611–622.
  • Jarvi, A. E., Karlstrom, B. E., Granfeldt, Y. E., Bjorck, I. M. E., Vessby, B. O. H. and Asp, N. G. L. (1995). The influence of food structure on postprandial metabolism in patients with non-insulin-dependent diabetes mellitus. Am. J. Clin. Nutr. 61:837–842.
  • Jenkins, D. J., Wolever, T. M., Taylor, R. H., Barker, H., Fielden, H., Baldwin, J. M., Bowling, A. C., Newman, H. C., Jenkins, A. L. and Goffet, D. V. (1981). Glycemic index of foods: A physiological basis for carbohydrate exchange. Am. J. Clin. Nutr. 34:362–366.
  • Jenkins, D. J. A., Kendall, C. W. C., Augustin, L. S. A., Franceschi, S., Hamidi, M., Marchi, A., Jenkins, A. L. and Axelsen, M. (2002). Glycemic index: Overview of implications in health and disease. Am. J. Clin. Nutr. 76:266S–273S.
  • Jenkins, D. J. A., Thorne, M. J., Wolever, T. M. S., Jenkins, A. L., Rao, A. V. and Thompson, L. U. (1987). The effect of starch-protein interaction in wheat on the glycemic response and rate of in vitro digestion. Am. J. Clin. Nutr. 45:946–951.
  • Jyothi, A. N., Moorthy, S. N. and Ragasekharan, K. N. (2006). Effect of cross-linking with Epichlorohydrin on the properties of cassava starch. Starch 58:292–299.
  • Katopo, H., Song, Y. and Jane, J. (2002). Effect and mechanism of ultrahigh hydrostatic pressure on the structure and properties of starches. Carbohydr. Polym. 47:233–244.
  • Kaur, L., Singh, J., McCarthy, O. J. and Singh, H. (2007). Physico-chemical, rheological and structural properties of fractionated potato starches. J. Food Eng. 82:383–394.
  • Kellett, G. L. and Brot-Laroche, E. (2005). Apical GLUT2: A major pathway of intestinal sugar absorption. Diabetes 54:3056–3062.
  • Kendall, C. W. C., Esfahani, A., Truan, J., Srichaikul, K. and Jenkins, D. J. A. (2010). Health benefits of nuts in prevention and management of diabetes. Asia Pac. J. Clin. Nutr. 19:110–116.
  • Kiss, J. (1974) Beta-eliminative degradation of carbohydrates containing uronic acid residues. Adv. Carbohydr. Chem. Biochem. 29:229–303.
  • Kristensen, M., Jensen, M. G., Riboldi, G., Petronio, M., Bugel, S., Toubro, S., Tetens, I. and Astrup, A. (2010). Wholegrain vs. refined wheat bread and pasta. Effect on postprandial glycemia, appetite, and subsequent ad libitum energy intake in young healthy adults. Appetite 54:163–169.
  • Kritchevsky, D. and Story, J. A. (1974). Binding of bile salts in vitro by nonnutritive fiber. J. Nutr. 104:458–462.
  • Kong, F. and Singh, R. P. (2008). Disintegration of solid foods in the human stomach. J. Food Sci. 73:R67–R80.
  • Kumar, V., Sinha, A. K., Harinder, P. S., Gudrun De Boeck, M. and Becker, K. (2012). Dietary roles of non-starch polysaccharides in human nutrition: A review. Crit. Rev. Food Sci. Nutr. 52:899–935.
  • Lan-Pidhainy, X., Brummer, Y., Tosh, S. M., Wolever, T. M. and Wood, P. J. (2007). Reducing betaglucan solubility in oat bran muffins by freeze-thaw treatment attenuates its hypoglycemic effect. Cereal Chem. 84:512–517.
  • Le Leu, R. K., Brown, I. L., Hu, Y., Bird, A. R., Jackson, M., Esterman, A. and Young, G. P. (2005). A synbiotic combination of resistant starch and bifidobacterium lactis facilitates apoptotic deletion of carcinogendamaged cells in rat colon. J. Nutr. 135:996–1001.
  • Li, W., Cui, S. W. and Kakuda, Y. (2006). Extraction, fractionation, structural and physical characterization of wheat β-D-glucans. Carbohyd. Polym. 63:408–416.
  • Liljeberg, H., Granfeldt Y. and Björck I. (1992). Metabolic responses to starch in bread containing intact kernels versus milled flour. Eur. J. Clin. Nutr. 46:561–575.
  • Li, W., Cui, S. W., Wang, Q. and Yada, R. Y. (2011). Studies of aggregation behaviours of cereal β-glucans in dilute aqueous solutions by light scattering: Part I. Structure effects. Food Hydrocolloids 25:189–195.
  • Liu, P.-L., Xiao-Song, H. and Qun, S. (2010). Effect of high hydrostatic pressure on starches: A review. Starch 62:615–628.
  • Lobley, G. E., Holtop, G., Bremner, D. M., Calder, A. G., Milne, E. and Johstone, A. M. (2013). Impact of short term consumption of diets high in either non-starch polysaccharides or resistant starch in comparison with moderate weight loss on indices of insulin sensitivity in subjects with metabolic syndrome. Nutrients 5:2144–2172.
  • Ludwig, D. S. (2002). The glycemic index: Physiological mechanisms relating to obesity, diabetes, and cardiovascular disease. J. Am. Med. Assoc. 287:2414–2423.
  • Magnusson, E. and Nilsson, L. (2011). Interactions between hydrophobically modified starch and egg yolk proteins in solution and emulsions. Food Hydrocolloids 25:764–772.
  • Malagelada, J. R., Longstreth, G. F., Summerskill, W. H. and Go, V. L. (1976). Measurement of gastric functions during digestion of ordinary solid meals in man. Gastroent. 70:203–210.
  • Mandalari, G., Faulks, R., Rich, G. T., Lo Turco, V., Picout, D. R., Lo Curto, R. B., Bisignano, G., Dugo, P., Dugo, G., Waldron, K. W., Ellis, P .R. and Wickham, M. S. J. (2008). Release of protein, lipid and vitamin E from almond seeds during digestion. J. Agric. Food Chem. 56:3409–3416.
  • Manning, T. S. and Gibson, G. R. (2004). Prebiotics. Best practice and research. Clin. Gastroent. 18:287–298.
  • Maurer, A. H., Camilleri, M., Donohoe, K., Knight, L. C., Madsen, J. L., Mariani, G., Parkman, H. P. and Van Dolsen, J. (2013). The SNMMI and EANM practice guideline for small-bowel and colon transit 1.0*. J. Nuc. Med. 54:204–213.
  • McDougall, J. G., Morrison, I. M., Stewart, D. and Hillman, J. R. (1996). Plant cell walls as dietary fiber: Range, structure, processing and function. J. Sci. Food Agric. 70:113–150.
  • Miles, M., Morris, V. J., Orford, P. D. and Ring, S.,G. (1985). The roles of amylose and amylopectin in the gelation and retrogradation of starch. Carbohydr. Res. 135:271–281.
  • Mishra, S., Hardacre, A. and Monro, J. (2012). Food structure and carbohydrate digestibility. In: Carbohydrates - Comprehensive studies on glycobiology and glycotechnology, pp, 289–316. Chang, C.-F., Ed., InTech.
  • Mishra, S. and Monro, J. (2012). Wholeness and primary and secondary food structure effects on in vitro digestion patterns determine nutritionally distinct carbohydrate fractions in cereal foods. Food Chem. 135:1968–1974.
  • Mohnen, D. (2008). Pectin structure and biosynthesis. Curr. Opin. Plant Biol. 11:266–277.
  • Monro, J. and Misha, S. (2010). Digestion-resistant remnants of vegetable vascular and parenchyma tissue differ in their effects in the large bowel of rats. Food Digest. 1:47–56.
  • Mourot, J., Thouvenot, P., Couet, C., Antoine, J. M., Krobicka, A. and Debry, G. (1988). Relationship between the rate of gastric emptying and glucose and insulin responses to starchy foods in young healthy adults. Am. J. Clin. Nutr. 48:1035–1040.
  • Nilsson, A. C., Östman, E. M., Holst, J. J. and Björck, I. M. E. (2008). Including indigestible carbohydrates in the evening meal of healthy subjects improves glucose tolerance, lowers inflammatory markers, and increases satiety after a subsequent standardized breakfast. J. Nutr. 138:732–739.
  • Noah, L., Guillon, F., Bouchet, B., Buleon, A., Molis, C., Gratas, M. and Champ, M. (1998). Digestion of carbohydrate from white beans (Phaseolus vulgaris L.) in healthy humans. J. Nutr. 128:977–985.
  • Norton, I., Moore, S. and Fryer, P. (2007). Understanding food structuring and breakdown: engineering approaches to obesity. Obes. Rev. 8:83–88.
  • Norton, I., Fryer, P. and Moore S. (2006). Product/process integration in food manufacture: Engineering sustained health. A.I.Ch.E. 52:1632–1640.
  • Parada, J. and Aguilera, J. M. (2011). Review: Starch matrices and the glycemic response. Food Sci. Technol. Int. 17:187–204.
  • Pera, P., Bucca, C., Borro, P., Bernocco, C., Delillo, A. and Carossa, S. (2002). Influence of mastication on gastric emptying. J. Dent. Res. 81:179–181.
  • Pérez-Jiménez, J., Díaz-Rubio, M. E., Mesías, M., Morales, F. J. and Saura-Calixto, F. (2014). Evidence for the formation of maillardized insoluble dietary fiber in bread: A specific kind of dietary fiber in thermally processed food. Food Res. Int. 55:391–396.
  • Piculell, L. (2006). Gelling carrageenans. In: Food Polysaccharides and Their Applications, pp. 239–289. Stephens, A. M., Phillips, G. P. and Williams, P. A., Eds., C.R.C. Press.
  • Popper, Z. A., Michel, G., Herve, C., Domozych, D. S., Willats, W. G., Tuohy, M. G., Kloareg, B. and Stengel, D. B. (2011). Evolution and diversity of plant cell walls: From algae to flowering plants. Annu. Rev. Plant Biol. 62:567–590.
  • Qian, J. and Kuhn, M. (1999). Characterization of Amaranthus cruentus and Chenopodium quinoa starch. Starch—Stärke 51:116–120.
  • Quiroga, C. C. and Bergenståhl, B. (2008). Phase segregation of amylopectin and beta-lactoglobulin in aqueous system. Carbohyd. Polym. 72:151–159
  • Read, N. W., Welch, I. M., Austen, C. J., Barnish, C., Bartlett, C. E., Baxter, A. J., Brown, G., Comption, M. E., Hume, K. E., Storie, I. and Worlding, J. (1986). Swallowing food without chewing; a simple way to reduce postprandial glycaemia. Br. J. Nutr. 55:43–47.
  • Rebello, C. J., Liu, A. G., Greenway, F. L. and Dhurandhar, N. V. (2013). Dietary strategies to increase satiety. Adv. Food Nutr. Res. 69:105–182.
  • Regand, A., Tosh, S. M., Wolever, T. M. S. and Wood, P. J. (2009). Physicochemical properties of β-glucan in differently processed oat foods influence glycemic response. J. Agric. Food Chem. 57:8831–8838.
  • Rehman, R. and Salariya, A. M. (2005). The effects of hydrothermal processing on antinutrients, protein and starch digestibility of food legumes. Int. J. Food Sci. & Tech. 40:695–700.
  • Renard, C. and Thibault, J. F. (1996) Degradation of pectins in alkaline conditions: Kinetics of demethylation. Carbohydr. Res. 286:139–150.
  • Ring, S. G., Colonna, P., L'anson, K. J., Kalichevsky, M. T., Miles, M. J., Morris, V. J. and Orford, P.D. (1987). The gelation and crystallization of amylopectin. Carbohydr. Res. 162:277–293.
  • Roder, N., Gerard, C., Verel, A., Bogracheva, T. Y., Hedley, C. L., Ellis, P. R. and Butterworth, P. J. (2009). Factors affecting the action of alpha-amylase on wheat starch: Effects of water availability. An enzymic and structural study. Food Chem. 113:471–478.
  • Rosenblum, J. L., Irwin, C. L. and Alpers, D. H. (1988). Starch and glucose oligosaccharides protect salivary-type amylase activity at acid pH. Am. J. Physiol.-Gastr. L. 254:G775–G780.
  • Savelkoul, F. H. M. G., van de Poel, A. F. B. and Tamminga, S. (1992). The presence and inactivation of trypsin inhibitors, tannins, lectins and amylase inhibitors in legume seeds during germination: A review. Plant Foods for Human Nutr. 40:7–85.
  • Schneeman, B. O. (1987). Dietary fiber and gastrointestinal function. Nutr. Rev. 45:129–132.
  • Shpigelman, A., Kyomugasho, C., Christiaens, S., Van Loey, A. M., Hendrickx, M. E., (2015) The effect of high pressure homogenization on pectin: Importance of pectin source and pH, Food Hydrocolloids. 43:189–198.
  • Sievert, D. and Pomeranz, Y. (1990). Enzyme-resistant starch. II. Differential scanning calorimetry studies on heat-treated starches and enzyme-resistant starch residues. Cereal Chem. 67:217–221.
  • Sim, L., Quezada-Calvillo, R., Sterchi, E. E., Nichols, B. L. and Rose, D. R. (2008). Human intestinal maltase–glucoamylase: Crystal structure of the N-terminal catalytic subunit and basis of inhibition and substrate specificity. J. Mol. Biol. 375:782–792.
  • Singh, J., Dartois, A. and Kaur, L. (2010). Starch digestibility in food matrix: A review. Trends Food Sci. Technol. 21:168–180.
  • Singh, U., Kherdekar, M. S. and Jambunathan, R. (1982). Studies on desi and kabuli chickpea cultivars: Levels of amylase inhibitors, levels of oligosaccharides and in vitro starch digestibility. J. Food Sci. 47:510–512.
  • Singh, H. and Sarker, A. (2011). Behaviour of protein-stabilzed emulsions under various physiological conditions. Adv. Colloid Interface Sci. 165:47–57.
  • Sizer, F. S. and Whitney, E. N. (2000). Nutrition Concepts and Controversies, 8th ed., pp. 105–110. Wadsworth/Thomson Learning, U.S.A.
  • Stolt, M., Stoforos, N. G. and Taoukis, P. S. (1999). Evaluation and modeling of rheological properties of high pressure waxy maize starch dispersion. J. Food Eng. 40:293–298.
  • Subar, A. F., Krebs-Smith, S. M., Cook, A. and Kahle, L. L. Dietary sources of nutrients among US children, 1989–1991. Pediatrics 102:913–923.
  • Suzuki, A., Yamamoto, M., Jokure, H., Fujii, A., Tokimitsu, I., Hase, T. and Ikuo, S. (2007). Ferulic acid restores endothelium-dependant vasodilation in aortas of spontaneously hypertensive rats. AJH. 20:508–513
  • Tahir, R., Ellis, P. R., Bogracheva, T. Y., Meares-Taylor, C. and Butterworth, P. J. (2010a). Study of the structure and properties of native and hydrothermally processed wild-type, lam and r variant pea starches that affect amylolysis of these starches. Biomacromolecules 12:123–133.
  • Tahir, R., Ellis, P. R. and Butterworth, P. J. (2010b). The relation of physical properties of native starch granules to the kinetics of amylolysis catalysed by porcine pancreatic α-amylase. Carbohyd. Polym. 81:57–62.
  • Takeda, Y., Hizukuri, S., Takeda C. and Suzuki A. (1987). Structures of branched molecules of amyloses of various origins, and molar fractions of branched and unbranched molecules. Carbohydr. Res. 165:139–145.
  • Taunburgh, P. J., Ley, R. E., Mahowald, M. A., Magrini, V., Mardis, E. R. and Gordon, J. I. (2006). An obesity-associated gut microbiome with increased capacity for energy harvest. Nature 444:1027–1031.
  • Tester, R., Debon, S. and Karkalas, J. (1998). Annealing of wheat starch. J. Cereal Sci. 28:259–272.
  • Tester, R. F., Karkalas, J. and Qi, X. (2004). Starch—composition, fine structure and architecture. J. Cereal Sci. 39:151–165.
  • Theuwissen, E. and Mensink, R. P. (2008). Water-soluble dietary fibers and cardiovascular disease. Physiol. Behav. 94:285–292.
  • Thibault, J., Renard, C., Axelos, M., Roger, P. and Crepeau, M. (1993). Studies of the length of homogalacturonic regions in pectins by acid hydrolysis. Carbohyd. Res. 238:271–286
  • Toden, S., Bird, A. R., Topping, D. L. and Conlon, M. A. (2007). Dose-dependent reduction of dietary protein-induced colonocyte DNA damage by resistant starch in rats correlates more highly with caecal butyrate than with other short chain fatty acids. Cancer Biol. Therapy 6:253–258.
  • Tosh, S. M., Brummer, Y., Miller, S. S., Regand, A., Defelice, C., Duss, R., Wolever, T. M. S. and Wood, P. J. (2010). Processing affects the physicochemical properties of b-glucan in oat bran cereal. J. Agric. Food Chem. 58:7723–7730.
  • Topping, D. L., Bajka, B. H., Bird, A. R., Clarke, J. M., Cobiac, L., Conlon, M. A., Morell, M. K. and Toden, S. (2008). Resistant starches as a vehicle for delivering health benfits to the human large bowel. Micro. Ecol. Health Disease 20:103–108.
  • Topping, D. L. and Clifton, P. M. (2001). Short-chain fatty acids and human colonic function:roles of resistant starch and non-starch polysaccharides. Physiol. Rev. 81:1031–1064.
  • Topping, D. L., Fukushima, M. and Bird, A. R. (2003). Resistant starch as a prebiotic and synbiotic: State of the art. Proc. Nutr. Soc. 62:171–176.
  • Ulmius, M., Önning. G. and Nilsson, L. (2012a). Solution behavior of barley β-glucan as studied with asymmetrical flow field-flow fractionation. Food Hydrocolloids 26:175–180.
  • Ulmius, M., Adapa, S., Önning, G. and Nilsson, L. (2012b). Gastrointestinal conditions influence the solution behaviour of cereal β-glucans in vitro. Food Chem. 130:536–540.
  • van Dam, R. M. and Seidell, J. C. (2007). Carbohydrate intake and obesity. Eur. J. Clin. Nutr. 61:S75–S99.
  • Varga, G. (2012). Physiology of salivary glands. Review Surgery (Oxford) 30:578–583.
  • Vilaplana, F., Hasjim, J., Gilbert, R. G. (2012). Amylose content in starches: Toward optimal definition and validating experimental methods. Carbohyd. Polym. 88:103–111.
  • Vitaglione, P., Napolitano, A. and Fogliano, V. (2008). Cereal dietary fibre: a natural functional ingredient to deliver phenolic compounds into the gut. TISTS 19:451–463.
  • Voragen, A. G. J., Pilnik, W., Thibault, J.-F., Axelos, M. A. V. and Renard, C. M. G. C. (1995). Pectins. In: Food Polysaccharides and Their Applications, pp. 287–339. Stephen, A. M., Ed. Marcel Dekker Inc., New York-Basel-Hong Kong.
  • Waldron, K. W., Parker, M. L. and Smith, A. C. (2003). Plant cell walls and food quality. Comp. Rev. Food Sci. F. 2:128–146.
  • Wang, M., Sapirstein, H. D., Machet, A.-S. and Dexter, J. E. (2006). Composition and distribution of pentosans in millstreams of different hardspring wheats. Cereal Chem. 83:161–168.
  • Wang, T. L., Bogracheva, T. Y. and Hedley, C. L. (1998). Starch: As simple as A, B, C? J. Exp. Bot. 49:481–502.
  • Wang, Q., Ellis, P. R. and Ross-Murphy, S. B. (2003). Dissolution kinetics if guar gum powders-II. Effect of concentration and molecular weight. Carbohyd. Polym. 53:75–83.
  • Wang, Y. F., Zhang, L., Li, Y. Q., Hou, X. and Zeng, F. (2004). Correlation of structure to antitumor activities of five derivatives of a β-glucan from Poria cocos sclerotium. Carbohyd. Res. 339:2567–2574.
  • Warren, F. J., Royall, P. G., Gaisford, S., Butterworth P. J. and Ellis, P. R. (2011). Binding interactions of a-amylase with starch granules: The influence of supramolecular structure and surface area. Carbohyd. Polym. 86:1038–1047.
  • Weinbreck, F., de Vries, R., Schrooyen, P. and de Kruif G. G. (2003). Complex coacervation of whey proteins and gum arabic. Biomacromolecules 4:293–303.
  • Whalen, P. J., DesRochers, J. L. and Walker, C. E. (2000). Ready-to-eat breakfast cereals. In: Handbook of Cereal Science and Technology, pp. 615–646. Kulp, K. and Ponte, J. G., Eds., Marcel Dekker Inc., New York.
  • Whitney, E. N., Hamilton, E. M. N. and Rolfes, S. R. (1990). Understanding Nutrition, 5th ed. West Publishing, New York.
  • Wickham, M. J. S., Faulks, R. M., Mann, J. and Mandalari, G. (2012). The design, operation, and application of a dynamic gastric model. Dissolut. Technol. 19:15–22.
  • Wikoff, W. R., Anfora, A. T., Liu, J., Shultz, P. G., Lesley S. A., Peters, E. C. and Siuzdak, G. (2009). Metabolomics analysis reveals large effects of gut microflora on mammalian blood metobolites. P.N.A.S. 106:3698–3703.
  • Willats, W. G. T., Knox, J. P. and Mikkelsen, J. D. (2006) Pectin: New insights into an old polymer are starting to gel. Trends Food Sci. Tech. 17:97–104
  • Willett, J. L., Jasberg, B. K. and Swanson, C. L. (1994). Melt rheology of thermoplastic starch. In: Polymers from Agricultural Coproducts, pp.50–68. Fishman M. L., Fridman, R. B. and Huang, S. J., Eds., American Chemical Society Washington, DC.
  • Wolever, T. M. S. (2000). Dietary carbohydrates and insulin action in humans. Br. J. Nutr. 83:S97–S102.
  • Wolever, T. M. S., Jenkins, D. J. A., Vuksan, V., Jenkins, A. L., Buckley, G. C., Wong, G. S. and Josse, R. G. (1992). Beneficial effect of a low glycaemic index diet in type 2 diabetes. Diabetic Med. 9:451–458.
  • Wong J. M., de Souza R, Kendall C. W., Emam A., Jenkins D. J. (2006) Colonic health: Fermentation and short chain fatty acids. J Clin Gastroenterol. 40:235–43.
  • Woolnough, J. W., Monro, J. A., Brennan, C. S. and Bird, A. R. (2008). Simulating human carbohydrate digestion in vitro: A review of methods and the need for standardisation. Int. J. Food Sci. Technol. 43:2245–2256
  • Wűrsch, P., Del Vedovo, S. and Koellreutter, B. (1986). Cell structure and starch nature as key determinants of the digestion rate of starch in legume. Am. J. Clin. Nutr. 43:25–29.
  • Yalpani, M. (1999). Chemistry of polysaccharide modification and degradation. In: Carbohydrates, pp. 294–318. Finch, P., Ed., Springer, The Netherlands.
  • Yuen, S.-N., Choi, S. O. M., Phillips, D. L. and Ma, C.-Y. (2009). Raman and FTIR spectroscopic study of carboxymethylated non-starch polysaccharides. Food Chem. 114:1091–1098.
  • Zou, M. L., Moughan, P. J., Awati, A. and Livesey, G. (2007). Accuracy of the Atwater factors and related food energy conversion factors with low-fat, high-fiber diets when energy intake is reduced spontaneously. Am. J. Clin. Nutr. 86:1649–1656.