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Micro- and Nanostructures of Agave Fructans to Stabilize Compounds of High Biological Value via Electrohydrodynamic Processing

机译:龙舌兰果糖的微观和纳米结构通过电流体动力学方法稳定高生物价值的化合物

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摘要

This study focuses on the use of high degree of polymerization agave fructans (HDPAF) as a polymer matrix to encapsulate compounds of high biological value within micro- and nanostructures by electrohydrodynamic processing. In this work, β-carotene was selected as a model compound, due to its high sensitivity to temperature, light and oxygen. Ultrafine fibers from HDPAF were obtained via this technology. These fibers showed an increase in fiber diameter when containing β-carotene, an encapsulation efficiency (EE) of 95% and a loading efficiency (LE) of 85%. The thermogravimetric analysis (TGA) showed a 90 °C shift in the β-carotene decomposition temperature with respect to its independent analysis, evidencing the HDPAF thermoprotective effect. Concerning the HDPAF photoprotector effect, only 21% of encapsulated β-carotene was lost after 48 h, while non-encapsulated β-carotene oxidized completely after 24 h. Consequently, fructans could be a feasible alternative to replace synthetic polymers in the encapsulation of compounds of high biological value.
机译:这项研究的重点是使用高度聚合的龙舌兰果聚糖(HDPAF)作为聚合物基质,通过电流体动力学方法将高生物学价值的化合物封装在微结构和纳米结构中。在这项工作中,由于β-胡萝卜素对温度,光和氧气具有很高的敏感性,因此被选为模型化合物。 HDPAF的超细纤维是通过这项技术获得的。当包含β-胡萝卜素时,这些纤维显示出纤维直径的增加,包封效率(EE)为95%,负载效率(LE)为85%。热重分析(TGA)显示,相对于其独立分析,β-胡萝卜素分解温度发生了90°C的变化,证明了HDPAF的热保护作用。关于HDPAF的光保护作用,在48小时后仅损失21%的包封的β-胡萝卜素,而未包封的β-胡萝卜素在24小时后被完全氧化。因此,果聚糖可能是在封装具有高生物价值的化合物时替代合成聚合物的可行替代方法。

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