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Isolation, modification, and characterization of rice starch with emphasis on functional properties and industrial application: a review

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  • Abbas, K. A., S. K. Khalil, and A. S. M. Hussin. 2010. Modified starches and their usages in selected food products: A review study. Journal of Agricultural Science 2 (2):90–100. doi: 10.5539/jas.v2n2p90.
  • Achille, T. F., A. Nrsquo, G. Georges, and K. Alphonse. 2007. Contribution to light transmittance modeling in starch media. African Journal of Biotechnology 6 (5):569–75.
  • Ackar, D., D. Subaric, J. Babic, B. Milicevic, and A. Jozinovic. 2012. Modification of wheat starch with succinic acid/acetanhydride and azelaic acid/acetanhydride mixtures. II. Chemical and physical properties. Journal of Food Science and Technology 51 (8):1463–72. doi: 10.1007/s13197-012-0642-y.
  • Adebowale, K. O., and O. S. Lawal. 2003. Microstructure, physicochemical properties and retrogradation behaviour of Mucuna bean (Mucuna pruriens) starch on heat moisture treatments. Food Hydrocolloids 17 (3):265–72. doi: 10.1016/S0268-005X(02)00076-0.
  • Ahmad Malik, M., and D. C. Saxena. 2016. Effect on physicochemical and thermal properties of buckwheat (Fagopyrum esculentum) starch by acid hydrolysis combined with heat moisture treatment. Journal of Food Processing and Preservation 40 (6):1352–63. doi: 10.1111/jfpp.12720.
  • Ahmad, M. Z., and A. Bhattacharya. 2010. Isolation and physicochemical characterization of Assam Bora rice starch for use as a plasma volume expander. Current Drug Delivery 7 (2):162–7. doi: 10.2174/156720110791011800.
  • Alcázar-Alay, S. C., and M. A. A. Meireles. 2015. Physicochemical properties, modifications and applications of starches from different botanical sources. Food Science and Technology (Campinas) 35 (2):215–36. doi: 10.1590/1678-457X.6749.
  • Ali, A., T. A. Wani, I. A. Wani, and F. A. Masoodi. 2016. Comparative study of the physico-chemical properties of rice and corn starches grown in Indian temperate climate. Journal of the Saudi Society of Agricultural Sciences 15 (1):75–82. doi: 10.1016/j.jssas.2014.04.002.
  • Amini, R. K., M. Z. Islam, Y. Kitamura, and M. Kokawa. 2019. Utilization of fermented rice milk as a novel coagulant for development of paneer (soft cheese). Foods (Basel, Switzerland) 8 (8):339. doi: 10.3390/foods8080339.
  • An, H. J., and J. M. King. 2009. Using ozonation and amino acids to change pasting properties of rice starch. Journal of Food Science 74 (3):C278–83. doi: 10.1111/j.1750-3841.2009.01109.x.
  • Anderson, A. K., H. S. Guraya, C. James, and L. Salvaggio. 2002. Digestibility and pasting properties of rice starch heat moisture treated at the melting temperature (Tm). Starch - Stärke 54 (9):401–9. doi: 10.1002/1521-379X(200209)54:9<401::AID-STAR401>3.0.CO;2-Z.
  • Arns, B., J. Bartz, M. Radunz, J. A. do Evangelho, V. Z. Pinto, E. da Rosa Zavareze, and A. R. G. Dias. 2015. Impact of heat-moisture treatment on rice starch, applied directly in grain paddy rice or in isolated starch. LWT - Food Science and Technology 60 (2):708–13. doi: 10.1016/j.lwt.2014.10.059.
  • Arunyanart, T., and S. Charoenrein. 2008. Effect of sucrose on the freeze-thaw stability of rice starch gels: Correlation with microstructure and freezable water. Carbohydrate Polymers 74 (3):514–8. doi: 10.1016/j.carbpol.2008.04.002.
  • Ashogbon, A. O., and E. T. Akintayo. 2012. Morphological, functional and pasting properties of starches separated from rice cultivars grown in Nigeria. International Food Research Journal 19 (2):665–71.
  • Ashogbon, A. O., and E. T. Akintayo. 2014. Recent trend in the physical and chemical modification of starches from different botanical sources: A review. Starch - Stärke 66 (1–2):41–57. doi: 10.1002/star.201300106.
  • Ashwar, B. A., A. Gani, I. A. Wani, A. Shah, F. A. Masoodi, and D. C. Saxena. 2016. Production of resistant starch from rice by dual autoclaving-retrogradation treatment: In vitro digestibility, thermal and structural characterization. Food Hydrocolloids 56:108–17. doi: 10.1016/j.foodhyd.2015.12.004.
  • Baldwin, P. M. 2001. Starch granule-associated proteins and polypeptides: A review. Starch - Stärke 53 (10):475–503. doi: 10.1002/1521-379X(200110)53:10<475::AID-STAR475>3.0.CO;2-E.
  • Bao, J., and C. J. Bergman. 2004. The functionality of rice starch. In Starch in food, 258–94. Sawston, UK: Woodhead Publishing.
  • Barichello, V., R. Y. Yada, and R. H. Coffin. 1991. Starch properties of various potatoes (Solanum tuberosum L.): Cultivars susceptible and resistant to low temperature sweetening. Journal of the Science of Food and Agriculture 56 (3):385–97. doi: 10.1002/jsfa.2740560314.
  • Batey, I. L., and B. M. Curtin. 2000. Effects on pasting viscosity of starch and flour from different operating conditions for the Rapid Visco Analyser. Cereal Chemistry Journal 77 (6):754–60. doi: 10.1094/CCHEM.2000.77.6.754.
  • BeMiller, J. N. 1997. Starch modification: Challenges and prospects. Starch - Stärke 49 (4):127–31. doi: 10.1002/star.19970490402.
  • Benmoussa, M., K. A. Moldenhauer, and B. R. Hamaker. 2007. Rice amylopectin fine structure variability affects starch digestion properties. Journal of Agricultural and Food Chemistry 55 (4):1475–9. doi: 10.1021/jf062349x.
  • Berski, W., A. Ptaszek, P. Ptaszek, R. Ziobro, G. Kowalski, M. Grzesik, and B. Achremowicz. 2011. Pasting and rheological properties of oat starch and its derivatives. Carbohydrate Polymers 83 (2):665–71. doi: 10.1016/j.carbpol.2010.08.036.
  • Bertoft, E., K. Piyachomkwan, P. Chatakanonda, and K. Sriroth. 2008. Internal unit chain composition in amylopectins. Carbohydrate Polymers 74 (3):527–43. doi: 10.1016/j.carbpol.2008.04.011.
  • Bet, C. D., de Oliveira, C. S., Colman, T. A. D., Bisinella, R. Z. B., Beninca, C., Lacerda, L. G., Ramos, A. P. and Schnitzler, E. (2019). Aqueous extraction of organic amaranth starch and their by-products. Journal of Thermal Analysis and Calorimetry 138 (4): 2733–49. doi: 10.1007/s10973-019-08374-7.
  • Bhandari, P. N., R. S. Singhal, and D. D. Kale. 2002. Effect of Succinylation on the Rheological Profile of Starch Pastes. Carbohydrate Polymers 47 (4):365–71. doi: 10.1016/S0144-8617(01)00215-6.
  • Bhat, F. M., and C. S. Riar. 2019. Effect of chemical composition, granule structure and crystalline form of pigmented rice starches on their functional characteristics. Food Chemistry 297:124984. doi: 10.1016/j.foodchem.2019.124984.
  • Bhattacharya, A., S. Akhter, S. Shahnawaz, A. W. Siddiqui, and M. Z. Ahmad. 2010. Evaluation of Assam Bora rice starch as plasma volume expander by polymer analysis. Current Drug Delivery 7 (5):436–41. doi: 10.2174/156720110793566209.
  • Biliaderis, C. G., T. J. Maurice, and J. R. Vose. 1980. Starch gelatinization phenomena studied by differential scanning calorimetry. Journal of Food Science 45 (6):1669–74. doi: 10.1111/j.1365-2621.1980.tb07586.x.
  • Biliaderis, C. G., C. M. Page, T. J. Maurice, and B. O. Juliano. 1986. Thermal characterization of rice starches: A polymeric approach to phase transitions of granular starch. Journal of Agricultural and Food Chemistry 34 (1):6–14. doi: 10.1021/jf00067a002.
  • Bird, A. R., A. Lopez-Rubio, A. K. Shrestha, and M. J. Gidley. 2009. Resistant starch in vitro and in vivo: Factors determining yield, structure, and physiological relevance. In Modern biopolymer science, eds. S. Kasapis, I. T. Norton, and J. B. Ubbink, 449–510. San Diego, CA: Academic Press.
  • Bitik, A., G. Sumnu, and M. Oztop. 2019. Physicochemical and structural characterization of microfluidized and sonicated legume starches. Food and Bioprocess Technology 12 (7):1144–56. doi: 10.1007/s11947-019-02264-4.
  • Blazek, J., and L. Copeland. 2008. Pasting and swelling properties of wheat flour and starch in relation to amylose content. Carbohydrate Polymers 71 (3):380–7. doi: 10.1016/j.carbpol.2007.06.010.
  • Bogracheva, T. Y., V. J. Morris, S. G. Ring, and C. L. Hedley. 1998. The granular structure of C-type pea starch and its role in gelatinization. Biopolymers 45 (4):323–32. doi: 10.1002/(SICI)1097-0282(19980405)45:4<323::AID-BIP6>3.0.CO;2-N.
  • Bos, C. E., G. K. Bolhuis, C. F. Lerk, and C. A. A. Duineveld. 1992. Evaluation of modified rice starch, a new excipient for direct compression. Drug Development and Industrial Pharmacy 18 (1):93–106. doi: 10.3109/03639049209043686.
  • Bourtoom, T. 2008. Edible films and coatings: Characteristics and properties. International Food Research Journal 15 (3):237–48.
  • Brand, J. C., P. L. Nicholson, A. W. Thorburn, and A. S. Truswell. 1985. Food processing and the glycemic index. The American Journal of Clinical Nutrition 42 (6):1192–6. doi: 10.1093/ajcn/42.6.1192.
  • Brodnjak, U. V., and D. Muck. 2017. Printing quality of chitosan-rice starch coated packaging paper. Bulgar. Chem. Commun 49:85–91.
  • Brunnschweiler, J., D. Luethi, S. Handschin, Z. Farah, F. Escher, and B. Conde-Petit. 2005. Isolation, physicochemical characterization and application of yam (Dioscorea spp.) starch as thickening and gelling agent. Starch - Stärke 57 (3–4):107–17. doi: 10.1002/star.200400327.
  • Buléon, A., P. Colonna, V. Planchot, and S. Ball. 1998. Starch granules: Structure and biosynthesis. International Journal of Biological Macromolecules 23 (2):85–112. doi: 10.1016/S0141-8130(98)00040-3.
  • Cai, J., J. Man, J. Huang, Q. Liu, W. Wei, and C. Wei. 2015. Relationship between structure and functional properties of normal rice starches with different amylose contents. Carbohydrate Polymers 125:35–44. doi: 10.1016/j.carbpol.2015.02.067.
  • Carmona-Garcia, R., M. M. Sanchez-Rivera, G. Méndez-Montealvo, B. Garza-Montoya, and L. A. Bello-Pérez. 2009. Effect of the cross-linked reagent type on some morphological, physicochemical and functional characteristics of banana (Musa paradisiaca) starch. Carbohydrate Polymers 76 (1):117–22. doi: 10.1016/j.carbpol.2008.09.029.
  • Chandra, S., S. Singh, and D. Kumari. 2015. Evaluation of functional properties of composite flours and sensorial attributes of composite flour biscuits. Journal of Food Science and Technology 52 (6):3681–8. doi: 10.1007/s13197-014-1427-2.
  • Chavan, U. D., F. Shahidi, R. Hoover, and C. Perera. 1999. Characterization of beach pea (Lathyrus maritimus L.) starch. Food Chemistry 65 (1):61–70. doi: 10.1016/S0308-8146(98)00158-7.
  • Chen, M. H., C. J. Bergman, A. M. McClung, J. D. Everette, and R. E. Tabien. 2017. Resistant starch: Variation among high amylose rice varieties and its relationship with apparent amylose content, pasting properties and cooking methods. Food Chemistry 234:180–9. doi: 10.1016/j.foodchem.2017.04.170.
  • Chiou, H., M. Martin, and M. Fitzgerald. 2002. Effect of purification methods on rice starch structure. Starch - Stärke 54 (9):415–20. doi: 10.1002/1521-379X(200209)54:9<415::AID-STAR415>3.0.CO;2-F.
  • Choi, J. M., C. S. Park, M. Y. Baik, H. S. Kim, Y. S. Choi, H. W. Choi, and D. H. Seo. 2018. Enzymatic extraction of starch from broken rice using freeze-thaw infusion with food-grade protease. Starch - Stärke 70 (1–2):1700007. doi: 10.1002/star.201700007.
  • Chung, H. J., H. S. Lim, and S. T. Lim. 2006. Effect of partial gelatinization and retrogradation on the enzymatic digestion of waxy rice starch. Journal of Cereal Science 43 (3):353–9. doi: 10.1016/j.jcs.2005.12.001.
  • Chung, H. J., Q. Liu, R. Huang, Y. Yin, and A. Li. 2010. Physicochemical properties and in vitro starch digestibility of cooked rice from commercially available cultivars in Canada. Cereal Chemistry 87 (4):297–304. doi: 10.1094/CCHEM-87-4-0297.
  • Chung, H. J., Q. Liu, L. Lee, and D. Z. Wei. 2011. Relationship between the structure, physicochemical properties and in vitro digestibility of rice starches with different amylose contents. Food Hydrocolloids 25 (5):968–75. doi: 10.1016/j.foodhyd.2010.09.011.
  • Chung, H., Q. Liu, K. Peter Pauls, M. Z. Fan, and R. Yada. 2008. In vitro starch digestibility, expected glycemic index and some physicochemical properties of starch and flour from common bean (Phaseolus vulgaris L.) varieties grown in Canada. Food Research International 41 (9):869–75. doi: 10.1016/j.foodres.2008.03.013.
  • Coffman, C. V., and V. V. Garcia. 1977. Functional properties and amino acid content of a protein isolate from mung bean flour. Journal of Food Technology 12:473–80. doi: 10.1111/j.1365-2621.1977.tb00132.x.
  • Collins, J. A., M. S. Litwin, H. Lutz, R. Klose, J. Ring, L. Thorén, B. Tschirren, and P. Lundsgaard-Hansen. 1979. To which extent is the clinical use of dextran, gelatin and hydroxyethyl starch influenced by the incidence and severity of anaphylactoid reactions? Vox Sanguinis 36 (1):39–49. 9. doi: 10.1159/000460426.
  • Colussi, R., Pinto, V. Z. El Halal, S. L. M. Vanier, N. L. Villanova, F. A. Silva, e R. M. da Rosa Zavareze, E. Dias. and A. R. G. 2014. Structural, morphological, and physicochemical properties of acetylated high-, medium-, and low-amylose rice starches. Carbohydrate Polymers 103:405–13. doi: 10.1016/j.carbpol.2013.12.070.
  • Copeland, L., J. Blazek, H. Salman, and M. C. Tang. 2009. Form and functionality of starch. Food Hydrocolloids 23 (6):1527–34. doi: 10.1016/j.foodhyd.2008.09.016.
  • Cornejo, F., and C. M. Rosell. 2015. Physicochemical properties of long rice grain varieties in relation to gluten free bread quality. LWT - Food Science and Technology 62 (2):1203–10. doi: 10.1016/j.lwt.2015.01.050.
  • Crosbie, G. B. 1991. The relationship between starch swelling properties, past viscosity and boiled noodle quality in wheat flours. Journal of Cereal Science 13 (2):145–50. doi: 10.1016/S0733-5210(09)80031-3.
  • Cruz, B. R., A. S. Abraão, A. M. Lemos, and F. M. Nunes. 2013. Chemical composition and functional properties of native chestnut starch (Castanea sativa Mill). Carbohydrate Polymers 94 (1):594–602. doi: 10.1016/j.carbpol.2012.12.060.
  • da Silva, L. R., C. W. P. de Carvalho, J. I. Velasco, and F. M. Fakhouri. 2020. Extraction and characterization of starches from pigmented rice. International Journal of Biological Macromolecules 156:485–93. doi: 10.1016/j.ijbiomac.2020.04.034.
  • de Guzman, M. K., S. Parween, V. M. Butardo, C. M. Alhambra, R. Anacleto, C. Seiler, A. R. Bird, C. P. Chow, and N. Sreenivasulu. 2017. Investigating glycemic potential of rice by unraveling compositional variations in mature grain and starch mobilization patterns during seed germination. Scientific Reports 7 (1):1–14. doi: 10.1038/s41598-017-06026-0.
  • de Souza, D., A. F. Sbardelotto, D. R. Ziegler, L. D. F. Marczak, and I. C. Tessaro. 2016. Characterization of rice starch and protein obtained by a fast alkaline extraction method. Food Chemistry 191:36–44. doi: 10.1016/j.foodchem.2015.03.032.
  • Deetae, P., S. Shobsngob, W. Varanyanond, P. Chinachoti, O. Naivikul, and S. Varavinit. 2008. Preparation, pasting properties and freeze thaw stability of dual modified crosslink-phosphorylated rice starch. Carbohydrate Polymers 73 (2):351–8. doi: 10.1016/j.carbpol.2007.12.004.
  • Deka, D., and N. Sit. 2016. Dual modification of taro starch by microwave and other heat moisture treatments. International Journal of Biological Macromolecules 92:416–22. doi: 10.1016/j.ijbiomac.2016.07.040.
  • Desai, P. M., C. V. Liew, and P. W. S. Heng. 2016. Review of disintegrants and the disintegration phenomena. Journal of Pharmaceutical Sciences 105 (9):2545–55. doi: 10.1016/j.xphs.2015.12.019.
  • Donald, A. M., T. A. Waigh, P. J. Jenkins, M. J. Gidley, M. Debet, and A. Smith. 1997. Internal structure of starch granules revealed by scattering studies. In Starch: Structure and functionality, P. J. Frazier, A. M. Donald, and P. Richmond, 172–9. Cambridge, UK: The Royal Society of Chemistry.
  • Eliasson, A. C. 1986. Viscoelastic behaviour during the gelatinization of starch I. Comparison of wheat, maize, potato and waxy-barley starches. Journal of Texture Studies 17 (3):253–65.
  • Ellis, R. P., M. P. Cochrane, M. F. B. Dale, C. M. Duffus, A. Lynn, I. M. Morrison, R. D. M. Prentice, J. S. Swanston, and S. A. Tiller. 1998. Starch production and industrial use. Journal of the Science of Food and Agriculture 77 (3):289–311. doi: 10.1002/(SICI)1097-0010(199807)77:3<289::AID-JSFA38>3.0.CO;2-D.
  • Englyst, H. N., S. M. Kingman, and J. H. Cummings. 1992. Classification and mea-surement of nutritionally important starch fractions. European Journal of Clinical Nutrition 45:S33–S50.
  • Fannon, J. E., R. J. Hauber, and J. N. BeMiller. 1992. Surface pores of starch granules. Cereal Chemistry 69 (3):284–8.
  • Faraj, A., T. Vasanthan, and R. Hoover. 2004. The effect of extrusion cooking on resistant starch formation in waxy and regular barley flours. Food Research International 37 (5):517–25. doi: 10.1016/j.foodres.2003.09.015.
  • Fechner, P. M., S. Wartewig, A. Kiesow, A. Heilmann, P. Kleinebudde, and R. H. Neubert. 2005. Influence of water on molecular and morphological structure of various starches and starch derivatives. Starch - Stärke 57 (12):605–15. doi: 10.1002/star.200500410.
  • Ferry, J. D. 1980. Viscoelastic properties of polymers. New York, NY: John Wiley and Sons.
  • Fitzgerald, M. 2004. Starch. In Rice chemistry and technology, ed. E. T. Champagne, 109–41. St. Paul, MN: American Association of Cereal Chemists, Inc.
  • Fortuna, T., R. Januszewska, L. Juszczak, A. Kielski, and M. Palasinski. 2000. The influence of starch pore characteristics on pasting behaviour. International Journal of Food Science and Technology 35 (3):285–91. doi: 10.1046/j.1365-2621.2000.00368.x.
  • Frei, M., P. Siddhuraju, and K. Becker. 2003. Studies on the in vitro starch digestibility and the glycemic index of six different indigenous rice cultivars from the Philippines. Food Chemistry 83 (3):395–402. doi: 10.1016/S0308-8146(03)00101-8.
  • Gallagher, E., O. Polenghi, and T. R. Gormley. 2002. Novel rice starches in gluten-free bread. Proceedings of the International Association of Cereal Chemists Conference; May 26–29, 2002, Budapest, Hungary.
  • Gallant, D. J., B. Bouchet, and P. M. Baldwin. 1997. Microscopy of starch: Evidence of a new level of granule organization. Carbohydrate Polymers 32 (3–4):177–91. doi: 10.1016/S0144-8617(97)00008-8.
  • Gani, A., B. A. Ashwar, G. Akhter, A. Shah, I. A. Wani, and F. A. Masoodi. 2017. Physico-chemical, structural, pasting and thermal properties of starches of fourteen Himalayan rice cultivars. International Journal of Biological Macromolecules 95:1101–7. doi: 10.1016/j.ijbiomac.2016.10.100.
  • Gani, A., S. M. Wani, F. A. Masoodi, and R. Salim. 2013. Characterization of rice starches extracted from Indian cultivars. Food Science and Technology International = Ciencia y Tecnologia de Los Alimentos Internacional 19 (2):143–52. doi: 10.1177/1082013212442189.
  • Gayin, J., E. S. M. Abdel-Aal, J. Manful, E. Bertoft, M. Marcone, and S. Ragaee. 2017. Physical, cooking and thermal properties of African rice (Oryza glaberrima) and its starch digestibility in vitro. LWT - Food Science and Technology 75:481–7. doi: 10.1016/j.lwt.2016.09.023.
  • Gernat, C., S. Radosta, G. Damaschun, and F. Schierbaum. 1990. Supramolecular structure of legume starches revealed by X-ray scattering. Starch - Stärke 42 (5):175–8. doi: 10.1002/star.19900420504.
  • Gharibzahedi, S. M. T. 2018. Favorite and traditional rice flour–based puddings, breads, and pastries in the north of Iran: A review. Journal of Ethnic Foods 5 (2):105–13. doi: 10.1016/j.jef.2018.03.001.
  • Gonçalves, P. M., C. P. Z. Noreña, N. P. da Silveira, and A. Brandelli. 2014. Characterization of starch nanoparticles obtained from Araucaria angustifolia seeds by acid hydrolysis and ultrasound. LWT - Food Science and Technology 58 (1):21–7. doi: 10.1016/j.lwt.2014.03.015.
  • Gonera, A., and P. Cornillon. 2002. Gelatinization of starch/gum/sugar systems studied by using DSC, NMR, and CSLM. Starch - Stärke 54 (11):508–16. doi: 10.1002/1521-379X(200211)54:11<508::AID-STAR508>3.0.CO;2-K.
  • Gul, K., A. K. Singh, and R. G. Sonkawade. 2016. Physicochemical, thermal and pasting characteristics of gamma irradiated rice starches. International Journal of Biological Macromolecules 85:460–6. doi: 10.1016/j.ijbiomac.2016.01.024.
  • Han, X. Z., and B. R. Hamaker. 2002. Partial leaching of granule-associated proteins from rice starch during alkaline extraction and subsequent gelatinization. Starch - Stärke 54 (10):454–60. doi: 10.1002/1521-379X(200210)54:10<454::AID-STAR454>3.0.CO;2-M.
  • Han, X. Z., O. H. Campanella, H. Guan, P. L. Keeling, and B. R. Hamaker. 2002a. Influence of maize starch granule-associated protein on the rheological properties of starch pastes. Part I. Large deformation measurements of paste properties. Carbohydrate Polymers 49 (3):315–21. doi: 10.1016/S0144-8617(01)00347-2.
  • Han, X. Z., O. H. Campanella, H. Guan, P. L. Keeling, and B. R. Hamaker. 2002b. Influence of maize starch granule-associated protein on the rheological properties of starch pastes. Part II. Dynamic measurements of viscoelastic properties of starch pastes. Carbohydrate Polymers 49 (3):323–30. doi: 10.1016/S0144-8617(01)00348-4.
  • Han, Z., X. A. Zeng, S. J. Yu, B. S. Zhang, and X. D. Chen. 2009. Effects of pulsed electric fields (PEF) treatment on physicochemical properties of potato starch. Innovative Food Science & Emerging Technologies 10 (4):481–5. doi: 10.1016/j.ifset.2009.07.003.
  • Hazarika, B. J., and N. Sit. 2016. Effect of dual modification with hydroxypropylation and cross-linking on physicochemical properties of taro starch. Carbohydrate Polymers 140:269–78. doi: 10.1016/j.carbpol.2015.12.055.
  • Herman, J., J. P. Remon, and J. D. Vilder. 1989. Modified starches as hydrophilic matrices for controlled oral delivery. I. Production and characterisation of thermally modified starches. International Journal of Pharmaceutics 56 (1):51–63. doi: 10.1016/0378-5173(89)90060-4.
  • Hizukuri, S. 1986. Polymodal distribution of the chain lengths of amylopectin and its significance. Carbohydrate Research 147 (2):342–7. doi: 10.1016/S0008-6215(00)90643-8.
  • Hong, Y., G. Liu, and Z. Gu. 2016. Recent advances of starch-based excipients used in extended-release tablets: A review. Drug Delivery 23 (1):12–20. doi: 10.3109/10717544.2014.913324.
  • Hoover, R. 2001. Composition, molecular structure, and physicochemical properties of tuber and root starches: A review. Carbohydrate Polymers 45 (3):253–67. doi: 10.1016/S0144-8617(00)00260-5.
  • Hoover, R. 2010. The impact of heat–moisture treatment on molecular structures and properties of starches isolated from different botanical sources. Critical Reviews in Food Science and Nutrition 50 (9):835–47. doi: 10.1080/10408390903001735.
  • Hoover, R., and T. Vasanthan. 1994. Effect of heat-moisture treatment on the structure and physicochemical properties of cereal, tuber, and legume starches. Carbohydrate Research 252 (1):33–53. doi: 10.1016/0008-6215(94)90004-3.
  • Hoover, R., T. Vasanthan, N. J. Senanayake, and A. M. Martin. 1994a. Study on the physicochemical properties on native, defatted and heat-moisture treated pigeon pea Cajanus cajan L.) starch. Carbohydrate Research 261 (1):13–24. doi: 10.1016/0008-6215(94)80002-2.
  • Hoover, R., T. Vasanthan, N. J. Senanayake, and A. M. Martin. 1994b. The effect of defatting and heat-moisture treatment on the retrogradation of starch gels from wheat, oat, potato and lentil. Carbohydrate Research 261 (1):13–24. doi: 10.1016/0008-6215(94)80002-2.
  • Horstmann, S. W., K. M. Lynch, and E. K. Arendt. 2017. Starch characteristics linked to gluten-free products. Foods 6 (4):29. doi: 10.3390/foods6040029.
  • Hoyos-Leyva, J. D., L. A. Bello-Pérez, J. Álvarez-Ramírez, and H. S. García. 2018. Microencapsulation using starch as wall material: A review. Food Reviews International 34 (2):148–61. doi: 10.1080/87559129.2016.1261298.
  • Hsu, R. J. C., S. Lu, Y. H. Chang, and W. Chiang. 2015. Effects of added water and retrogradation on starch digestibility of cooked rice flours with different amylose content. Journal of Cereal Science 61:1–7. doi: 10.1016/j.jcs.2014.03.002.
  • Hsu, S., S. Lu, and C. Huang. 2000. Viscoelastic changes of rice starch suspensions during gelatinization. Journal of Food Science 65 (2):215–20. doi: 10.1111/j.1365-2621.2000.tb15982.x.
  • Hu, H., W. Liu, J. Shi, Z. Huang, Y. Zhang, A. Huang, M. Yang, X. Qin, and F. Shen. 2016. Structure and functional properties of octenyl succinic anhydride modified starch prepared by a non-conventional technology. Starch - Stärke 68 (1–2):151–9. doi: 10.1002/star.201500195.
  • Hu, P., H. Zhao, Z. Duan, Z. Linlin, and D. Wu. 2004. Starch digestibility and the estimated glycemic score of different types of rice differing in amylose contents. Journal of Cereal Science 40 (3):231–7. doi: 10.1016/j.jcs.2004.06.001.
  • Huaisan, K., J. Uriyapongson, P. Rayas-Duarte, I. Alli, and V. Srijesdaruk. 2009. Effect of food additives on rheological and textural properties of frozen high amylose rice starch gels. International Journal of Food Properties 12 (1):145–61. doi: 10.1080/10942910802252015.
  • Huang, J., H. A. Schols, Z. Jin, E. Sulman, and A. G. J. Voragen. 2007. Characterization of differently sized granule fractions of yellow peas, cowpea and chickpea starches after modification with acetic anhydride and vinyl acetate. Carbohydrate Polymers 67 (1):11–20. doi: 10.1016/j.carbpol.2006.04.011.
  • Hui, P. 2017. Method for extracting starch from broken rice and extracting device. Patents. CN105348395A, China.
  • Hung, P. V., T. Maeda, and N. Morita. 2007. Study on physicochemical characteristics of waxy and high-amylose wheat starches in comparison with normal wheat starch. Starch - Stärke 59 (3–4):125–31. doi: 10.1002/star.200600577.
  • Hunter, D. 1947. Papermaking: The history and technique of an ancient craft, 194. New York, NY: Dover Publications.
  • Ismail, M. M., M. I. Abou-Dobara, and M. R. Nawal. 2018. Functional rice rayeb milk: Chemical, microbiological and sensory properties. Journal of Nutrition and Health Sciences 5 (2):203.
  • Jaisut, D., S. Prachayawarakorn, W. Varanyanond, P. Tungtrakul, and S. Soponronnarit. 2008. Effects of drying temperature and tempering time on starch digestibility of brown fragrant rice. Journal of Food Engineering 86 (2):251–8. doi: 10.1016/j.jfoodeng.2007.10.002.
  • Jane, J. L. 1992. Effect of amylose molecular size and amylopectin branch chain length on paste properties of starch. Cereal Chemistry 69:60–5.
  • Jane, J. L., Y. Y. Chen, L. F. Lee, A. E. McPherson, K. S. Wong, M. Radosavljevic, and T. Kasemsuwan. 1999. Effects of amylopectin branch chain length and amylose content on the gelatinization and pasting properties of starch. Cereal Chemistry Journal 76 (5):629–37. doi: 10.1094/CCHEM.1999.76.5.629.
  • Jang, E. H., S. J. Lee, J. Y. Hong, H. J. Chung, Y. T. Lee, B. S. Kang, and S. T. Lim. 2016. Correlation between physicochemical properties of japonica and indica rice starches. LWT - Food Science and Technology 66:530–7. doi: 10.1016/j.lwt.2015.11.001.
  • Jenkins, D. J., M. J. Thorne, K. Camelon, A. Jenkins, A. V. Rao, R. H. Taylor, L. U. Thompson, J. Kalmusky, R. Reichert, and T. Francis. 1982. Effect of processing on digestibility and the blood glucose response: A study of lentils. The American Journal of Clinical Nutrition 36 (6):1093–101. doi: 10.1093/ajcn/36.6.1093.
  • Jenkins, D. J., T. M. Wolever, R. H. Taylor, H. Barker, H. Fielden, J. M. Baldwin, A. C. Bowling, H. C. Newman, A. L. Jenkins, and D. V. Goff. 1981. Glycemic index of foods: A physiological basis for carbohydrate exchange. The American Journal of Clinical Nutrition 34 (3):362–6. doi: 10.1093/ajcn/34.3.362.
  • Jenkins, D. J. A., T. M. S. Wolever, A. L. Jenkins, R. G. Josse, and G. S. Wong. 1984. The glycemic response to carbohydrate foods. The Lancet 324 (8399):388–91. doi: 10.1016/S0140-6736(84)90554-3.
  • Jeong, J.-H., M.-H. Lee, and M.-J. Oh. 1994. Physicochemical properties of phosphorylated rice starch. Journal of the Korean Society of Food Science and Nutrition 23 (2):244–50.
  • Jiranuntakul, W., C. Puttanlek, V. Rungsardthong, S. Puncha-Arnon, and D. Uttapap. 2011. Micro structural and physicochemical properties of heat-moisture treated waxy and normal starches. Journal of Food Engineering 104 (2):246–58. doi: 10.1016/j.jfoodeng.2010.12.016.
  • John, J. K., K. C. M. Raja, S. Rani, S. N. Moorthy, and A. C. Eliasson. 2002. Properties of arrow root starch treated with aqueous HCl at ambient temperature. Food and Chemical Toxicology 67:10–4.
  • Juliano, B. O. 1985. Polysaccharides, proteins, and lipids of rice. In Rice chemistry and technology, ed. B. O. Juliano, 59–174. St. Paul, MN: American Association of Cereal Chemists.
  • Kaith, B. S., R. Jindal, H. Mittal, and K. Kumar. 2010. Temperature pH and electric stimulus responsive hydrogels from Gum ghatti and polyacrylamide-synthesis, characterization and swelling studies. Der Chemica Sinica 1:44–54.
  • Karapantsios, T. D. 2006. Conductive drying kinetics of pregelatinized starch thin films. Journal of Food Engineering 76 (4):477–89. doi: 10.1016/j.jfoodeng.2005.05.047.
  • Karim, A. A., M. H. Norziah, and C. C. Seow. 2000. Methods for the study of starch retrogradation. Food Chemistry 71 (1):9–36. doi: 10.1016/S0308-8146(00)00130-8.
  • Karmakar, R., D. K. Ban, and U. Ghosh. 2014. Comparative study of native and modified starches isolated from conventional and nonconventional sources. International Food Research Journal 21 (2):597–602.
  • Karwasra, B. L., B. S. Gill, and M. Kaur. 2017. Rheological and structural properties of starches from different Indian wheat cultivars and their relationships. International Journal of Food Properties 20 (sup1):S1093–S106. doi: 10.1080/10942912.2017.1328439.
  • Kaur, K., and N. Singh. 2000. Amylose-lipid complex formation during cooking of rice flour. Food Chemistry 71 (4):511–7. doi: 10.1016/S0308-8146(00)00202-8.
  • Kaur, L., J. Singh, and N. Singh. 2006. Effect of cross-linking on some properties of potato (Solanum tuberosum L.) starches. Journal of the Science of Food and Agriculture 86 (12):1945–54. doi: 10.1002/jsfa.2568.
  • Kaur, L., J. Singh, H. Singh, and O. J. McCarthy. 2008. Starch–cassia gum interactions: A microstructure–Rheology study. Food Chemistry 111 (1):1–10. doi: 10.1016/j.foodchem.2008.03.027.
  • Kaur, M., and K. S. Sandhu. 2010. In vitro digestibility, structural and functional properties of starch from pigeon pea (Cajanus cajan) cultivars grown in India. Food Research International 43 (1):263–8. doi: 10.1016/j.foodres.2009.09.027.
  • Kaur, M., N. Kaur, M. Kaur, and K. S. Sandhu. 2015. Some properties of rice grains, flour and starches: A comparison of organic and conventional modes of farming. LWT - Food Science and Technology 61 (1):152–7. doi: 10.1016/j.lwt.2014.11.007.
  • Kaur, M., D. P. S. Oberoi, D. S. Sogi, and B. S. Gill. 2011. Physicochemical, morphological and pasting properties of acid treated starches from different botanical sources. Journal of Food Science and Technology 48 (4):460–5. doi: 10.1007/s13197-010-0126-x.
  • Keetels, C. J. A. M., and T. van Vliet. 1994. Gelation and retrogradation of concentrated starch gels. In Gums and stabilizers for the food industry, eds. D. R. Lineback, G. O. Pillips, P. A. Williams, and D. J. Wedlock, 271–80. New York, NY: Oxford Press.
  • Kesarwani, A., P. Y. Chiang, and S. S. Chen. 2016. Rapid visco analyzer measurements of japonica rice cultivars to study interrelationship between pasting properties and farming system. International Journal of Agronomy 2016:1–6. doi: 10.1155/2016/3595326.
  • Khunae, P., T. Tran, and P. Sirivongpaisal. 2007. Effect of heat moisture on structural and thermal properties of rice starch differing in amylose content. Starch - Stärke 59 (12):593–9. doi: 10.1002/star.200700618.
  • Klunklin, W., and G. Savage. 2018. Effect of substituting purple rice flour for wheat flour on physicochemical characteristics, in vitro digestibility, and sensory evaluation of biscuits. Journal of Food Quality 2018:1–8. doi: 10.1155/2018/8052847.
  • Knorr, D., and A. Angersbach. 1998. Impact of high intensity electric field pulses on plant membrance permeabilisation. Trends in Food Science & Technology 9 (5):185–91. doi: 10.1016/S0924-2244(98)00040-5.
  • Kong, X., P. Zhu, Z. Sui, and J. Bao. 2015. Physicochemical properties of starches from diverse rice cultivars varying in apparent amylose content and gelatinisation temperature combinations. Food Chemistry 172:433–40. doi: 10.1016/j.foodchem.2014.09.085.
  • Korhonen, O., P. Raatikainen, P. Harjunen, J. Nakari, E. Suihko, S. Peltonen, M. Vidgren, and P. Paronen. 2000. Starch acetates–multifunctional direct compression excipients. Pharmaceutical Research 17 (9):1138–43.
  • Korma, S. A., K. Alahmad, S. Niazi, A. F. Ammar, F. Zaaboul, and T. Zhang. 2016. Chemically modified starch and utilization in food stuffs. International Journal of Nutrition and Food Sciences 5 (4):264–72.
  • Kuakpetoon, D., and Y. J. Wang. 2001. Characterization of different starches oxidized by hypochlorite. Starch - Stärke 53 (5):211–8. doi: 10.1002/1521-379X(200105)53:5<211::AID-STAR211>3.0.CO;2-M.
  • Kumari, A. G. I. P., C. S. Ranadheera, P. H. P. Prasanna, N. D. Senevirathne, and J. K. Vidanarachchi. 2015. Development of a rice incorporated synbiotic yogurt with low retrogradation properties. International Food Research Journal 22 (5):2032–40.
  • Kweon, M., L. Slade, and H. Levine. 2008. Role of glassy and crystalline transitions in the responses of corn starches to heat and high pressure treatments: Prediction of solute-induced barostabilty from solute-induced thermostability. Carbohydrate Polymers 72 (2):293–9. doi: 10.1016/j.carbpol.2007.08.013.
  • Lawal, O. S. 2004. Composition, physicochemical properties and retrogradation characteristics of native, oxidized, acetylated and acid-thinned new cocoyam (Xanthosoma sagittifolium) starch. Food Chemistry 87 (2):205–18. doi: 10.1016/j.foodchem.2003.11.013.
  • Lawal, O. S., K. O. Adebowale, B. M. Ogunsanwo, L. L. Barba, and N. S. Ilo. 2005. Oxidized and acid thinned starch derivatives of hybrid maize: Functional characteristics, wide-angle X-ray diffractometry and thermal properties. International Journal of Biological Macromolecules 35 (1–2):71–9. doi: 10.1016/j.ijbiomac.2004.12.004.
  • Lawal, O. S., R. Lapasin, B. Bellich, T. O. Olayiwola, A. Cesàro, M. Yoshimura, and K. Nishinari. 2011. Rheology and functional properties of starches isolated from five improved rice varieties from West Africa. Food Hydrocolloids 25 (7):1785–92. doi: 10.1016/j.foodhyd.2011.04.010.
  • Lee, J. S., R. Kumar, H. Rozman, and B. Azemi. 2005. Pasting, swelling and solubility properties of UV initiated starch-graft-poly (AA). Food Chemistry 91 (2):203–11. doi: 10.1016/j.foodchem.2003.08.032.
  • Lee, K. Y., Y. R. Kim, K. H. Park, and H. G. Lee. 2006. Effects of α-glucanotransferase treatment on the thermo-reversibility and freeze-thaw stability of a rice starch gel. Carbohydrate Polymers 63 (3):347–54. doi: 10.1016/j.carbpol.2005.08.050.
  • Lee, Y. E., and E. M. Osman. 1991. Correlation of morphological changes of rice starch granules with rheological properties during heating in excess water. Applied Biological Chemistry 34 (4):379–85.
  • Lee, Y., and Y. H. Chang. 2015. Effects of galactomannan addition on rheological, pasting and physical properties of water chestnut starch. Journal of Texture Studies 46 (1):58–66. doi: 10.1111/jtxs.12113.
  • Leslie, T., H. Xiao, and M. Dong. 2005. Tailor-modified starch/cyclodextrin-based polymers for use in tertiary oil recovery. Journal of Petroleum Science and Engineering 46 (4):225–32. doi: 10.1016/j.petrol.2005.01.003.
  • Li, H., J. Li, Y. Xiao, B. Cui, Y. Fang, and L. Guo. 2019. In vitro digestibility of rice starch granules modified by β-amylase, transglucosidase and pullulanase. International Journal of Biological Macromolecules 136:1228–36. doi: 10.1016/j.ijbiomac.2019.06.111.
  • Li, J. Y., and A. I. Yeh. 2001. Relationships between thermal, rheological characteristics and swelling power for various starches. Journal of Food Engineering 50 (3):141–8. doi: 10.1016/S0260-8774(00)00236-3.
  • Li, Q., Q. Xie, S. Yu, and Q. Gao. 2013. New approach to study starch gelatinization applying a combination of hot-stage light microscopy and differential scanning calorimetry. Journal of Agricultural and Food Chemistry 61 (6):1212–8. doi: 10.1021/jf304201r.
  • Li, Y. Q., Q. Chen, X. H. Liu, and Z. X. Chen. 2008. Inactivation of soybean lipoxygenase in soymilk by pulsed electric fields. Food Chemistry 109 (2):408–14. doi: 10.1016/j.foodchem.2008.01.001.
  • Li, Z., X. Kong, X. Zhou, K. Zhong, S. Zhou, and X. Liu. 2016. Characterization of multi-scale structure and thermal properties of Indica rice starch with different amylose contents. RSC Advances 6 (109):107491–7. doi: 10.1039/C6RA17922C.
  • Li, H., Y. Qi, Y. Zhao, J. Chi, and S. Cheng. 2019. Starch and its derivatives for paper coatings: A review. Progress in Organic Coatings 135:213–27. doi: 10.1016/j.porgcoat.2019.05.015.
  • Lii, C. Y., Y. Y. Shao, and K. H. Tseng. 1995. Gelation mechanism and rheological properties of rice starch. Cereal Chemistry 72:393–400.
  • Lin, J. H., H. Singh, Y. T. Chang, and Y. H. Chang. 2011. Factor analysis of the functional properties of rice flours from mutant genotypes. Food Chemistry 126 (3):1108–14. doi: 10.1016/j.foodchem.2010.11.140.
  • Lin, Q., Z. Liu, H. Xiao, L. Li, F. Yu, and W. Tian. 2009. Studies on the pasting and rheology of rice starch with different protein residual. In International Conference on Computer and Computing Technologies in Agriculture, 407–19. Berlin, Heidelberg: Springer.
  • Lindeboom, N., P. R. Chang, and R. T. Tyler. 2004. Analytical, biochemical and physicochemical aspects of starch granule size, with emphasis on small granule starches: A review. Starch - Stärke 56 (34):89–99. doi: 10.1002/star.200300218.
  • Liu, H., L. Ramsden, and H. Corke. 1999. Physical properties of cross-linked and acetylated normal and waxy rice starch. Starch - Stärke 51 (7):249–52. doi: 10.1002/(SICI)1521-379X(199907)51:7<249::AID-STAR249>3.0.CO;2-O.
  • López, O. V., N. E. Zaritzky, and M. A. García. 2010. Physicochemical characterization of chemically modified corn starches related to rheological behavior, retrogradation and film forming capacity. Journal of Food Engineering 100 (1):160–8. doi: 10.1016/j.jfoodeng.2010.03.041.
  • Lopez-Rubio, A., B. M. Flanagan, E. P. Gilbert, and M. J. Gidley. 2008. A novel approach for calculating starch crystallinity and its correlation with double helix content: A combined XRD and NMR study. Biopolymers 89 (9):761–8. doi: 10.1002/bip.21005.
  • Lu, S., L. N. Chen, and C. Y. Lii. 1997. Correlations between the fine structure, physicochemical properties, and retrogradation of amylopectins from Taiwan rice varieties. Cereal Chemistry Journal 74 (1):34–9. doi: 10.1094/CCHEM.1997.74.1.34.
  • Lumdubwong, N., and P. A. Seib. 2000. Rice starch isolation by alkaline protease digestion of wet-milled rice flour. Journal of Cereal Science 31 (1):63–74. doi: 10.1006/jcrs.1999.0279.
  • Majzoobi, M., Y. Pesaran, G. Mesbahi, and A. Farahnaky. 2016. Evaluation of the effects of hydrothermal treatment on rice flour and its related starch. International Journal of Food Properties 19 (9):2135–45. doi: 10.1080/10942912.2015.1110165.
  • Majzoobi, M., M. Radi, A. Farahnaky, J. Jamalian, T. Tongdang, and G. Mesbahi. 2011. Physicochemical properties of pre-gelatinized wheat starch produced by a twin drum drier. Journal of Agricultural Science and Technology 13:193–202.
  • Manaois, R. V. 2009. Modification of rice starch properties by addition of amino acids at various pH levels. Department of Food Science, Louisiana State University and Agricultural and Mechanical College, Louisiana.
  • Márquez-Gómez, M., T. Galicia-García, R. Márquez-Meléndez, M. Ruiz-Gutiérrez, and A. Quintero-Ramos. 2018. Spray-dried microencapsulation of orange essential oil using modified rice starch as wall material. Journal of Food Processing and Preservation 42 (2):e13428.
  • Marselles-Fontanet, A. R., and O. Martin-Belloso. 2007. Optimization and validation of PEF processing conditions to inactivate oxidative enzymes of grape juice. Journal of Food Engineering 83:452–62.
  • Martínez, M. M., C. M. Rosell, and M. Gomez. 2014. Modification of wheat flour functionality and digestibility through different extrusion conditions. Journal of Food Engineering 143:74–9. doi: 10.1016/j.jfoodeng.2014.06.035.
  • Mason, W. R. 2009. Starch use in foods. In Starch: Chemistry and technology, eds. J. BeMiller, and R. Whistler, 3rd ed., 745–95. California: Academic Press.
  • Matalanis, A. M., O. H. Campanella, and B. R. Hamaker. 2009. Storage retrogradation behavior of sorghum, maize and rice starch pastes related to amylopectin fine structure. Journal of Cereal Science 50 (1):74–81. doi: 10.1016/j.jcs.2009.02.007.
  • Maurer, H. W. 2009. Starch. In Starch: Chemistry and technology, eds. J. BeMiller, and R. Whistler, 3rd ed., 657–713. California: Academic Press.
  • McPherson, A. E., and J. Jane. 1999. Comparison of waxy potato with other root and tuber starches. Carbohydrate Polymers 40 (1):57–70. doi: 10.1016/S0144-8617(99)00039-9.
  • Méndez-Montealvo, G., F. J. García-Suárez, O. Paredes-López, and L. A. Bello-Pérez. 2008. Effect of nixtamalization on morphological and rheological characteristics of maize starch. Journal of Cereal Science 48 (2):420–5. doi: 10.1016/j.jcs.2007.10.007.
  • Mir, S. A., and S. J. D. Bosco. 2014. Cultivar difference in physicochemical properties of starches and flours from temperate rice of Indian Himalayas. Food Chemistry 157:448–56. doi: 10.1016/j.foodchem.2014.02.057.
  • Mitchell, J. R. 2009. Rice starches: Production and properties. In Starch: Chemistry and Technology, eds. J. BeMiller, and R. Whistler, 569–79. New York: Academic Press.
  • Miyazaki, M., P. Van Hung, T. Maeda, and N. Morita. 2006. Recent advances in application of modified starches for breadmaking. Trends in Food Science & Technology 17 (11):591–9. doi: 10.1016/j.tifs.2006.05.002.
  • Moin, A., T. M. Ali, and A. Hasnain. 2019. Thermal, morphological, and physicochemical characteristics of succinylated–crosslinked rice starches. Cereal Chemistry 96 (5):885–94. doi: 10.1002/cche.10191.
  • Morrison, W. R., and M. N. Azudin. 1987. Variation in amylose and lipid contents and some physical properties of rice starches. Journal of Cereal Science 5 (1):35–44. doi: 10.1016/S0733-5210(87)80007-3.
  • Morrison, W. R., and J. Karkalas. 1990. Starch. In Methods in plant biochemistry, ed. P. M. Dey, Vol. 2, 323–52. London, UK: Academic Press.
  • Morrison, W. R., T. P. Milligan, and M. N. Azudin. 1984. A relationship between the amylose and lipid contents of starches from diploid cereals. Journal of Cereal Science 2 (4):257–71. doi: 10.1016/S0733-5210(84)80014-4.
  • Mun, S., and M. Shin. 2018. Molecular structures of rice starch to investigate the differences in the processing quality of rice flours. Food Science and Biotechnology 27 (4):1007–14. doi: 10.1007/s10068-018-0330-4.
  • Nikuni, Z., and S. Huzukuri. 1958. Purification and reaction of high molecular substances, 46. Tokyo, Japan: Kyoritsu Publishing Co.
  • No, J., S. Mun, and M. Shin. 2019. Properties and digestibility of octenyl succinic anhydride-modified japonica-type waxy and non-waxy rice starches. Molecules 24 (4):765. doi: 10.3390/molecules24040765.
  • Noda, T., Y. Takahata, T. Sato, I. Suda, T. Morishitta, K. Ishiguro, and O. Yamakawa. 1998. Relationships between chain length distribution of amylopectin and gelatinization properties within the same botanical origin for sweet potato and buckwheat. Carbohydrate Polymers 37 (2):153–8. doi: 10.1016/S0144-8617(98)00047-2.
  • Odeku, O. A., and B. L. Akinwande. 2012. Effect of the mode of incorporation on the disintegrant properties of acid modified water and white yam starches. Saudi Pharmaceutical Journal: SPJ 20 (2):171–5. doi: 10.1016/j.jsps.2011.09.001.
  • Patindol, J., A. Flowers, M. I. Kuo, Y. J. Wang, and D. Gealy. 2006. Comparison of physicochemical properties and starch structure of red rice and cultivated rice. Journal of Agricultural and Food Chemistry 54 (7):2712–8. doi: 10.1021/jf0523418.
  • Pérez-Quirce, S., C. Collar, and F. Ronda. 2014. Significance of healthy viscous dietary fibres on the performance of gluten-free rice-based formulated breads. International Journal of Food Science & Technology 49 (5):1375–82. doi: 10.1111/ijfs.12439.
  • Pérez-Quirce, S., F. Ronda, A. Lazaridou, and C. G. Biliaderis. 2017. Effect of microwave radiation prereatment of rice flour on gluten-free breadmakin and molecular size of β-glucans in the fortified breads. Food and Bioprocess Technology 10 (8):1412–21. doi: 10.1007/s11947-017-1910-7.
  • Peroni, F. H. G., T. S. Rocha, and C. M. L. Franco. 2006. Some structural and physicochemical characteristics of tuber and root starches. Food Science and Technology International 12 (6):505–13. doi: 10.1177/1082013206073045.
  • Pohja, S., E. Suihko, M. Vidgren, P. Paronen, and J. Ketolainen. 2004. Starch acetate as a tablet matrix for sustained drug release. Journal of Controlled Release 94 (2–3):293–302. doi: 10.1016/j.jconrel.2003.09.017.
  • Polesi, L. F., S. B. S. Sarmento, and S. G. Canniatti-Brazaca. 2018. Starch digestibility and functional properties of rice starch subjected to gamma radiation. Rice Science 25 (1):42–51. doi: 10.1016/j.rsci.2017.08.003.
  • Polesi, L. F., S. B. S. Sarmento, J. de Moraes, C. M. L. Franco, and S. G. Canniatti-Brazaca. 2016. Physicochemical and structural characteristics of rice starch modified by irradiation. Food Chemistry 191:59–66. doi: 10.1016/j.foodchem.2015.03.055.
  • Pringels, E., D. Ameye, C. Vervaet, P. Foreman, and J. P. Remon. 2005. Starch/Carbopol spray-dried mixtures as excipients for oral sustained drug delivery. Journal of Controlled Release 103 (3):635–41. doi: 10.1016/j.jconrel.2004.12.022.
  • Puchongkavarin, H., S. Varavinit, and W. Bergthaller. 2005. Comparative study of pilot scale rice starch production by an alkaline and an enzymatic process. Starch - Stärke 57 (3–4):134–44. doi: 10.1002/star.200400279.
  • Punia, S., A. K. Siroha, K. S. Sandhu, and M. Kaur. 2019. Rheological and pasting behavior of OSA modified mungbean starches and its utilization in cake formulation as fat replacer. International Journal of Biological Macromolecules 128:230–6. doi: 10.1016/j.ijbiomac.2019.01.107.
  • Putseys, J. A., L. Lamberts, and J. A. Delcour. 2010. Amylose-inclusion complexes: Formation, identity and physico-chemical properties. Journal of Cereal Science 51 (3):238–47. doi: 10.1016/j.jcs.2010.01.011.
  • Raina, C. S., S. Singh, A. S. Bawa, and D. C. Saxena. 2006. Some characteristics of acetylated, cross-linked and dual modified Indian rice starches. European Food Research and Technology 223 (4):561–70. doi: 10.1007/s00217-005-0239-z.
  • Ratnayake, W. S., R. Hoover, and T. Warkentin. 2002. Pea starch: Composition, structure and properties—A review. Starch - Stärke 54 (6):217–34. doi: 10.1002/1521-379X(200206)54:6<217::AID-STAR217>3.0.CO;2-R.
  • Ray, M., K. Ghosh, S. Singh, and K. C. Mondal. 2016. Folk to functional: An explorative overview of rice-based fermented foods and beverages in India. Journal of Ethnic Foods 3 (1):5–18. doi: 10.1016/j.jef.2016.02.002.
  • Ren, G. Y., D. Li, L. J. Wang, N. Özkan, and Z. H. Mao. 2010. Morphological properties and thermo-analysis of micronized cassava starch. Carbohydrate Polymers 79 (1):101–5. doi: 10.1016/j.carbpol.2009.07.031.
  • Ren, S. 2017. Comparative analysis of some physicochemical properties of 19 kinds of native starches. Starch - Stärke 69 (9–10):1600367. doi: 10.1002/star.201600367.
  • Ritika, B. Y., B. S. Khatkar, and B. S. Yadav. 2010. Physicochemical, morphological, thermal and pasting properties of starches isolated from rice cultivars grown in India. International Journal of Food Properties 13 (6):1339–54. doi: 10.1080/10942910903131407.
  • Rubens, P., and K. Heremans. 2000. Pressure-temperature gelatinization phase diagram of starch: An in situ Fourier transform infrared study. Biopolymers 54 (7):524–30. doi: 10.1002/1097-0282(200012)54:7<524::AID-BIP50>3.0.CO;2-Y.
  • Saboktakin, M. R., A. Maharnamov, M. A. Ramazanov, and M. Makhram. 2007. Modification of carboxymethyl starch as nano carriers for oral drug delivery. Nature and Science 5 (3):30–6.
  • Sampedro, F., A. Rivas, D. Rodrigo, A. Martínez, and M. Rodrigo. 2007. Pulsed electric fields inactivation of Lactobacillus plantarum in an orange juice-milk based beverage: Effect of process parameters. Journal of Food Engineering 80 (3):931–8. doi: 10.1016/j.jfoodeng.2006.08.013.
  • Sandhu, K. S., and N. Singh. 2005. Relationships between selected properties of starches from different corn lines. International Journal of Food Properties 8 (3):481–91. doi: 10.1080/10942910500267711.
  • Sandhu, K. S., and A. K. Siroha. 2017. Relationships between physicochemical, thermal, rheological and in vitro digestibility properties of starches from pearl millet cultivars. LWT - Food Science and Technology 83:213–24. doi: 10.1016/j.lwt.2017.05.015.
  • Sandhu, K. S., N. Singh, and M. Kaur. 2004. Characteristics of the different corn types and their grain fractions: Physicochemical, thermal, morphological, and rheological properties of starches. Journal of Food Engineering 64 (1):119–27. doi: 10.1016/j.jfoodeng.2003.09.023.
  • Sandhu, K. S., N. Singh, and S. T. Lim. 2007a. A comparison of native and acid thinned normal and waxy corn starches: Physicochemical, thermal, morphological and pasting properties. LWT - Food Science and Technology 40 (9):1527–36. doi: 10.1016/j.lwt.2006.12.012.
  • Sandhu, K. S., N. Singh, and S. T. Lim. 2007b. Functional properties of normal, waxy and sugary corn starches. Journal of Food Science and Technology 44 (6):565–71.
  • Sandhu, K. S., N. Singh, and N. S. Malhi. 2007. Some properties of corn grains and their flours I: Physicochemical, functional and chapati-making properties of flours. Food Chemistry 101 (3):938–46. doi: 10.1016/j.foodchem.2006.02.040.
  • Sarko, A., and H. C. H. Wu. 1978. The crystal structures of A-, B-, and C-polymorphs of amylose and starch. Starch - Stärke 30 (3):73–8. doi: 10.1002/star.19780300302.
  • Sasaki, T., and J. Matsuki. 1998. Effects of wheat starch structure on swelling power. Cereal Chemistry Journal 75 (4):525–9. doi: 10.1094/CCHEM.1998.75.4.525.
  • Sasaki, T., T. Okunishi, I. Sotome, and H. Okadome. 2016. Effects of milling and cooking conditions of rice on in vitro starch digestibility and blood glucose response. Cereal Chemistry Journal 93 (3):242–7. doi: 10.1094/CCHEM-08-15-0155-R.
  • Schofield, J. D., and Greenwell, P. 1987. Wheat starch granule proteins and their technological significance. In Cereals in a European context, ed. I. D. Morton, 407–20. Chichester, UK: Ellis Horwood Ltd.
  • Schulman, A. H., and K. Kammiovirta. 1991. Purification of barley starch by protein extraction. Starch - Stärke 43 (10):387–9. doi: 10.1002/star.19910431004.
  • Seetapan, N., N. Limparyoon, A. Fuongfuchat, C. Gamonpilas, and P. Methacanon. 2016. Effect of freezing rate and starch granular morphology on ice formation and non-freezable water content of flour and starch gels. International Journal of Food Properties 19 (7):1616–30. doi: 10.1080/10942912.2015.1107575.
  • Sharma, M., D. N. Yadav, A. K. Singh, and S. K. Tomar. 2015. Rheological and functional properties of heat moisture treated pearl millet starch. Journal of Food Science and Technology 52 (10):6502–10. doi: 10.1007/s13197-015-1735-1.
  • Shen, Y., N. Zhang, Y. Xu, J. Huang, M. A. Yuan, D. Wu, and X. Shu. 2019. Physicochemical properties of hydroxypropylated and cross-linked rice starches differential in amylose content. International Journal of Biological Macromolecules 128:775–81. doi: 10.1016/j.ijbiomac.2019.01.194.
  • Shi, Y. C., T. Capitani, P. Trzasko, and R. Jeffcoat. 1998. Molecular structure of a low-amylopectin starch and other high-amylose maize starches. Journal of Cereal Science 27 (3):289–99. doi: 10.1006/jcrs.1997.9998.
  • Shibanuma, Y., Y. Takeda, and S. Hizukuri. 1996. Molecular and pasting properties of some wheat starches. Carbohydrate Polymers 29 (3):253–61. doi: 10.1016/0144-8617(96)00026-4.
  • Shin, S. I., C. J. Lee, D.-I. Kim, H. A. Lee, J.-J. Cheong, K. M. Chung, M.-Y. Baik, C. S. Park, C. H. Kim, and T. W. Moon. 2007. Formation, characterization, and glucose response in mice to rice starch with low digestibility produced by citric acid treatment. Journal of Cereal Science 45 (1):24–33. doi: 10.1016/j.jcs.2006.05.001.
  • Singh, A. V., and L. K. Nath. 2012. Synthesis and evaluation of physicochemical properties of cross-linked sago starch. International Journal of Biological Macromolecules 50 (1):14–8. doi: 10.1016/j.ijbiomac.2011.09.003.
  • Singh, I., B. Kaur, and P. Juneja. 2014. Preparation and characterization of starch-metal silicate co-precipitates – Evaluation as tablet superdisintegrant. Polimery w Medycynie 44 (3):157–66.
  • Singh, J., L. Kaur, and O. J. McCarthy. 2007. Factors influencing the physico-chemical, morphological, thermal and rheological properties of some chemically modified starches for food applications-A review. Food Hydrocolloids 21 (1):1–22. doi: 10.1016/j.foodhyd.2006.02.006.
  • Singh, N., N. Inouchi, and K. Nishinari. 2006. Structural, thermal and viscoelastic characteristics of starches separated from normal, sugary and waxy maize. Food Hydrocolloids 20 (6):923–35. doi: 10.1016/j.foodhyd.2005.09.009.
  • Singh, N., L. Kaur, K. S. Sandhu, J. Kaur, and K. Nishinari. 2006. Relationships between physicochemical, morphological, thermal, rheological properties of rice starches. Food Hydrocolloids 20 (4):532–42. doi: 10.1016/j.foodhyd.2005.05.003.
  • Singh, N., K. S. Sandhu, and M. Kaur. 2004. Characterization of starches separated from Indian chickpea (Cicer arietinum L.) cultivars. Journal of Food Engineering 63 (4):441–9. doi: 10.1016/j.jfoodeng.2003.09.003.
  • Singh, N., J. Singh, L. Kaur, N. S. Sodhi, and B. S. Gill. 2003. Morphological, thermal and rheological properties of starches from different botanical sources. Food Chemistry 81 (2):219–31. doi: 10.1016/S0308-8146(02)00416-8.
  • Singh, S., and M. Kaur. 2017. Steady and dynamic shear rheology of starches from different oat cultivars in relation to their physicochemical and structural properties. International Journal of Food Properties 20 (12):3282–94. doi: 10.1080/10942912.2017.1286504.
  • Singh, S., C. S. Raina, A. S. Bawa, and D. C. Saxena. 2006. Effect of heat-moisture treatment and acid modification on rheological, textural and differential scanning calorimetry characteristics of sweet potato starch. Journal of Food Science 70 (6):E373–E378. doi: 10.1111/j.1365-2621.2005.tb11441.x.
  • Siroha, A. K., and K. S. Sandhu. 2018. Physicochemical, rheological, morphological, and in vitro digestibility properties of cross-linked starch from pearl millet cultivars. International Journal of Food Properties 21 (1):1371–85. doi: 10.1080/10942912.2018.1489841.
  • Sodhi, N. S., and N. Singh. 2003. Morphological, thermal and rheological properties of starches separated from rice cultivars grown in India. Food Chemistry 80 (1):99–108. doi: 10.1016/S0308-8146(02)00246-7.
  • Srichuwong, S., T. C. Sunarti, T. Mishima, N. Isono, and M. Hisamatsu. 2005. Starches from different botanical sources I: Contribution of amylopectin fine structure to thermal properties and enzyme digestibility. Carbohydrate Polymers 60 (4):529–38. doi: 10.1016/j.carbpol.2005.03.004.
  • Sukhija, S., S. Singh, and C. S. Riar. 2016. Effect of oxidation, cross-linking and dual modification on physicochemical, crystallinity, morphological, pasting and thermal characteristics of elephant foot yam (Amorphophallus paeoniifolius) starch. Food Hydrocolloids 55:56–64. doi: 10.1016/j.foodhyd.2015.11.003.
  • Sun, D., and B. Yoo. 2015. Effect of tapioca starch addition on rheological, thermal, and gelling properties of rice starch. LWT - Food Science and Technology 64 (1):205–11. doi: 10.1016/j.lwt.2015.05.062.
  • Svegmark, K., and A. M. Hermansson. 1993. Microstructure and rheological properties of composites of potato starch granules and amylose: A comparison of observed and predicted structures. Food Structure 12 (2):181–93.
  • Syahariza, Z. A., E. Li, and J. Hasjim. 2010. Extraction and dissolution of starch from rice and sorghum grains for accurate structural analysis. Carbohydrate Polymers 82 (1):14–20. doi: 10.1016/j.carbpol.2010.04.014.
  • Syahariza, Z. A., S. Sar, J. Hasjim, M. J. Tizzotti, and R. G. Gilbert. 2013. The importance of amylose and amylopectin fine structures for starch digestibility in cooked rice grains. Food Chemistry 136 (2):742–9. doi: 10.1016/j.foodchem.2012.08.053.
  • Tao, H., J. Yan, J. Zhao, Y. Tian, Z. Jin, and X. Xu. 2015. Effect of Multiple Freezing/Thawing Cycles on the Structural and Functional Properties of Waxy Rice Starch. PLoS One 10 (5):e0127138. doi: 10.1371/journal.pone.0127138.
  • Tao, K., C. Li, W. Yu, R. G. Gilbert, and E. Li. 2019. How amylose molecular fine structure of rice starch affects functional properties. Carbohydrate Polymers 204:24–31. doi: 10.1016/j.carbpol.2018.09.078.
  • Tester, R. F., and J. Karkalas. 1996. Swelling and gelatinization of oat starches. Cereal Chemistry 73 (2):271–7.
  • Tester, R. F., and W. R. Morrison. 1990. Swelling and gelatinization of cereal starches. I. Effects of amylopectin, amylose and lipids. Cereal Chemistry 67:551–7.
  • Thombre, N. A., A. V. Vishwakarma, T. S. Jadhav, and S. J. Kshirsagar. 2016. Formulation and development of plasma volume expander using natural and modified starch from Solanum tuberosum. International Journal of Pharmaceutical Investigation 6 (4):207–17. doi: 10.4103/2230-973X.195930.
  • Thory, R., and K. S. Sandhu. 2017. A comparison of mango kernel starch with a novel starch from litchi (Litchi chinensis) kernel: Physicochemical, morphological, pasting, and rheological properties. International Journal of Food Properties 20 (4):911–21. doi: 10.1080/10942912.2016.1188403.
  • Toker, O. S., M. Dogan, E. Canıyılmaz, N. B. Ersöz, and Y. Kaya. 2013. The effects of different gums and their interactions on the rheological properties of a dairy dessert: A mixture design approach. Food and Bioprocess Technology 6 (4):896–908. doi: 10.1007/s11947-012-0787-8.
  • Tran, T. T., K. J. Shelat, D. Tang, E. Li, R. G. Gilbert, and J. Hasjim. 2011. Milling of rice grains. The degradation on three structural levels of starch in rice flour can be independently controlled during grinding. Journal of Agricultural and Food Chemistry 59 (8):3964–73. doi: 10.1021/jf105021r.
  • Tufvesson, F., V. Skrabanja, I. Björck, H. L. Elmståhl, and A. C. Eliasson. 2001. Digestibility of starch systems containing amylose–glycerol monopalmitin complexes. LWT - Food Science and Technology 34 (3):131–9. doi: 10.1006/fstl.2000.0727.
  • USDA. 2020. Grain: World markets and trade. United States Department of Agriculture, Foreign Agricultural Service, Washington, DC. Accessed December 21, 2020. https://downloads.usda.library.cornell.edu/usda-esmis/files/zs25x844t/5425m323c/ns064z89z/grain__1_.pdf.
  • Van Hung, P., H. T. Chau, and N. T. L. Phi. 2016. In vitro digestibility and in vivo glucose response of native and physically modified rice starches varying amylose contents. Food Chemistry 191:74–80. doi: 10.1016/j.foodchem.2015.02.118.
  • Vasanthan, T., and R. S. Bhatty. 1998. Enhancement of resistant starch (RS3) in amylomaize, barley, field pea and lentil starches. Starch - Stärke 50 (7):286–91. doi: 10.1002/(SICI)1521-379X(199807)50:7<286::AID-STAR286>3.0.CO;2-O.
  • Verma, D. K., M. Mohan, and B. Asthir. 2013. Physicochemical and cooking characteristics of some promising basmati genotypes. Asian Journal Food and Agro-Industry 6 (2):94–9.
  • Verma, D. K., M. Mohan, P. K. Prabhakar, and P. P. Srivastav. 2015. Physico-chemical and cooking characteristics of Azad basmati. International Food Research Journal 22 (4):1380–9.
  • Verma, D. K., M. Mohan, V. K. Yadav, B. Asthir, and S. K. Soni. 2012. Inquisition of some physicochemical characteristics of newly evolved basmati rice. Environment and Ecology 30 (1):114–7.
  • Verma, D. K., and P. P. Srivastav. 2020. Exploring the physicochemical and cooking properties of some Indian aromatic and non-aromatic rice (Oryza sativa L.). Oryza-An International Journal on Rice 57 (2):146–69. doi: 10.35709/ory.2020.57.2.9.
  • Villanueva, M., J. Harasym, J. M. Muñoz, and F. Ronda. 2019. Rice flour physically modified by microwave radiation improves viscoelastic behavior of doughs and its bread-making performance. Food Hydrocolloids 90:472–81. doi: 10.1016/j.foodhyd.2018.12.048.
  • Villarreal, M. E., P. D. Ribotta, and L. B. Iturriaga. 2013. Comparing methods for extracting amaranthus starch and the properties of the isolated starches. LWT - Food Science and Technology 51 (2):441–7. doi: 10.1016/j.lwt.2012.11.009.
  • Wang, L., and Y. J. Wang. 2001. Structures and physicochemical properties of acid-thinned corn, potato and rice starches. Starch - Stärke 53 (11):570–6. doi: 10.1002/1521-379X(200111)53:11<570::AID-STAR570>3.0.CO;2-S.
  • Wang, L., and Y. J. Wang. 2004. Application of high-intensity ultrasound and surfactants in rice starch isolation. Cereal Chemistry Journal 81 (1):140–4. doi: 10.1094/CCHEM.2004.81.1.140.
  • Wang, L., Y. J. Wang, and R. Porter. 2002. Structures and physicochemical properties of six wild rice starches. Journal of Agricultural and Food Chemistry 50 (9):2695–9. doi: 10.1021/jf011379r.
  • Wang, L., B. Xie, G. Xiong, X. Du, Y. Qiao, and L. Liao. 2012. Study on the granular characteristics of starches separated from Chinese rice cultivars. Carbohydrate Polymers 87 (2):1038–44. doi: 10.1016/j.carbpol.2011.08.006.
  • Wang, L., C. Zhang, Z. Chen, X. Wang, K. Wang, Y. Li, R. Wang, X. Luo, Y. Li, and J. Li. 2018. Effect of annealing on the physico-chemical properties of rice starch and the quality of rice noodles. Journal of Cereal Science 84:125–31. doi: 10.1016/j.jcs.2018.10.004.
  • Wang, R., J. Wan, C. Liu, X. Xia, and Y. Ding. 2019. Pasting, thermal, and rheological properties of rice starch partially replaced by inulin with different degrees of polymerization. Food Hydrocolloids 92:228–32. doi: 10.1016/j.foodhyd.2019.02.008.
  • Wang, S., P. Li, J. Yu, P. Guo, and S. Wang. 2017. Multi-scale structures and functional properties of starches from Indica hybrid, Japonica and waxy rice. International Journal of Biological Macromolecules 102:136–43. doi: 10.1016/j.ijbiomac.2017.04.020.
  • Wang, X., R. Appels, X. Zhang, D. Diepeveen, K. Torok, S. Tomoskozi, F. Bekes, W. Ma, P. Sharp, and S. Islam. 2017. Protein interactions during flour mixing using wheat flour with altered starch. Food Chemistry 231:247–57. doi: 10.1016/j.foodchem.2017.03.115.
  • Wang, X., Y. Yuan, and T. Yue. 2015. The application of starch-based ingredients in flavor encapsulation. Starch - Stärke 67 (3–4):225–36. doi: 10.1002/star.201400163.
  • Wang, Y. J., and L. F. Wang. 2002. Structures of four waxy starches in relation to thermal, pasting and textural properties. Cereal Chemistry Journal 79 (2):252–6. doi: 10.1094/CCHEM.2002.79.2.252.
  • Wang, Y. J., and L. F. Wang. 2003. Physicochemical properties of common and waxy corn starches oxidized by different levels of sodium hypochlorite. Carbohydrate Polymers 52 (3):207–17. doi: 10.1016/S0144-8617(02)00304-1.
  • Wang, Y. J., V. D. Truong, and L. Wang. 2003. Structures and rheological properties of corn starch as affected by acid hydrolysis. Carbohydrate Polymers 52 (3):327–33. doi: 10.1016/S0144-8617(02)00323-5.
  • Wani, A. A., P. Singh, M. A. Shah, U. Schweiggert-Weisz, K. Gul, and I. A. Wani. 2012. Rice starch diversity: Effects on structural, morphological, thermal, and physicochemical properties—A review. Comprehensive Reviews in Food Science and Food Safety 11 (5):417–36. doi: 10.1111/j.1541-4337.2012.00193.x.
  • Wani, A. A., P. Singh, M. A. Shah, I. A. Wani, A. Götz, M. Schott, and C. Zacherl. 2013. Physico-chemical, thermal and rheological properties of starches isolated from newly released rice cultivars grown in Indian temperate climates. LWT - Food Science and Technology 53 (1):176–83. doi: 10.1016/j.lwt.2013.02.020.
  • Watcharatewinkul, Y., D. Uttapap, C. Puttanlek, and V. Rungsardthong. 2010. Enzyme digestibility and acid/shear stability of heat-moisture treated canna starch. Starch - Stärke 62 (3–4):205–16. doi: 10.1002/star.200900221.
  • Wattanachant, S., S. K. S. Muhamad, D. Mat-Hashim, and R. A. Rahman. 2002. Characterisation of hydroxypropylated crosslinked sago starch as compared to commercial modified starches. Journal of Food Science and Technology 24:439–50.
  • Whistler, R. L., and J. N. BeMiller. 1997. Carbohydrate chemistry for food scientist. St. Paul, MN: American Association of Cereal Chemists.
  • Wickramasinghe, H. A. M., and T. Noda. 2008. Physicochemical properties of starches from Sri Lankan rice varieties. Food Science and Technology Research 14 (1):49–54. doi: 10.3136/fstr.14.49.
  • Wongkhalaung, C., and M. Boonyaratanakornkit. 2000. Development of a yogurt-type Product from Saccharified Rice. Kasetsart Journal (Natural Science) 34:107–16.
  • Wu, A. C., E. Li, and R. G. Gilbert. 2014. Exploring extraction/dissolution procedures for analysis of starch chain-length distributions. Carbohydrate Polymers 114:36–42. doi: 10.1016/j.carbpol.2014.08.001.
  • Wu, C., Q.-Y. Wu, M. Wu, W. Jiang, J.-Y. Qian, S.-Q. Rao, L. Zhang, Q. Li, and C. Zhang. 2019. Effect of pulsed electric field on properties and multi-scale structure of japonica rice starch. LWT - Food Science and Technology 116:108515. doi: 10.1016/j.lwt.2019.108515.
  • Wu, H. C. H., and A. Sarko. 1978. The double-helical molecular structure of crystalline A-amylose. Carbohydrate Research 61 (1):27–40. doi: 10.1016/S0008-6215(00)84464-X.
  • Wu, Y., M. Niu, and H. Xu. 2019. Pasting behaviors, gel rheological properties, and freeze-thaw stability of rice flour and starch modified by green tea polyphenols. LWT - Food Science and Technology 118:108796.
  • Xiao, H.-X., Q.-L. Lin, G.-Q. Liu, and F.-X. Yu. 2012. A comparative study of the characteristics of cross-linked, oxidized and dual-modified rice starches. Molecules (Basel, Switzerland) 17 (9):10946–57. doi: 10.3390/molecules170910946.
  • Yadav, R. B., N. Kumar, and B. S. Yadav. 2016. Characterization of banana, potato, and rice starch blends for their physicochemical and pasting properties. Cogent Food and Agriculture 2:1127873.
  • Yan, H., and G. U. Zhengbiao. 2010. Morphology of modified starches prepared by different methods. Food Research International 43 (3):767–72. doi: 10.1016/j.foodres.2009.11.013.
  • Yang, C. Z., X. L. Shu, L. L. Zhang, X. Y. Wang, H. J. Zhao, C. X. Ma, and D. X. Wu. 2006. Starch properties of mutant rice high in resistant starch. Journal of Agricultural and Food Chemistry 54 (2):523–8. doi: 10.1021/jf0524123.
  • Yang, Z., X. Han, H. Wu, L. Zhang, L. Zhang, and M. J. Iqbal. 2017. Impact of emulsifiers addition on the retrogradation of rice gels during low-temperature storage. Journal of Food Quality 2017:1–7. doi: 10.1155/2017/4247132.
  • Yano, M., I. Okuno, J. Kawakami, H. Satoh, and T. Omura. 1985. High amylose mutants of rice, Oryza sativa L. TAG. Theoretical and Applied Genetics. Theoretische Und Angewandte Genetik 69 (3):253–7. doi: 10.1007/BF00662436.
  • Yazid, N. S. M., N. Abdullah, N. Muhammad, and H. M. Matias-Peralta. 2018. Application of starch and starch-based products in food industry. Journal of Science and Technology 10 (2):144–74.
  • Ye, J., X. Hu, F. Zhang, C. Fang, C. Liu, and S. Luo. 2016. Freeze-thaw stability of rice starch modified by improved extrusion cooking technology. Carbohydrate Polymers 151:113–8. doi: 10.1016/j.carbpol.2016.05.026.
  • Ye, X., Y. Zhang, C. Qiu, H. Corke, and Z. Sui. 2019. Extraction and characterization of starch granule-associated proteins from rice that affect in vitro starch digestibility. Food Chemistry 276:754–60. doi: 10.1016/j.foodchem.2018.10.042.
  • Yeh, A. I., and S. L. Yeh. 1993. Some characteristics of hydroxypropylated and cross-linked rice starch. Cereal Chemistry 70:596.
  • Yoo, S.-H., and Y. H. Chang. 2018. Effect of tara gum addition on steady and dynamic shear rheological properties of rice starch isolated from the korean rice variety ‘boramchan’. Preventive Nutrition and Food Science 23 (3):254–9. doi: 10.3746/pnf.2018.23.3.254.
  • Yook, C., U. H. Pek, and K. H. Park. 1993. Gelatinization and retrogradation characteristics of hydroxypropylated and cross-linked rices. Journal of Food Science 58 (2):405–7. doi: 10.1111/j.1365-2621.1993.tb04285.x.
  • You, S. Y., S. T. Lim, J. H. Lee, and H. J. Chung. 2014. Impact of molecular and crystalline structures on in vitro digestibility of waxy rice starches. Carbohydrate Polymers 112:729–35. doi: 10.1016/j.carbpol.2014.06.065.
  • Yu, S., Y. Ma, and D.-W. Sun. 2010. Effects of freezing rates on starch retrogradation and textural properties of cooked rice during storage. LWT - Food Science and Technology 43 (7):1138–43. doi: 10.1016/j.lwt.2010.03.004.
  • Yu, S., Y. Ma, L. Menager, and D. W. Sun. 2012. Physicochemical properties of starch and flour from different rice cultivars. Food and Bioprocess Technology 5 (2):626–37. doi: 10.1007/s11947-010-0330-8.
  • Zamudio-Flores, P. B., A. Vergas-Torres, F. Gutierrez, and L. A. Bello-Perez. 2010. Physicochemical characterization of dually-modified banana starch. Agrociencia 44:283–95.
  • Zeng, F., Q. Gao, Z. Han, X. Zeng, and S. Yu. 2016. Structural properties and digestibility of pulsed electric field treated waxy rice starch. Food Chemistry 194:1313–9. doi: 10.1016/j.foodchem.2015.08.104.
  • Zhang, C., D. Xu, and Z. Zhu. 2014. Octenylsuccinylation of cornstarch to improve its sizing properties for polyester/cotton blend spun yarns. Fibers and Polymers 15 (11):2319–28. doi: 10.1007/s12221-014-2319-9.
  • Zhang, L. M. 2001. A review of starches and their derivatives for oilfield applications in China Starch. Starch - Stärke 53 (9):401–7. doi: 10.1002/1521-379X(200109)53:9<401::AID-STAR401>3.0.CO;2-2.
  • Zhang, Y., C. Chen, Y. Chen, and Y. Chen. 2019. Effect of rice protein on the water mobility, water migration and microstructure of rice starch during retrogradation. Food Hydrocolloids 91:136–42. doi: 10.1016/j.foodhyd.2019.01.015.
  • Zhang, Z., S. Zhao, and S. Xiong. 2010. Morphology and physicochemical properties of mechanically activated rice starch. Carbohydrate Polymers 79 (2):341–8. doi: 10.1016/j.carbpol.2009.08.016.
  • Zhong, F., Y. Li, A. M. Ibáñez, M. H. Oh, K. S. McKenzie, and C. Shoemaker. 2009. The effect of rice variety and starch isolation method on the pasting and rheological properties of rice starch pastes. Food Hydrocolloids 23 (2):406–14. doi: 10.1016/j.foodhyd.2008.02.003.
  • Zhou, H., J. Wang, H. Zhao, X. Fang, and Y. Sun. 2010. Characterization of starches isolated from different Chinese Baizhi (Angelica dahurica) cultivars. Starch - Stärke 62 (3–4):198–204. doi: 10.1002/star.200900214.
  • Zhou, X., and S. T. Lim. 2012. Pasting viscosity and in vitro digestibility of retrograded waxy and normal corn starch powders. Carbohydrate Polymers 87 (1):235–9. doi: 10.1016/j.carbpol.2011.07.045.
  • Zhu, D., H. Zhang, B. Guo, K. Xu, Q. Dai, C. Wei, G. Zhou, and Z. Huo. 2017. Effects of nitrogen level on structure and physicochemical properties of rice starch. Food Hydrocolloids 63:525–32. doi: 10.1016/j.foodhyd.2016.09.042.
  • Zhu, L. J., Q. Q. Liu, J. D. Wilson, M. H. Gu, and Y. C. Shi. 2011. Digestibility and physicochemical properties of rice (Oryza sativa L.) flours and starches differing in amylose content. Carbohydrate Polymers 86 (4):1751–9. doi: 10.1016/j.carbpol.2011.07.017.
  • Zia-Ud-Din, Xiong, H., Fei. and P. 2015. Physical and chemical modification of starches: A review. Critical Reviews in Food Science and Nutrition 57 (12):2691–705. doi: 10.1080/10408398.2015.1087379.
  • Zobel, H. F. 1988a. Starch crystal transformations and their industrial importance. Starch. Starch - Stärke 40 (1):1–7. doi: 10.1002/star.19880400102.
  • Zobel, H. F. 1988b. Molecules to granules - A comprehensive starch review. Starch - Stärke 40 (2):44–50. doi: 10.1002/star.19880400203.
  • Zobel, H. F. X. 1964. Ray analysis of starches granules. In Carboydrate chemistry, ed. R. L. Whistler, 109–13. New York, NY: Academic Press.
  • Zohoun, E. V., E. N. Tang, M. M. Soumanou, J. Manful, N. H. Akissoe, J. Bigoga, K. Futakuchi, and S. A. Ndindeng. 2018. Physicochemical and nutritional properties of rice as affected by parboiling steaming time at atmospheric pressure and variety. Food Science & Nutrition 6 (3):638–52. doi: 10.1002/fsn3.600.

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