Xiao Qingqing, Zoulikha Makhloufi, Qiu Min, Teng Chao, Lin Chenshi, Li Xiaotong, Sallam Marwa A, Xu Qiaobing, He Wei
School of Pharmacy, China Pharmaceutical University, Nanjing 211198, China.
Department of Biomedical Engineering, Tufts University, Medford 02155, USA; Human Phenome Institute, Fudan University, Shanghai 201203, China.
Adv Drug Deliv Rev. 2022 Jul;186:114356. doi: 10.1016/j.addr.2022.114356. Epub 2022 May 17.
With the emerging advances in utilizing nanocarriers for biomedical applications, a molecular-level understanding of the in vivo fate of nanocarriers is necessary. After administration into human fluids, nanocarriers can attract proteins onto their surfaces, forming an assembled adsorption layer called protein corona (PC). The formed PC can influence the physicochemical properties and subsequently determine nanocarriers' biological behaviors. Therefore, an in-depth understanding of the features and effects of the PC on the nanocarriers' surface is the first and most important step towards controlling their in vivo fate. This review introduces fundamental knowledge such as the definition, formation, composition, conformation, and characterization of the PC, emphasizing the in vivo environmental factors that control the PC formation. The effect of PC on the physicochemical properties and thus biological behaviors of nanocarriers was then presented and thoroughly discussed. Finally, we proposed the design strategies available for engineering PC onto nanocarriers to manipulate them with the desired surface properties and achieve the best biomedical outcomes.
随着纳米载体在生物医学应用中的新兴进展,对纳米载体在体内命运的分子水平理解是必要的。在进入人体体液后,纳米载体可将蛋白质吸引到其表面,形成一个称为蛋白质冠(PC)的组装吸附层。形成的蛋白质冠可影响物理化学性质,并随后决定纳米载体的生物学行为。因此,深入了解蛋白质冠在纳米载体表面的特征和作用是控制其体内命运的首要且最重要的一步。本综述介绍了蛋白质冠的定义、形成、组成、构象和表征等基础知识,强调了控制蛋白质冠形成的体内环境因素。然后介绍并深入讨论了蛋白质冠对纳米载体物理化学性质进而对其生物学行为的影响。最后,我们提出了可用于在纳米载体上设计工程化蛋白质冠的策略,以操控纳米载体使其具有所需的表面性质并实现最佳的生物医学效果。