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基于具有强核酸结合特性的阳离子聚合物的多聚物。

Polyplexes based on cationic polymers with strong nucleic acid binding properties.

机构信息

Department of Pharmaceutical Sciences, Utrecht Institute for Pharmaceutical Sciences, Faculty of Science, Utrecht University, Universiteitsweg 99, 3584 CG, Utrecht, The Netherlands.

出版信息

Eur J Pharm Sci. 2012 Mar 12;45(4):459-66. doi: 10.1016/j.ejps.2011.09.002. Epub 2011 Sep 8.

Abstract

Cationic polymers have been studied for nucleic acid delivery both in vitro and in vivo. However, many polymer-based formulations suffer from lack of stability in biologic fluids due to interactions with anionic biomacromolecules such as proteins and polysaccharides. Likely, the stronger the electrostatic interactions between a cationic polymer and nucleic acids, the higher the stability of the polyplexes in biologic fluids will be. To get evidence for this hypothesis, quaternized poly[3,5-bis(dimethylaminomethylene)-p-hydroxyl styrene] (QNPHOS) with two permanently charged cationic sites per monomer unit as well as its block copolymer with PEG were synthesized and compared with the standard transfectant pDMAEMA, in terms of nucleic acid binding strength, gene silencing and transfection activities of the complexes which these polymers form with siRNA and plasmid DNA, respectively. It was shown that siRNA complexes based on QNPHOS and QNPHOS-PEG dissociate in the presence of a fourfold higher heparin concentration than necessary to destabilize pDMAEMA complexes. Under the same conditions, complexes of DNA and QNPHOS or QNPHOS-PEG did not show any dissociation, in contrast to pDMAEMA polyplexes. The DNA polyplexes based on QNPHOS or QNPHOS-PEG did not show transfection activity, which might be ascribed to their high physicochemical stability. On the other hand, siRNA complexes based on QNPHOS and QNPHOS-PEG showed a low cytotoxicity and an improved siRNA delivery and high gene silencing activity, even higher than those based on pDMAEMA. This might be due to the excellent binding characteristics of QNPHOS and QNPHOS-PEG to siRNA which in turn is ascribed to the presence of two permanently charged cationic groups per monomer unit. Based on the results of this study, it is concluded that formation of strong siRNA complexes with polymers containing double charges per monomer is advantageous.

摘要

阳离子聚合物已被研究用于体外和体内的核酸传递。然而,由于与阴离子生物大分子(如蛋白质和多糖)的相互作用,许多基于聚合物的制剂在生物流体中缺乏稳定性。很可能,阳离子聚合物与核酸之间的静电相互作用越强,聚合物在生物流体中的多聚物的稳定性就越高。为了证明这一假设,合成了具有两个永久带正电荷的阳离子基团/单体单元的季铵化聚[3,5-双(二甲氨基亚甲基)-对羟基苯乙烯](QNPHOS)及其与 PEG 的嵌段共聚物,并与标准转染剂 pDMAEMA 进行了比较,分别就这些聚合物与 siRNA 和质粒 DNA 形成的复合物的核酸结合强度、基因沉默和转染活性进行了比较。结果表明,与破坏 pDMAEMA 复合物所需的肝素浓度相比,基于 QNPHOS 和 QNPHOS-PEG 的 siRNA 复合物在存在四倍更高的肝素浓度的情况下解离。在相同条件下,与 pDMAEMA 多聚物相比,QNPHOS 或 QNPHOS-PEG 的 DNA 多聚物没有任何解离。基于 QNPHOS 或 QNPHOS-PEG 的 DNA 多聚物没有显示出任何转染活性,这可能归因于其高物理化学稳定性。另一方面,基于 QNPHOS 和 QNPHOS-PEG 的 siRNA 复合物显示出低细胞毒性和改善的 siRNA 传递和高基因沉默活性,甚至高于基于 pDMAEMA 的复合物。这可能是由于 QNPHOS 和 QNPHOS-PEG 与 siRNA 具有优异的结合特性,这反过来又归因于每个单体单元中存在两个永久带正电荷的阳离子基团。基于这项研究的结果,得出的结论是,形成具有每个单体双电荷的聚合物与 siRNA 的强复合物是有利的。

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