CAS Engineering Laboratory for Nanozyme, Key Laboratory of Protein and Peptide Pharmaceutical, Institute of Biophysics, Chinese Academy of Sciences, 15 Datun Road, Beijing 100101, China; University of Chinese Academy of Sciences, Beijing 101408, China.
CAS Engineering Laboratory for Nanozyme, Key Laboratory of Protein and Peptide Pharmaceutical, Institute of Biophysics, Chinese Academy of Sciences, 15 Datun Road, Beijing 100101, China.
Adv Drug Deliv Rev. 2021 Sep;176:113892. doi: 10.1016/j.addr.2021.113892. Epub 2021 Jul 29.
Ferritin has been widely recognized as an ideal drug delivery vehicle owing to its unique cage-like structure. Coupled with intrinsic targeting ability and excellent biosafety, ferritin-based drug delivery system, recently coined as ferritin drug carrier (FDC), has sparked great interest among researchers and shown promising application potential in the biomedical field. However, the flexibility and accuracy of traditional FDCs are limited when facing with complex disease microenvironments. To meet the fast-growing requirements for precision medicine, ferritin can serve as a designable multi-module platform to fabricate smarter FDC, which we introduce here as dynamic nanoassembly-based ferritin drug carrier (DNFDC). Compared to conventional FDC, DNFDCs directly integrate required functions into their nanostructure, which can achieve dynamic transformation upon stimuli to specifically activate and exert therapeutic functions at targeted sites. In this review, we summarize the superior characteristics of ferritin that contribute to the on-demand design of DNFDC and outline the current advances in DNFDC. Moreover, the potential research directions and challenges are also discussed here. Hopefully, this review may inspire the future development of DNFDC.
铁蛋白因其独特的笼状结构而被广泛认为是一种理想的药物传递载体。铁蛋白基药物传递系统(铁蛋白药物载体,FDC)结合内在的靶向能力和优异的生物安全性,最近引起了研究人员的极大兴趣,并在生物医学领域显示出了有前景的应用潜力。然而,传统 FDC 在面对复杂的疾病微环境时,其灵活性和准确性受到限制。为了满足快速增长的精准医学需求,铁蛋白可以作为一个可设计的多模块平台来构建更智能的 FDC,我们在这里将其称为基于动态纳米组装的铁蛋白药物载体(DNFDC)。与传统的 FDC 相比,DNFDC 直接将所需的功能整合到其纳米结构中,在受到刺激时可以进行动态转化,从而在靶向部位特异性激活和发挥治疗功能。在这篇综述中,我们总结了铁蛋白的优越特性,这些特性有助于按需设计 DNFDC,并概述了 DNFDC 的最新进展。此外,还讨论了潜在的研究方向和挑战。希望这篇综述能为 DNFDC 的未来发展提供启示。