Exploring the formation mechanism of resistant starch (RS3) prepared from high amylose maize starch by hydrothermal-alkali combined with ultrasonic treatment

热液循环 直链淀粉 超声 化学 淀粉 抗性淀粉 碱金属 食品科学 核化学 化学工程 色谱法 有机化学 工程类
作者
Shengjun Han,Yao Hu,Chao Li,Yiyang Yu,Yu Wang,Zongyan Gu,Zongwei Hao,Yaqing Xiao,Yingnan Liu,Kang Liu,Mingming Zheng,Yiqun Du,Yibin Zhou,Zhenyu Yu
出处
期刊:International Journal of Biological Macromolecules [Elsevier BV]
卷期号:258 (Pt 1): 128938-128938 被引量:22
标识
DOI:10.1016/j.ijbiomac.2023.128938
摘要

In this study, type III resistant starch (RS3) was prepared from high amylose maize starch (HAMS) using hydrothermal (RS-H), hydrothermal combined ultrasonication (RS-HU), hydrothermal-alkali (RS-HA), and hydrothermal-alkali combined ultrasonication (RS-HAU). The role of the preparation methods and the mechanism of RS3 formation were analyzed by studying the multiscale structure and digestibility of the starch. The SEM, NMR, and GPC results showed that hydrothermal-alkali combined with ultrasonication could destroy the granule structure and α-1,6 glycosidic bond of HAMS and reduce the molecular weight of HAMS from 195.306 kDa to 157.115 kDa. The other methods had a weaker degree of effect on the structure of HAMS, especially hydrothermal and hydrothermal combined ultrasonication. The multiscale structural results showed that the relative crystallinity, short-range orderliness, and thermal stability of RS-HAU were significantly higher compared with native HAMS. In terms of digestion, RS-HAU had the highest RS content of 69.40 %. In summary, HAMS can generate many short-chain amylose due to structural damage, which rearrange to form digestion-resistant crystals. With correlation analysis, we revealed the relationship between the multiscale structure and the RS content, which can be used to guide the preparation of RS3.
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