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Development of Hydrogels for Entrapment of Vitamin D3: Physicochemical Characterization and Release Study

机译:截留维生素D3的水凝胶的开发:理化特性和释放研究

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In this study two carbohydrate biopolymers were used to entrap vitamin D3. In order to optimize the microencapsulation parameters, response surface methodology was applied to evaluate the effects of three independent variables (alginate percentage, vitamin: alginate weight ratio, and ultrasound time) on the efficiency of microencapsulation and loading capacity. According to the results, 0.23% alginate (W/V), 1: 5 weight ratio of vitamin D3: alginate, and 13.7 min ultrasound time were determined as the optimal conditions for obtaining maximum microencapsulation efficiency (92.86%) and loading capacity (30.1%). Then, the optimized carrier was coated by chitosan followed by the examinations of morphological characteristics, mean particle size, Fourier transform infrared (FTIR) spectrometry, in vitro release characteristics, and release modeling. Scanning electron microscopy examinations showed that the alginate and alginate-chitosan microcapsules had irregular and interlacing forms. The average particle sizes of alginate and alginate-chitosan were 11.3 and 23.3, respectively, which decreased to 9.8 and 14.0 mu m after drying. Results of FTIR indicated a physical interaction between alginate and vitamin D3. The Weibull II model was found to be the best one to predict vitamin release behavior. The results of this study showed the potential application of developed carriers to encapsulate hydrophobic compounds.
机译:在这项研究中,使用了两种碳水化合物生物聚合物来捕获维生素D3。为了优化微囊化参数,应用响应表面方法评估了三个独立变量(藻酸盐百分比,维生素:藻酸盐重量比和超声时间)对微囊化效率和负载量的影响。根据结果​​,确定0.23%的藻酸盐(W / V),维生素D3:藻酸盐的重量比为1:5和13.7分钟的超声时间是获得最大微囊化效率(92.86%)和负载量(30.1)的最佳条件。 %)。然后,用壳聚糖包被优化的载体,然后检查其形态特征,平均粒径,傅立叶红外光谱(FTIR),体外释放特性和释放模型。扫描电子显微镜检查显示藻酸盐和藻酸盐-壳聚糖微胶囊具有不规则和交错的形式。海藻酸盐和海藻酸盐-壳聚糖的平均粒径分别为11.3和23.3,干燥后减小至9.8和14.0μm。 FTIR结果表明藻酸盐和维生素D3之间存在物理相互作用。已发现Weibull II模型是预测维生素释放行为的最佳模型。这项研究的结果表明,已开发的载体可潜在地包裹疏水性化合物。

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