首页> 外文期刊>Biomacromolecules >Nanostructure of Polyplexes Formed between Cationic Diblock Copolymer and Antisense Oligodeoxynucleotide and Its Influence on Cell Transfection Efficiency
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Nanostructure of Polyplexes Formed between Cationic Diblock Copolymer and Antisense Oligodeoxynucleotide and Its Influence on Cell Transfection Efficiency

机译:阳离子二嵌段共聚物与反义寡聚核苷酸之间形成的多链体的纳米结构及其对细胞转染效率的影响

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Although various cationic polymers have been used to condense anionically charged DNA to improve their transfection efficiency, there is still a lack of fundamental understanding about how to control the nanostructure and charge of the polyplexes formed and how to relate such information to cell transfection efficiency. In this work, we have synthesized a weak cationic and phosphorylcholine-containing diblock copolymer and used it as a model vector to deliver an antisense oligodeoxynucleotide (ODN) into HeLa cells. Small angle neutron scattering (SANS) was used to determine the copolymer/ODN polyplex structure. The SANS data revealed the formation of polyplex nanocylinders at high copolymer (N)/ODN (P) charge ratios, where N symbolizes the amine groups on the copolymer and P symbolizes the phosphate groups. However, the cylindrical lengths remained constant, indicating that the ODN binding over this region did not alter the cylindrical shape of the copolymer in solution. As the N/P ratio decreased and became close to unity the polyplex diameters remained constant, but their lengths increased substantially, suggesting the end-to-end bridging by ODN binding between copolymer cylinders. As the N/P ratios went below unity (with ODN in excess), the polyplex diameters increased substantially, indicating different ODN bridging to bundle the small polyplexes together. Transfection studies from HeLa cells indicated a steady increase in transfection efficiency with increasing cationic charge and decreasing polyplex size. Cell growth inhibition assay showed significant growth inhibition by the polyplexes coupled with weak cytotoxicity, indicating effective ODN delivery. While this study has confirmed the overall charge effect, it has also revealed progressive structural changes of the polyplexes against varying charge ratio, thereby providing useful insight into the mechanistic process behind the ODN delivery.
机译:尽管已使用各种阳离子聚合物来缩合带阴离子电荷的DNA以提高其转染效率,但对于如何控制所形成的多链体的纳米结构和电荷以及如何将此类信息与细胞转染效率联系起来,仍缺乏基本的了解。在这项工作中,我们合成了一种弱阳离子和含磷酸胆碱的二嵌段共聚物,并将其用作将Hes细胞中反义寡脱氧核苷酸(ODN)传递的模型载体。小角中子散射(SANS)用于确定共聚物/ ODN的多链体结构。 SANS数据显示,在高共聚物(N)/ ODN(P)电荷比的情况下,形成了多层纳米圆柱,其中N表示共聚物上的胺基,P表示磷酸基。但是,圆柱体长度保持恒定,表明在该区域上的ODN结合不会改变溶液中共聚物的圆柱体形状。随着N / P比率降低并接近于1,多链体直径保持恒定,但其长度却显着增加,这表明通过共聚物圆柱体之间的ODN结合实现了端到端的桥接。当N / P比率低于1(ODN过量)时,多聚物的直径显着增加,表明不同的ODN桥接将小多聚物捆在一起。 HeLa细胞的转染研究表明,随着阳离子电荷的增加和多态体尺寸的减小,转染效率稳步提高。细胞生长抑制试验显示,多聚体具有明显的生长抑制作用,且细胞毒性较弱,表明有效的ODN传递。虽然这项研究已经证实了整体电荷效应,但它也揭示了多聚体针对变化的电荷比的渐进结构变化,从而为了解ODN输送背后的机械过程提供了有用的见识。

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