Endocytosis efficiency and targeting ability by cooperation of nanoparticles

内吞作用 内化 受体介导的内吞作用 纳米颗粒 纳米技术 细胞膜 生物物理学 材料科学 化学 细胞 生物化学 生物
作者
Teng Ma,Tianjiao Chen,Huifeng Tan,Songsong Zhang,Hao Wei,Qiang Wang,Zhijia Zhang,Wenjun Zhou,Zhen Li,Guojun Wang
出处
期刊:Nanoscale [Royal Society of Chemistry]
被引量:1
标识
DOI:10.1039/d4nr01853b
摘要

Cooperative wrapping of nanoparticles (NPs) with small sizes is an important pathway for the uptake of NPs by cell membranes. However, the cooperative wrapping efficiency and the effects of NPs' rigidity remain ambiguous. With the aid of computer simulations, we show that the complete wrapping mechanism of cooperative endocytosis is that the aggregation of NPs leads to greater wrapping forces than the single NP case, which triggers the increase of the wrapping degree and in turn further increases the wrapping forces until they are finally fully taken up. The effects of the NP size, initial distance, interaction strength, arrangement and stiffness on cooperative endocytosis were systematically studied. The cooperative wrapping efficiency increases as the NP radius increases. Hexagonal close packed NPs have the highest internalization efficiency. When the interactions are strong, softer NPs exhibit higher endocytosis efficiency. We further propose two strategies by combining NPs with different wrapping properties for targeting applications. By combining two NPs decorated with different types of ligands, the combination NPs can only be fully endocytosed by the cell membrane with two cognate types of receptors and adhere to the normal cell membrane with only one type of receptor. We also design composite NPs using a large NP non-covalently decorated with several small NPs. By harnessing the competition between the ligand-receptor interactions and the excluded volume interactions between the small NPs and the lipid membrane, the composite NPs have targeting ability towards the cancer cell membrane. The design concept of combining NPs with different wrapping properties for drug targeting applications may be very promising in biomedicine.
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