4.7 Article

Alginate microbeads incorporated with anthocyanins from purple corn (Zea mays L.) using electrostatic extrusion: Microencapsulation optimization, characterization, and stability studies

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DOI: 10.1016/j.ijbiomac.2023.125684

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Anthocyanins; Alginate; Microencapsulation; Optimization; Storage stability

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Purple corn anthocyanins were successfully encapsulated using an electrostatic extruder and alginate as a wall material. The encapsulation efficiency and particle size were optimized by adjusting the alginate concentration, extract concentration, and extrusion voltage. The optimized microbeads showed high encapsulation efficiency, small particle size, and good stability during storage at low temperatures, indicating their potential for intelligent packaging applications.
Microencapsulation of purple corn anthocyanins was carried out via an electrostatic extruder using alginate as a wall material. The influence of alginate concentration (1-2 %), extract concentration (20-30 %), and extrusion voltage (3-5 kV) on encapsulation efficiency and mean particle size was evaluated using response surface methodology. Optimal conditions were obtained to produce two different extract-loaded microbeads. Microbeads with the highest encapsulation efficiency (EE) and minimum particle size were achieved at 1 % alginate, 20 % extract, and 5 kV extrusion voltage (EEC3G = 70.26 %, EETPC = 91.59 %, particle size = 1.29 mm). In comparison, the microbeads with the efficient entrapment and maximum particle size were obtained at 1 % alginate, 26 % extract, and 3 kV (EEC3G = 81.15 %, EETPC = 91.01 %, particle size = 1.87 mm). Brunauer-Emmett-Teller (BET) surface area, pore size, and pore volume decreased after the inclusion of extract, with the lowest values reported for the smallest microbeads containing the extract. Scanning electron microscopy confirmed the results obtained by BET method and demonstrated fewer cracks and lower shrinkage of encapsulated samples. Fourier-transform infrared results proved the presence of anthocyanins and further possible interactions between phenolics and alginate. Stability studies revealed the color maintenance of anthocyanins-loaded microbeads during 4 weeks of storage at 4 degrees C and 8 degrees C. Moreover, the small and large particles showed a 7.6 and 3.4-fold reduction in degradation rate at 4 degrees C compared to their unencapsulated counterparts. Anthocyanins-loaded alginate microbeads retained over 80 % of cyanidin-3-glucoside at 4 degrees C and 8 degrees C, suggesting a promising potential of optimized microbeads for intelligent packaging applications.

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