配体(生物化学)
纳米颗粒
纳米技术
谷氨酸羧肽酶Ⅱ
人口
细胞
材料科学
内吞作用
化学
细胞生物学
分子生物学
生物物理学
生物
医学
前列腺癌
受体
生物化学
遗传学
癌症
环境卫生
作者
Deblin Jana,Zhiyuan Han,Xiao Huang,Anju Wadhwa,Athira Raveendran,Kareem Ebeid,Niranjan Meher,Robert R. Flavell,Tejal A. Desai
出处
期刊:ACS Nano
[American Chemical Society]
日期:2024-06-22
卷期号:18 (26): 16674-16683
被引量:1
标识
DOI:10.1021/acsnano.4c01640
摘要
Targeted nanoparticles have been extensively explored for their ability to deliver their payload to a selective cell population while reducing off-target side effects. The design of actively targeted nanoparticles requires the grafting of a ligand that specifically binds to a highly expressed receptor on the surface of the targeted cell population. Optimizing the interactions between the targeting ligand and the receptor can maximize the cellular uptake of the nanoparticles and subsequently improve their activity. Here, we evaluated how the density and presentation of the targeting ligands dictate the cellular uptake of nanoparticles. To do so, we used a DNA-scaffolded PLGA nanoparticle system to achieve efficient and tunable ligand conjugation. A prostate-specific membrane antigen (PSMA) expressing a prostate cancer cell line was used as a model. The density and presentation of PSMA targeting ligand ACUPA were precisely tuned on the DNA-scaffolded nanoparticle surface, and their impact on cellular uptake was evaluated. It was found that matching the ligand density with the cell receptor density achieved the maximum cellular uptake and specificity. Furthermore, DNA hybridization-mediated targeting chain rigidity of the DNA-scaffolded nanoparticle offered ∼3 times higher cellular uptake compared to the ACUPA-terminated PLGA nanoparticle. Our findings also indicated a ∼ 3.7-fold reduction in the cellular uptake for the DNA hybridization of the non-targeting chain. We showed that nanoparticle uptake is energy-dependent and follows a clathrin-mediated pathway. Finally, we validated the preferential tumor targeting of the nanoparticles in a bilateral tumor xenograft model. Our results provide a rational guideline for designing actively targeted nanoparticles and highlight the application of DNA-scaffolded nanoparticles as an efficient active targeting platform.
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