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由大豆分离蛋白-芦丁复合物稳定的高内相比乳液:流变学性质、生物利用度和体外释放动力学。

High internal phase emulsion stabilized by soy protein isolate-Rutin complex: Rheological properties, bioaccessibility and in vitro release kinetics.

机构信息

College of Tourism and Cuisine, Harbin University of Commerce, Harbin, Heilongjiang 150028, China; Postdoctoral Programme of Meteria Medical Institute, Harbin University of Commerce, Harbin 150028, China.

Postdoctoral Programme of Meteria Medical Institute, Harbin University of Commerce, Harbin 150028, China.

出版信息

Int J Biol Macromol. 2024 Nov;280(Pt 2):135748. doi: 10.1016/j.ijbiomac.2024.135748. Epub 2024 Sep 19.

Abstract

High internal phase emulsions (HIPEs) are promising carrier materials for encapsulating and delivering hydrophobic bioactive compounds. By strategically adjusting the composition, particle size, or charge of HIPEs, it is possible to enhance both their stability and the bioaccessibility of hydrophobic polyphenols encapsulated within them. In this study, different soy protein isolate (SPI)-rutin (SPI-R) complexes (formed under various preheating temperatures) were used to stabilize HIPEs, while the particle size, and charge of HIPEs was further adjusted through different homogenization rates. The results demonstrated that an optimal preheating temperature of 70 °C for the complex and a homogenization rate of 15,000 rpm for HIPEs enhanced the stability of the entire emulsion system by producing more uniform and smaller droplet distribution with improved rheological properties. Furthermore, in vitro digestion experiments showed that HIPEs stabilized by the SPI-R complexes (HSR) at optimal homogenization rate had better loading efficiency (98.68 %) and bioaccessibility compared to other groups. Additionally, fitting results from release kinetics confirmed that rutin encapsulated by HSR could achieve sustained release effect. Overall, these findings suggest that HSR has great potential as an effective vehicle for delivering hydrophobic bioactive compounds like rutin within the food industry.

摘要

高内相比乳液(HIPEs)是一种很有前途的载体材料,可以用于封装和输送疏水性生物活性化合物。通过战略性地调整 HIPEs 的组成、粒径或电荷,可以提高其稳定性和封装在其中的疏水性多酚的生物利用度。在这项研究中,使用了不同的大豆分离蛋白(SPI)-芦丁(SPI-R)复合物(在不同的预热温度下形成)来稳定 HIPEs,同时通过不同的均质速率进一步调整 HIPEs 的粒径和电荷。结果表明,复合物的最佳预热温度为 70°C,HIPEs 的均质速率为 15,000rpm,可以通过产生更均匀、更小的液滴分布和改善流变性能来提高整个乳液系统的稳定性。此外,体外消化实验表明,在最佳均质速率下,由 SPI-R 复合物稳定的 HIPEs(HSR)具有更好的负载效率(98.68%)和生物利用度,优于其他组。此外,释放动力学拟合结果证实,HSR 包封的芦丁可以实现持续释放效果。总的来说,这些发现表明,HSR 作为一种有效的载体,具有在食品工业中输送疏水性生物活性化合物(如芦丁)的巨大潜力。

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