Molecular Science and Biomedicine Laboratory, State Key Laboratory of Chemo/Bio-Sensing and Chemometrics, College of Chemistry and Chemical Engineering, College of Biology, Hunan University, Changsha, 410082, China.
Faculty of Sciences and Technology, University of Macau, Av. Padre Tomas Pereira Taipa, Macau, China.
Analyst. 2016 May 23;141(11):3337-42. doi: 10.1039/c6an00483k.
Elucidating the endocytosis and metabolism of nanoparticles in cells could improve the diagnostic sensitivity and therapeutic efficiency. In this work, we explore the cellular uptake mechanism of a biocompatible nanocrystal nanostructure, graphene-isolated-Au-nanocrystals (GIANs), by monitoring the intrinsic Raman and two-photon luminescence signals of GIANs in live cells. Aptamers functionalized on the GIAN nanostructure through simple, but strong, π-π interactions entered the cells through a clathrin-dependent pathway, while unmodified GIANs mainly entered the cells through a caveolae-mediated endocytosis pathway. Thus, it can be concluded that the mechanism of cellular uptake in these graphene-isolated-Au-nanocrystal nanostructures is determined by the presence or absence of aptamer modification.
阐明纳米粒子在细胞内的内吞作用和代谢过程,可以提高诊断的灵敏度和治疗的效果。在这项工作中,我们通过监测活细胞中 GIANNs 的固有拉曼和双光子荧光信号,探索了生物相容性纳米晶体纳米结构——石墨烯隔离的金纳米晶(GIANNs)的细胞摄取机制。通过简单但强大的π-π相互作用将适体功能化到 GIANN 纳米结构上,使其通过网格蛋白依赖的途径进入细胞,而未修饰的 GIANN 主要通过小窝蛋白介导的内吞作用途径进入细胞。因此,可以得出结论,这些石墨烯隔离的金纳米晶纳米结构的细胞摄取机制取决于适体修饰的存在与否。