School of Public Health, Wuhan University, 430071, China.
Beijing Engineering and Technology Research Center of Food Additives, Beijing Technology & Business University, Beijing 100048, China.
Int J Biol Macromol. 2023 Jul 1;242(Pt 4):125109. doi: 10.1016/j.ijbiomac.2023.125109. Epub 2023 May 30.
Zein-quercetagetin-chondroitin sulfate (Zein-Que-CS) composite nanoparticles with different compositions were successfully fabricated using a novel antisolvent co-precipitation method. The mean particle diameter (97.5 to 219.4 nm), negative surface potential (-29.9 to -51.1 mV), and turbidity (265 to 370 NTU) of suspensions of Zein-Que nanoparticles increased after the addition of CS. Electrostatic attraction, hydrogen bonding, and hydrophobic attraction were the main driving forces for the formation of the composite nanoparticles. The encapsulation efficiency and loading capacity of the quercetagetin within the Zein-Que-CS (100:10:30) nanoparticles were 91.6 % and 6.1 %, respectively. The photostability and thermal stability of the encapsulated quercetagetin were 3.4- and 3.2- fold higher than that of the free form. The nanoparticles had good resistance to sedimentation and exhibited slow-release properties under simulated gastrointestinal conditions. The Zein-Que-CS nanoparticles developed in this study may therefore be useful for the encapsulation, protection, and delivery of quercetagetin.
采用一种新的抗溶剂共沉淀法成功制备了不同组成的玉米醇溶蛋白-槲皮素-硫酸软骨素(Zein-Que-CS)复合纳米粒子。玉米醇溶蛋白-纳米粒子悬浮液的平均粒径(97.5 至 219.4nm)、表面负电位(-29.9 至-51.1mV)和浊度(265 至 370NTU)在添加 CS 后增加。静电吸引、氢键和疏水吸引是形成复合纳米粒子的主要驱动力。在 Zein-Que-CS(100:10:30)纳米粒子中,槲皮素的包封效率和载药量分别为 91.6%和 6.1%。包封槲皮素的光稳定性和热稳定性分别比游离形式高 3.4 倍和 3.2 倍。纳米粒子具有良好的抗沉降性,并在模拟胃肠道条件下表现出缓慢释放特性。因此,本研究开发的 Zein-Que-CS 纳米粒子可能有助于槲皮素的包封、保护和递送。