Wu Yuhao Leo, Lee Kwahun, Diloknawarit Bundit, Odom Teri W
Department of Chemistry, Northwestern University, Evanston, Illinois 60208, United States.
Department of Chemistry and Chemical Biology, Stevens Institute of Technology, Hoboken, New Jersey 07030, United States.
Nano Lett. 2024 Jan 10;24(1):519-524. doi: 10.1021/acs.nanolett.3c04641. Epub 2023 Dec 21.
This work demonstrates that targeting ligand density on nanoparticles can affect interactions between the nanoconstructs and cell membrane receptors. We discovered that when the separation between covalently grafted DNA aptamers on gold nanostars was comparable to the distance between binding sites on a receptor dimer (matched density; MD), nanoconstructs exhibited a higher selectivity for binding to the dimeric form of the protein. Single-particle dynamics of MD nanoconstructs showed slower rotational rates and larger translational footprints on cancer cells expressing more dimeric forms of receptors (dimer+) compared with cells having more monomeric forms (dimer-). In contrast, nanoconstructs with either increased (nonmatched density; ND) or decreased ligand spacing (ND) had minimal changes in dynamics on either dimer+ or dimer- cells. Real-time, single-particle analyses can reveal the importance of nanoconstruct ligand density for the selective targeting of membrane receptors in live cells.
这项工作表明,靶向纳米颗粒上的配体密度会影响纳米结构与细胞膜受体之间的相互作用。我们发现,当金纳米星上共价接枝的DNA适配体之间的间距与受体二聚体上结合位点之间的距离相当(匹配密度;MD)时,纳米结构对蛋白质二聚体形式的结合表现出更高的选择性。与具有更多单体形式(二聚体-)的细胞相比,MD纳米结构的单粒子动力学显示,在表达更多受体二聚体形式(二聚体+)的癌细胞上,其旋转速率较慢,平移足迹较大。相比之下,配体间距增加(不匹配密度;ND)或减少(ND)的纳米结构在二聚体+或二聚体细胞上的动力学变化最小。实时单粒子分析可以揭示纳米结构配体密度对活细胞中膜受体选择性靶向的重要性。