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Alcoholic-alkaline modification of millet starch as an emerging resource to develop granular cold water swelling
Pegah Sattari1, Hadi Hashemi1, Seyed Mohammad Hashem Hosseini1
1Department of Food Science and Technology, School of Agriculture, Shiraz University, Shiraz, Iran.
Abstract:
In this study, granular cold water swelling (GCWS) millet starch was developed using alcoholic-alkaline treatment (AAT), applied at different temperatures, amounts and concentrations of sodium hydroxide and ethanol contents. Compared to the native starch, a significant enhancement in cold-water absorption (up to 10.40 g/g) and solubility (up to 14.11 %) was observed in GCWS starches. Morphological studies revealed smooth, polygonal and spherical granules in native starch, whereas GCWS starch granules exhibited wrinkled and indented surfaces. X-ray diffraction (XRD) analysis indicated the transition of A-type polymorph in native starch to V-type one in its GCWS counterpart. Fourier transform infrared (FTIR) spectroscopy confirmed no chemical changes upon applying AAT. Pasting properties, analysed by a Rapid Visco Analyser (RVA), represented that GCWS starches began to absorb water and increase viscosity at temperatures lower than that of native starch. Texture, turbidity, freeze-thaw stability and rheological properties of GCWS starches were influenced by different AATs. Overall, the results suggest that millet starch can be considered as a potential candidate for development of GCWS starch to be incorporated in food formulations.
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