Bananas are representative plant-based raw materials containing a large amount of starch, and green banana flour prepared from unripe bananas has attracted attention as a starchy ingredient that can reduce the loss of banana resources that are likely ...
Bananas are representative plant-based raw materials containing a large amount of starch, and green banana flour prepared from unripe bananas has attracted attention as a starchy ingredient that can reduce the loss of banana resources that are likely to be discarded during distribution and processing, while also being applicable to various food. In particular, starch in banana flour has a structural characteristic of containing a relatively high proportion of long B3-chains compared with other plant- based starches, and this chain structure may provide suitable substrate properties for efficient chain-transfer reactions by glucanotransferase. Therefore, in this study, the starch structure of banana flours was modified using 4,3-α-glucanotransferase derived from Lactobacillus fermentum NCC 2970, and the effect of α-1,3 linkage introduction on its digestive properties was investigated. 4,3-α-Glucanotransferase treatment effectively rearranged the molecular structure of starch in banana flour and newly synthesized α-1,3 linkages at a level of 4.83-5.50%, which were not detected before enzymatic treatment. This change in linkage structure significantly affected the starch digestibility of banana flour. After treatment with human pancreatic α-amylase, the proportion of α-limit dextrins resistant to α-amylase increased in the enzymatically modified samples, and these structures were considered to contribute to delayed glucose generation at the small intestinal mucosal α-glucosidase level. Indeed, digestion assays using rat intestinal α-glucosidase and recombinant human α-glucosidase showed that the enzymatically treated samples exhibited a more gradual glucose release pattern than the raw samples and rapidly digestible controls. These in vitro results were similarly confirmed in the in vivo postprandial glycemic response, showing properties that attenuated the initial glucose spike while continuously releasing glucose. These findings suggest that 4,3-α- glucanotransferase treatment can be used to develop slowly digestible starch materials capable of attenuating rapid postprandial blood glucose elevation. In addition, the absence of marked differences in structural changes and hydrolysis properties among banana varieties indicates that this enzymatic modification strategy may be broadly applicable as a digestion-modulating approach for banana flours, regardless of variety.