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Original Articles

Physicochemical properties and structural characteristics of soluble dietary fibers from yellow and purple fleshed potatoes by-product

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Pages S2939-S2949 | Received 21 May 2017, Accepted 29 Sep 2017, Published online: 09 Jan 2018

References

  • Brownlee, I. A.;. The Physiological Roles of Dietary Fibre. Food Hydrocoll. 2011, 25, 238–250.
  • Chen, J.; Zhao, Q.; Wang, L.; Zha, S.;, et al. Physicochemical and Functional Properties of Dietary Fibers from Maca (Lepidium Meyenii Walp.) Liquor Residue. Carbohydr. Polym. 2015, 132, 509–512.
  • Elleuch, M.; Bedigian, D.; Roiseux, O.; Besbes, S.;, et al. Dietary Fibre and Fibre-Rich By-Products of Food Processing: Characterisation, Technological Functionality and Commercial Applications: A Review. Food Chem. 2011, 124, 411–421.
  • Tosh, S. M.; Yada, S.; Bassett, C.; Boye, J.;, et al. Dietary Fibres in Pulse Seeds and Fractions: Characterization, Functional Attributes, and Applications. Food Res. Int. 2010, 43, 450–460.
  • Xie, F.; Wang, Y.; Wu, J.; Wang, Z. Functional Properties and Morphological Characters of Soluble Dietary Fibers in Different Edible Parts of Angelica Keiskei. J. Food Sci. 2016, 81, C2189–C2198.
  • Tao, B.; Ye, F.; Li, H.; Hu, Q.;, et al. Phenolic Profile and in Vitro Antioxidant Capacity of Insoluble Dietary Fibers Powders from Citrus (Citrus Junos Sieb. Ex Tanaka) Pomace as Affected by Ultrafine Grinding. J. Agric. Food Chem. 2014, 62, 7166–7173.
  • Huang, S.; He, Y.; Zou, Y.; Liu, Z. Modification of Insoluble Dietary Fibres in Soya Bean Okara and Their Physicochemical Properties. Int. J. Food Sci. Technol. 2015, 50, 2606–2613.
  • Ezekiel, R.; Singh, N.; Sharma, S.; Kaur, A. Beneficial Phytochemicals in Potato — A Review. Food Res. Int. 2013, 50, 487–496.
  • Kotíková, Z.; Šulc, M.; Lachman, J.; Pivec, V.;, et al. Carotenoid Profile and Retention in Yellow-, Purple- and Red-Fleshed Potatoes after Thermal Processing. Food Chem. 2016, 197, 992–1001.
  • Linderborg, K. M.; Salo, J. E.; Kalpio, M.; Vuorinen, A. L.;, et al. Comparison of the Postprandial Effects of Purple-Fleshed and Yellow-Fleshed Potatoes in Healthy Males with Chemical Characterization of the Potato Meals. Int. J. Food Sci. Nutr. 2016, 67, 581–591.
  • Tian, J.; Chen, J.; Lv, F.; Chen, S.;, et al. Domestic Cooking Methods Affect the Phytochemical Composition and Antioxidant Activity of Purple-Fleshed Potatoes. Food Chem. 2015, 197, 1264–1270.
  • Heinonen, J.; Farahmandazad, H.; Vuorinen, A.; Kallio, H.;, et al. Extraction and Purification of Anthocyanins from Purple-Fleshed Potato. Food & Bioproducts Processing. 2016, 99, 136–146.
  • Thed, S. T.; Phillips, R. D. Changes of Dietary Fibers and Starch Composition of Processed Potato Products during Domestic Cooking. Food Chem. 1995, 52, 301–304.
  • Curti, E.; Carini, E.; Diantom, A.; Vittadini, E. The Use of Potato Fibre to Improve Bread Physico-Chemical Properties during Storage. Food Chem. 2015, 195, 64–70.
  • Sudha, M. L.; Baskaran, V.; Leelavathi, K. Apple Pomace as a Source of Dietary Fibers and Polyphenols and Its Effect on the Rheological Characteristics and Cake Making. Food Chem. 2007, 104, 686–692.
  • AOAC. AOAC Official Method 991.43. Total, Soluble, and Insoluble Dietary Fibers in Foods; Association of Official Analytical Chemists: Washington DC, 1996.
  • AOAC. AOAC Official Method 12. Official Methods of Analysis of AOAC International; Association of Official Analytical Chemists: Washington DC, 2001.
  • Xie, F.; Wang, Y.; Wu, J.; Wang, Z. Insoluble Dietary Fibers from Angelica Keiskei By‐Product and Their Functional and Morphological Properties. Starch‐Stärke. 2017. DOI: 10.1002/star.201600122.
  • Wang, L.; Xu, H.; Yuan, F.; Fan, R.; Gao, Y. Preparation and Physicochemical Properties of Soluble Dietary Fibers from Orange Peel Assisted by Steam Explosion and Dilute Acid Soaking. Food Chem. 2015, 185, 90–98.
  • Lan, G.; Chen, H.; Chen, S.; Tian, J. Chemical Composition and Physicochemical Properties of Dietary Fibers from Polygonatum Odoratum as Affected by Different Processing Methods. Food Res. Int. 2012, 49, 406–410.
  • Zhou, Y.; Xie, F.; Zhou, X.; Wang, Y.;, et al. Effects of Maillard Reaction on Flavor and Safety of Chinese Traditional Food: Roast Duck. J. Sci. Food Agric. 2015, 96, 1915–1922.
  • Xie, F.; Gong, S.; Zhang, W.; Wu, J.; Wang, Z. Potential of Lignin from Canna Edulis Ker Residue in the Inhibition of α-D-glucosidase: Kinetics and Interaction Mechanism Merging with Docking Simulation. Int. J. Biol. Macromol. 2016, 95, 592–602.
  • Graham, H.; Rydberg, M. B. G.; Aaman, P. Extraction of Soluble Dietary Fibers. J. Agric. Food Chem. 2002, 36, 494–497.
  • Cheng, L.; Zhang, X.; Hong, Y.; Li, Z.;, et al. Characterisation of Physicochemical and Functional Properties of Soluble Dietary Fibrefrom Potato Pulp Obtained by Enzyme-Assisted Extraction. Int. J. Biol. Macromol. 2017, 101, 1004–1011.
  • Chau, C. F.; Wang, Y. T.; Wen, Y. L. Different Micronization Methods Significantly Improve the Functionality of Carrot Insoluble Fibre. Food Chem. 2007, 100, 1402–1408.
  • Benítez, V.; Mollá, E.; Martín-Cabrejas, M. A.; Aguilera, Y.;, et al. Effect of Sterilisation on Dietary Fibre and Physicochemical Properties of Onion By-Products. Food Chem. 2011, 127, 501–507.
  • Guo, X.; Zhao, W.; Pang, X.; Liao, X.; Hu, X.; Wu, J. Emulsion Stabilizing Properties of Pectins Extracted by High Hydrostatic Pressure, High-Speed Shearing Homogenization and Traditional Thermal Methods: A Comparative Study. Food Hydrocoll. 2014, 35, 217–225.
  • Akhtar, M.; Dickinson, E.; Mazoyer, J.; Langendorff, V. Emulsion Stabilizing Properties of Depolymerized Pectin. Food Hydrocoll. 2002, 16(3), 249–256.
  • Zhang, J.; Wang, Z. Soluble Dietary Fibers from Canna Edulis Ker By-Product and Its Enzymatic and Antioxidant Activities. Food Biotechnol. 2011, 25, 336–350.
  • Briones-Labarca, V.; Venegascubillos, G.; Ortizportilla, S.; Chacanaojeda, M.; Maureira, H. Effects of High Hydrostatic Pressure (HHP) on Bioaccessibility, as Well as Antioxidant Activity, Mineral and Starch Contents in Granny Smith Apple. Food Chem. 2011, 128, 520–529.
  • Briones-Labarca, V.; Muñoz, C.; Maureira, H. Effect of High Hydrostatic Pressure on Antioxidant Capacity, Mineral and Starch Bioaccessibility of a Non Conventional Food: Prosopis Chilensis Seed. Food Res. Int. 2011, 44, 875–883.
  • Roginsky, V.; Lissi, E. A. Review of Methods to Determine Chain-Breaking Antioxidant Activity in Food. Food Chem. 2005, 92(2), 235–254.
  • Prior, R. L.; Wu, X.; Schaich, K. Standardized Methods for the Determination of Antioxidant Capacity and Phenolics in Foods and Dietary Supplements. J. Agric. Food Chem. 2005, 53(10), 4290–4302.
  • MacDonald‐Wicks, L. K.; Wood, L. G.; Garg, M. L. Methodology for the Determination of Biological Antioxidant Capacity in Vitro: A Review. J. Sci. Food Agric. 2006, 86(13), 2046–2056.
  • Wang, H.; Huang, T.; Tu, Z. C.; Ruan, C. Y.; Lin, D. The Adsorption of lead(II) Ions by Dynamic High Pressure Micro-Fluidization Treated Insoluble Soybean Dietary Fibers. J. Food Sci. Technol. 2016, 53, 25–32.
  • Zhang, J.; Wang, Z. W.; Yu, W. J.; Wu, J. H. Pectins from Canna Edulis Ker Residue and Their Physicochemical Characterization. Carbohydr. Polym. 2013, 83, 210–216.
  • Zhang, M.; Bai, X.; Zhang, Z. Extrusion Process Improves the Functionality of Soluble Dietary Fibers in Oat Bran. J. Cereal Sci. 2011, 54, 98–103.
  • Wen, Y.; Niu, M.; Zhang, B.; Zhao, S.; Xiong, S. Structural Characteristics and Functional Properties of Rice Bran Dietary Fibers Modified by Enzymatic and Enzyme-Micronization Treatments: Food Science Technology. Science Technologie Alimentaire. LWT Food Sci. Technol. 2016, 75, 344–351.
  • Park, K. H.; Lee, K. Y.; Lee, H. G. Chemical Composition and Physicochemical Properties of Barley Dietary Fibers by Chemical Modification. Int. J. Biol. Macromol. 2013, 60, 360–365.
  • Ma, M.; Mu, T. Modification of Deoiled Cumin Dietary Fibers with Laccase and Cellulase under High Hydrostatic Pressure. Carbohydr. Polym. 2016, 136, 87–94.

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