CAS Key Laboratory for Biomedical Effects of Nanomaterials and Nanosafety and CAS Center for Excellence in Nanoscience , National Center for Nanoscience and Technology , No. 11 Beiyitiao , Zhongguancun, Beijing 100190 , China.
University of Chinese Academy of Sciences , Beijing 100049 , China.
ACS Appl Mater Interfaces. 2020 Jan 15;12(2):1997-2008. doi: 10.1021/acsami.9b15910. Epub 2020 Jan 6.
The significance of protein coronas on the biological fates of nanoparticles has been widely recognized. Therefore, the alterations on biological effects caused by protein coronas need systemic study and interpretation to design novel safe and efficient nanomedicines. In the present study, we present a comprehensive quantitative analysis of the protein coronas on gold nanorods modified with various surface ligands of different chemical compositions and charges. The design of surface ligands is of utmost importance for the functionalization of nanoparticles, and further, the ligand-induced biological identity determines the fate of nanoparticles in the human body. We found that the surface chemistry influences the composition of the protein corona more profoundly than surface charge. Since the first and most important challenge for administrated nanomedicines is navigating the interaction with macrophages, we further investigated how the surface chemistry-induced specific protein corona affects the phagocytosis and immune responses of macrophages exposed to the corona-nanoparticle complexes. Our results reveal that the protein corona alters the internalization pathways of gold nanorods by macrophages via the interactions of the predominant coronal proteins with specific receptors on the cell membrane. The cytokine secretion profile of macrophages is also highly dependent on the adsorption pattern of the protein corona. The more abundant proteins involved in immune responses, such as acute phase, complement, and tissue leakage proteins, present in the acquired nanoparticle corona, the more macrophage interleukin-1β (IL-1β) released is stimulated. The ligand-protein corona composition-immune response coefficient analysis may serve next-generation nanomedicines with high efficiency and good safety for better clinical translation.
蛋白质冠对纳米粒子生物命运的意义已得到广泛认可。因此,需要对由蛋白质冠引起的生物效应变化进行系统的研究和解释,以设计新型安全有效的纳米药物。在本研究中,我们全面定量分析了不同化学组成和电荷的表面配体修饰的金纳米棒的蛋白质冠。表面配体的设计对于纳米粒子的功能化至关重要,并且配体诱导的生物特性决定了纳米粒子在人体内的命运。我们发现,表面化学对蛋白质冠组成的影响比表面电荷更为深远。由于给予纳米药物的首要和最具挑战性的挑战是与巨噬细胞相互作用,我们进一步研究了表面化学诱导的特定蛋白质冠如何影响暴露于冠纳米粒子复合物的巨噬细胞的吞噬作用和免疫反应。我们的结果表明,蛋白质冠通过与细胞膜上特定受体的相互作用改变了巨噬细胞内吞金纳米棒的途径。巨噬细胞分泌的细胞因子谱也高度依赖于蛋白质冠的吸附模式。获得的纳米颗粒冠中涉及免疫反应的更丰富的蛋白质,如急性期、补体和组织渗漏蛋白,刺激释放更多的巨噬细胞白细胞介素-1β(IL-1β)。配体-蛋白质冠组成-免疫反应系数分析可为具有高效和良好安全性的下一代纳米药物提供指导,以实现更好的临床转化。