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Effect of Alkylation on the Cellular Uptake of Polyethylene Glycol-Coated Gold Nanoparticles

机译:烷基化对聚乙二醇涂层金纳米粒细胞摄取的影响

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Alkyl groups (CnH2n+1) are prevalent in engineered bionanomaterials used for many intracellular applications, yet how alkyl groups dictate the interactions between nanoparticles and mammalian cells remains incomprehensively investigated. In this work, we report the effect of alkylation on the cellular uptake of densely polyethylene glycol-coated nanoparticles, which are characterized by their limited entry into mammalian cells. Specifically, we prepare densely PEGylated gold nanoparticles that bear alkyl chains of varying carbon chain lengths (n) and loading densities (termed "alkyl-PEG-AuNPs"), followed by investigating their uptake by Kera-308 keratinocytes. Strikingly, provided a modest alkyl mass percentage of 0.2% (2 orders of magnitude lower than that of conventional lipid-based NPs) in their PEG shells, dodecyl-PEG-AuNPs (n = 12) and octadecyl-PEG-AuNPs (n = 18) can enter Kera-308 cells 30-fold more than methoxy-PEG-AuNPs (no alkyl groups) and hexyl-PEG-AuNPs (n = 6) after 24 h of incubation. Such strong dependence on n is valid for all serum concentrations considered (even under serum-free conditions), although enhanced serum levels can trigger the agglomeration of alkyl-PEG-AuNPs (without permanent aggregation of the AuNP cores) and can attenuate their cellular uptake. Additionally, alkyl-PEG-AuNPs can rapidly enter Kera-308 cells via the filipodia-mediated pathway, engaging the tips of membrane protrusions and accumulating within interdigital folds. Most alkyl-PEG-AuNPs adopt the "endo-lysosomal" route of trafficking, but similar to 15% of them accumulate in the cytosol. Regardless of intracellular location, alkyl-PEG-AuNPs predominantly appear as individual entities after 24 h of incubation. Our work offers insights into the incorporation of alkyl groups for designing bionanomaterials for cellular uptake and cytosolic accumulation with intracellular stability.
机译:烷基(CNH2N + 1)普遍存在于许多细胞内应用的工程均硫代材料中,但是烷基如何决定纳米颗粒和哺乳动物细胞之间的相互作用仍然不受缺乏研究。在这项工作中,我们报告了烷基化对密集聚乙二醇涂覆纳米颗粒的细胞摄取的影响,其特征在于它们有限地进入哺乳动物细胞。具体而言,我们制备密集的聚乙二醇化金纳米颗粒,其承受不同碳链长度(n)和加载密度(称为“烷基-PEG-AUNPS”)的烷基链,然后通过Kera-308角蛋白细胞研究其吸收。尖锐的是,在其PEG壳中提供适度的烷基质量百分比为0.2%(比常规脂质基NPS的2个数量级),十二烷基-PEG-AUNP(n = 12)和十八烷基-PEG-AUNP(n = 18)在孵育24小时后,可以进入30倍的甲氧基-AUNP(无烷基)和己基-PEG-AUNPS(n = 6)。对N的这种强烈依赖对于所考虑的所有血清浓度(即使在无血清条件下)是有效的,尽管增强的血清水平可以引发烷基-PEG-AUNP的附聚(而不永久聚集AUNP核心),并且可以衰减它们的细胞吸收。另外,烷基-PEG-AUNP可以通过菲尼氏藻介质介导的途径快速进入Kera-308细胞,接合膜突起的尖端并积聚在叉状折叠内。大多数烷基-PEG-AUNP采用“内冬溶核”的贩运途径,但类似于其中15%的含量积聚在细胞溶胶中。无论细胞内位置如何,烷基-PEG-AUNP主要在孵育24小时后主要出现单个实体。我们的工作提供了含有烷基掺入烷基的洞察,以设计细胞吸收和细胞溶质积累的嗜硫代醛,具有细胞内稳定性。

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