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首页> 外文期刊>Biomacromolecules >Effects of the Incorporation of a Hydrophobic Middle Block into a PEG-Polycation Diblock Copolymer on the Physicochemical and Cell Interaction Properties of the Polymer-DNA Complexes
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Effects of the Incorporation of a Hydrophobic Middle Block into a PEG-Polycation Diblock Copolymer on the Physicochemical and Cell Interaction Properties of the Polymer-DNA Complexes

机译:将疏水性中间嵌段掺入PEG-聚二嵌段共聚物中对聚合物-DNA配合物的理化和细胞相互作用特性的影响

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One-component homopolymers of cationic monomers (polycations) and diblock copolymers comprising poly(ethylene glycol) (PEG) and a polycation block have been the most widely used types of polymers for the formulation of polymer-based gene delivery systems. In this study, we incorporate a hydrophobic middle block into the conventional PEG—polycation architecture and investigate the effects of this hydrophobic modification on the physicochemical and cell-level biological properties of the polymer—DNA complexes that are relevant to gene delivery applications. The ABC-type triblock copolymer used in this study consists of (A) PEG, (B) hydrophobic poly(n-butyl acrylate) (PnBA), and (C) cationic poly(2-(dimethylamino)ethyl methacrylate) (PD-MAEMA) component polymers. The properties of the triblock copolymer/DNA complexes are compared with those of two other more conventional DNA carriers derived, respectively, using a PDMAEMA homopolymer and a PEG-PDMAEMA diblock copolymer that had comparable molecular weights for individual blocks. In aqueous solution, the PEG—PnBA—PDMAEMA polymer forms positively charged spherical micelles. The electrostatic complexation of these micelles with plasmid DNA molecules results in the formation of stable small-sized DNA particles that are coated with a micelle monolayer, as confirmed by agarose gel electrophoresis, dynamic light scattering (DLS), and cryogenic transmission electron microscopy (cryo-TEM). Proton nuclear magnetic resonance (~1H NMR) spectroscopy measurements indicate that the whole micelle—DNA assembly (named "micelleplex" for convenience) is shielded predominantly by the PEG chains. DLS and optical microscopy imaging measurements indicate that compared with PDMAEMA—DNA polyplexes, the micelleplexes have a significantly lower tendency to aggregate under physiological salt concentrations and show reduced interactions with negatively charged components in serum such as albumin and erythrocytes. While the micelleplexes are comparable to the PEG—PDMAEMA-based DNA polyplexes in terms of their stability against aggregation under high salt concentrations and in the presence of the albumin protein, they have a slightly higher tendency to interact with erythrocytes than the diblock copolymer polyplexes. Agarose gel electrophoresis measurements indicate that relative to the PEG—PDMAEMA polyplexes, the micelleplexes provide better protection of the encapsulated DNA from enzymatic degradation and also exhibit greater stability against disintegration induced by polyanionic additives; in these respects, the PDMAEMA homopolymer-based polyplexes show the best performance. In vitro studies in HeLa cells indicate that the PDMAEMA polyplexes show the highest gene transfection efficiency among the three different gene delivery systems. Between the micelleplexes and the PEG—PDMAEMA polyplexes, a higher gene transfection efficiency is observed with the latter system. All three formulations show comparable levels of cytotoxicity in HeLa cells.
机译:阳离子单体(聚阳离子)的单组分均聚物和包含聚(乙二醇)(PEG)和聚阳离子嵌段的二嵌段共聚物已经成为用于配制基于聚合物的基因递送系统的最广泛使用的聚合物类型。在这项研究中,我们将疏水性中间嵌段结合到常规PEG-聚阳离子体系结构中,并研究了这种疏水性修饰对与基因传递应用相关的聚合物-DNA复合物的理化和细胞水平生物学特性的影响。本研究中使用的ABC型三嵌段共聚物由(A)PEG,(B)疏水性聚丙烯酸正丁酯(PnBA)和(C)阳离子聚甲基丙烯酸2-(二甲基氨基)乙酯(PD- MAEMA)组分聚合物。将三嵌段共聚物/ DNA配合物的特性与分别使用具有可比的单个嵌段分子量的PDMAEMA均聚物和PEG-PDMAEMA二嵌段共聚物衍生的其他两种更常规的DNA载体的特性进行比较。在水溶液中,PEG-PnBA-PDMAEMA聚合物形成带正电的球形胶束。这些胶束与质粒DNA分子的静电复合导致形成稳定的小分子DNA颗粒,该颗粒被胶束单层包被,如琼脂糖凝胶电泳,动态光散射(DLS)和低温透射电子显微镜(低温)所证实-TEM)。质子核磁共振(〜1H NMR)光谱测量表明,整个胶束-DNA组装(为方便起见,命名为“ micelleplex”)被PEG链屏蔽。 DLS和光学显微镜成像测量表明,与PDMAEMA-DNA多聚体相比,胶束复合体在生理盐浓度下具有明显更低的聚集趋势,并且与血清中的带负电荷的成分(如白蛋白和红细胞)的相互作用降低。尽管胶束复合物在高盐浓度和白蛋白存在下对聚集的稳定性方面可与基于PEG-PDMAEMA的DNA复合物相比,但与二嵌段共聚物复合物相比,它们与红细胞相互作用的趋势略高。琼脂糖凝胶电泳测量表明,相对于PEG-PDMAEMA多聚体,胶束复合体可更好地保护被包裹的DNA免于酶促降解,并且还表现出更大的稳定性,可抵抗聚阴离子添加剂诱导的崩解。在这些方面,基于PDMAEMA均聚物的复合物表现出最佳性能。 HeLa细胞的体外研究表明,PDMAEMA多聚体在三种不同的基因递送系统中显示出最高的基因转染效率。在胶束复合物和PEG-PDMAEMA复合物之间,使用后者的系统观察到更高的基因转染效率。所有这三种制剂在HeLa细胞中均显示出可比的细胞毒性水平。

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