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Effect of PEG grafting density and hydrodynamic volume on gold nanoparticle-cell interactions: an investigation on cell cycle, apoptosis, and DNA damage

机译:PEG接枝密度和流体力学体积对金纳米颗粒-细胞相互作用的影响:细胞周期,细胞凋亡和DNA损伤的调查。

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摘要

In this study, interactions of polyethylene glycol (PEG)-coated gold nanoparticles (AuNPs) with cells were investigated with particular focus on the relationship between the PEG layer properties (conformation, grafting density, and hydrodynamic volume) and cell cycle arrest, apoptosis, and DNA damage. Steric hindrance and PEG hydrodynamic volume controlled the protein adsorption, whereas the AuNP core size and PEG hydrodynamic volume were primary factors for cell uptake and viability. At all PEG grafting densities, the particles caused significant cell cycle arrest and DNA damage against CaCo2 and PC3 cells without apoptosis. However, at a particular PEG grafting density (∼0.65 chains/nm2), none of these severe damages were observed on 3T3 cells indicating discriminating behavior of the healthy (3T3) and cancer (PC3 and CaCo2) cells. It was concluded that the PEG grafting density and hydrodynamic volume, tuned with the PEG concentration and AuNP size, played an important role in particle-cell interactions.
机译:在这项研究中,研究了聚乙二醇(PEG)包覆的金纳米颗粒(AuNPs)与细胞的相互作用,特别关注PEG层性质(构象,接枝密度和流体动力学体积)与细胞周期停滞,细胞凋亡,和DNA损伤。立体位阻和PEG流体动力学体积控制蛋白质的吸附,而AuNP核心大小和PEG流体动力学体积是细胞摄取和生存能力的主要因素。在所有PEG接枝密度下,这些颗粒均导致明显的细胞周期停滞以及对CaCo2和PC3细胞的DNA损伤,而没有凋亡。但是,在特定的PEG接枝密度(约0.65链/ nm2)下,在3T3细胞上没有观察到这些严重损伤,表明健康细胞(3T3)和癌细胞(PC3和CaCo2)具有区别性。结论是,PEG接枝密度和流体力学体积,与PEG浓度和AuNP大小相适应,在颗粒-细胞相互作用中起重要作用。

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