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Nanostructured Polyelectrolyte Complexes Based on Water-Soluble Thiacalix4Arene and Pillar5Arene: Self-Assembly in Micelleplexes and Polyplexes at Packaging DNA

机译:基于水溶性硫杂杯4 Arene和支柱5 Arene的纳米结构聚电解质复合物:包装DNA时胶束和多聚物的自组装

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摘要

Controlling the self-assembly of polyfunctional compounds in interpolyelectrolyte aggregates is an extremely challenging task. The use of macrocyclic compounds offers new opportunities in design of a new generation of mixed nanoparticles. This approach allows creating aggregates with multivalent molecular recognition, improved binding efficiency and selectivity. In this paper, we reported a straightforward approach to the synthesis of interpolyelectrolytes by co-assembling of the thiacalix[4]arene with four negatively charged functional groups on the one side of macrocycle, and pillar[5]arene with 10 ammonium groups located on both sides. Nanostructured polyelectrolyte complexes show effective packaging of high-molecular DNA from calf thymus. The interaction of co-interpolyelectrolytes with the DNA is completely different from the interaction of the pillar[5]arene with the DNA. Two different complexes with DNA, i.e., micelleplex- and polyplex-type, were formed. The DNA in both cases preserved its secondary structure in native B form without distorting helicity. The presented approach provides important advantage for the design of effective biomolecular gene delivery systems.
机译:控制聚电解质间聚合体中多官能化合物的自组装是一项极富挑战性的任务。大环化合物的使用为新一代混合纳米颗粒的设计提供了新的机会。这种方法可以创建具有多价分子识别,改进的结合效率和选择性的聚集体。在本文中,我们报道了一种通过直接组装大分子环一侧带有四个带负电荷的官能团的硫杂杯[4]芳烃和位于其上的10个铵基的支柱[5]芳烃来合成中间电解质的简单方法。双方。纳米结构的聚电解质复合物显示出来自小牛胸腺的高分子DNA的有效包装。共聚电解质与DNA的相互作用与支柱[5]芳烃与DNA的相互作用完全不同。形成了两种不同的DNA复合物,即胶束复合物和多链复合物类型。在两种情况下,DNA都以天然B形式保留其二级结构而不会扭曲螺旋。提出的方法为设计有效的生物分子基因传递系统提供了重要的优势。

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