4.7 Article

Exploring the effects of enzymatic and thermal treatments on banana starch characteristics

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ELSEVIER
DOI: 10.1016/j.ijbiomac.2023.127748

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Starch modification; HMT; Dual modification; Starch structure; Banana starch; Resistant starch; Slow digestive starch

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This study investigates the effects of modification processes on the nutritional and functional properties of banana starch. The results show that heat moisture treatment and dual modification can decrease resistant starch content and increase slow-digested starch content. Furthermore, the modifications also improve the structural and thermal stability of the starch, making it suitable for applications as a thickening agent in beverages and compotes.
Banana starch has a highly resistant starch (RS) and slow-digested starch (SDS) content, making it attractive as a functional ingredient. Unfortunately, banana starch requires modification processes due to the loss of RS and SDS during gelatinization because of its thermolabile characteristics. This study explores the effect of banana starch modification by enzymatic, heat moisture treatment (HMT) and dual modification (HMT+ enzymatic) on its nutritional (RS, SDS) and functional properties (hydration, structural, gelation, rheological). HMT and dual modifications decrease RS (from 44.62 g/100 g to 16.62 and 26.66 g/100 g, respectively) and increase SDS (from 21.72 g/100 g to 33.91 and 26.95 g/100 g, respectively) in raw starch but induce structural changes that enhance RS (from 3.10 g/100 g to 3.94 and 4.4 g/100 g, respectively) and SDS (from 2.58 g/100 g to 9.58 and 11.48 g/100 g) thermo-resistance in gelled starch. Also, changes in the functional properties of starches were evidenced, such as weaker gels (hardness < 41 g), lower water absorption (<12.35 g/g), high starch solubility (>1.77 g/100 g) and increased gelatinization temperature. Improved gelatinization temperature and RS ther-mostability resulted from modifications that could expand banana starch applications as a beverage and compote thickener agent.

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