CNRS, Institut de Biologie Moléculaire et Cellulaire, Immunopathologie et Chimie Thérapeutique , Strasbourg, France.
J Am Chem Soc. 2014 Jan 15;136(2):810-9. doi: 10.1021/ja411987g. Epub 2014 Jan 3.
Dendrons used as synthetic carriers are promising nanostructures for biomedical applications. Some polycationic dendritic systems, such as the commercially available polyethylenimine (PEI), have the ability to deliver genetic material into cells. Nevertheless, polycationic vectors are often associated with potential cellular toxicity, which prevents their use in clinical development. In this context, our research focused on the design and synthesis of a novel type of polycationic dendrons that are able to penetrate into cells without triggering cytotoxic effects. We synthesized first- and second-generation polycationic adamantane-based dendrons via a combined protection/deprotection strategy starting from different adamantane scaffolds. The linker between the adamantane cores is constituted of short ethylene glycol chains, and the periphery consists of ammonium and guanidinium groups. None of these dendritic structures, which we previously called HYDRAmers, displayed significant cytotoxicity effects on two different cell lines (RAW 264.7 and HeLa). Conjugation of the fluorescent probe cyanine 5 at their focal point via click chemistry permitted the evaluation of their cellular internalization. All of the dendrons penetrated through the membrane with efficient cellular uptake depending of the dendron generation and the nature of the peripheral groups. These results suggest that the polycationic HYDRAmers are potentially interesting as new vectors in biomedical applications, including gene and drug delivery.
作为合成载体的树枝状聚合物是一种很有前途的用于生物医学应用的纳米结构。一些聚阳离子树枝状系统,如商业上可用的聚乙烯亚胺(PEI),具有将遗传物质递送到细胞中的能力。然而,聚阳离子载体通常与潜在的细胞毒性有关,这阻止了它们在临床开发中的应用。在这种情况下,我们的研究集中在设计和合成一种新型的聚阳离子树枝状聚合物,这种聚合物能够穿透细胞而不会引发细胞毒性。我们通过从不同的金刚烷支架开始的组合保护/脱保护策略合成了第一代和第二代聚阳离子金刚烷基树枝状聚合物。金刚烷核之间的连接体由短的乙二醇链组成,外围由铵和胍基组成。这些树枝状结构(我们之前称之为 HYDRAmers)都没有对两种不同的细胞系(RAW 264.7 和 HeLa)显示出显著的细胞毒性作用。通过点击化学在其焦点处将荧光探针 Cy5 缀合,可以评估它们的细胞内化。所有的树枝状聚合物都能够穿透细胞膜,具有高效的细胞摄取能力,这取决于树枝状聚合物的代数和外围基团的性质。这些结果表明,聚阳离子 HYDRAmers 作为基因和药物传递等生物医学应用中的新型载体具有潜在的应用价值。