Department of Food Science and Technology, First Technical University, KM 15, Ibadan-Lagos Expressway, Ibadan, Nigeria; Department of Food Science and Technology, Obafemi Awolowo University, Ile-Ife, Nigeria.
Department of Food Science and Technology, Obafemi Awolowo University, Ile-Ife, Nigeria.
Int J Biol Macromol. 2020 Jul 1;154:31-38. doi: 10.1016/j.ijbiomac.2020.03.089. Epub 2020 Mar 12.
To understand the mechanism through which cardaba banana starch is hydrolysed, the starch digestion kinetics of native and modified cardaba banana starch samples of Nigeria origin were investigated using an in vitro procedure. The digestion kinetics of the starch samples revealed the samples exhibited a biphasic digestogram. A second-order polynomial with an average coefficient of determinant (r) of 0.7732 (p < 0.005) was used to segment the biphasic digestogram into two monophasic digestograms. The digestion kinetics parameters (average) obtained using a modified first-order model suggested the accuracy of the model in describing the digestogram. The values obtained for the initial and final digestion rate constant (initial, k = 3-4 × 10 min; final k = 6-8.3 × 10 min) revealed that the final monophasic segment had a faster rate of digestion after the initial resistant to digestion had been overcome. The logistic model approach in which the digestogram was carried out in a single process also accurately predicted the biphasic behaviours of the cardaba banana (average r = 0.9736, p < 0.05; root mean square of error, RMSE = 1.588). Weibull model was used for the first time to describe the biphasic approach of cardaba banana starch and according to the digestogram parameters obtained (average r = 0.9954, p < 0.05; root mean square of error, RMSE = 0.578), the model accurately predicts the biphasic digestogram. In comparison among the models, the Weibull model best described the biphasic digestogram of the cardaba banana starch. The maximum starch digestion obtained in each of the digestion approaches was less than 100% which is an indication of the presence of resistant starch.
为了了解卡达巴蕉(Musa paradisiaca)淀粉被水解的机制,对原产于尼日利亚的天然和改性卡达巴蕉淀粉样本的淀粉消化动力学进行了体外研究。淀粉样本的消化动力学研究表明,这些样本表现出双相消化图。使用平均决定系数(r)为 0.7732(p<0.005)的二阶多项式将双相消化图分割成两个单相消化图。使用改进的一阶模型获得的消化动力学参数(平均值)表明该模型在描述消化图方面的准确性。使用改进的一阶模型获得的初始和最终消化速率常数(初始,k=3-4×10 min;最终,k=6-8.3×10 min)的值表明,在初始的抗性被克服之后,最终单相段具有更快的消化速率。在单个过程中进行消化图的逻辑模型方法也准确地预测了卡达巴蕉的双相行为(平均 r=0.9736,p<0.05;均方根误差,RMSE=1.588)。首次使用 Weibull 模型来描述卡达巴蕉淀粉的双相方法,根据获得的消化图参数(平均 r=0.9954,p<0.05;均方根误差,RMSE=0.578),该模型准确地预测了双相消化图。在模型之间进行比较时,Weibull 模型最能描述卡达巴蕉淀粉的双相消化图。在每种消化方法中获得的最大淀粉消化量都小于 100%,这表明存在抗性淀粉。