Zhang Chenxi, Zhang Xiaorong, Zhao Guanghua
College of Food Science and Nutritional Engineering, Beijing Key Laboratory of Functional Food from Plant Resources, China Agricultural University, Beijing 100083, China.
Nanomaterials (Basel). 2020 Sep 22;10(9):1894. doi: 10.3390/nano10091894.
Compared with other nanocarriers such as liposomes, mesoporous silica, and cyclodextrin, ferritin as a typical protein nanocage has received considerable attention in the field of food, nutrition, and medicine owing to its inherent cavity size, excellent water solubility, and biocompatibility. Additionally, ferritin nanocage also serves as a versatile bio-template for the synthesis of a variety of nanoparticles. Recently, scientists have explored the ferritin nanocage structure for encapsulation and delivery of guest molecules such as nutrients, bioactive molecules, anticancer drugs, and mineral metal ions by taking advantage of its unique reversible disassembly and reassembly property and biomineralization. In this review, we mainly focus on the preparation and structure of ferritin-based nanocarriers, and regulation of their self-assembly. Moreover, the recent advances of their applications in food nutrient delivery and medical diagnostics are highlighted. Finally, the main challenges and future development in ferritin-directed nanoparticles' synthesis and multifunctional applications are discussed.
与脂质体、介孔二氧化硅和环糊精等其他纳米载体相比,铁蛋白作为一种典型的蛋白质纳米笼,因其固有的腔尺寸、优异的水溶性和生物相容性,在食品、营养和医学领域受到了广泛关注。此外,铁蛋白纳米笼还可作为合成各种纳米颗粒的通用生物模板。最近,科学家们利用铁蛋白纳米笼独特的可逆拆卸和重新组装特性以及生物矿化作用,探索其结构用于封装和递送营养物质、生物活性分子、抗癌药物和矿物金属离子等客体分子。在这篇综述中,我们主要关注基于铁蛋白的纳米载体的制备和结构,以及它们自组装的调控。此外,还重点介绍了它们在食品营养递送和医学诊断方面的最新应用进展。最后,讨论了铁蛋白导向纳米颗粒合成和多功能应用中的主要挑战和未来发展。