College of Food Science and Engineering, Northwest A&F University, Yangling 712100, Shaanxi, China.
Food Chem. 2021 Dec 1;364:130335. doi: 10.1016/j.foodchem.2021.130335. Epub 2021 Jun 9.
Hyperoside (HYP) has various potential benefits, however, its low water-solubility and poor bioavailability have restricted its application. Here, HYP-loaded zein-tea polyphenols (TP)-pectin ternary complex nanoparticles (Z/TP/P-HYP) were prepared by the antisolvent precipitation method for HYP delivery. The formed Z/TP/P-HYP are negatively charged spherical particles with a size of 246 nm, and have the highest HYP encapsulation efficiency (94.2%) at TP was 0.25 mg/mL. Fourier transform infrared spectroscopy revealed that hydrogen bonding, electrostatic interactions, and hydrophobic effects were major interactions to Z/TP/P-HYP formation. Differential scanning calorimetry confirmed that encapsulated HYP was in an amorphous state. Freeze-dried Z/TP/P-HYP displayed good water-redispersibility and high particle yield (95.2%). Z/TP/P-HYP exhibited improved pH (2.0-8.0) and ionic (0-500 mM) stability. Furthermore, Z/TP/P-HYP demonstrated stronger antioxidant properties than free HYP and provided HYP sustained release under simulated gastrointestinal conditions. Therefore, Z/TP/P-HYP have great potential as an effective HYP delivery system for applications in foods.
高车前苷(HYP)具有多种潜在益处,然而,其低水溶性和差的生物利用度限制了其应用。在这里,通过抗溶剂沉淀法制备了负载高车前苷的玉米醇溶蛋白-茶多酚-果胶三元复合纳米粒(Z/TP/P-HYP)用于 HYP 的递送。形成的 Z/TP/P-HYP 是带负电荷的球形颗粒,粒径为 246nm,在 TP 为 0.25mg/mL 时具有最高的 HYP 包封效率(94.2%)。傅里叶变换红外光谱表明氢键、静电相互作用和疏水相互作用是形成 Z/TP/P-HYP 的主要相互作用。差示扫描量热法证实包封的 HYP 处于无定形状态。冻干的 Z/TP/P-HYP 具有良好的水分再分散性和高颗粒产率(95.2%)。Z/TP/P-HYP 表现出更好的 pH(2.0-8.0)和离子(0-500mM)稳定性。此外,Z/TP/P-HYP 表现出比游离 HYP 更强的抗氧化性能,并在模拟胃肠道条件下提供 HYP 的持续释放。因此,Z/TP/P-HYP 作为一种有效的 HYP 递送系统,具有在食品中应用的巨大潜力。