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A novel dendrimer based on poly (L-glutamic acid) derivatives as an efficient and biocompatible gene delivery vector

机译:一种基于聚(L-谷氨酸)衍生物的新型树状聚合物,作为高效且生物相容的基因传递载体

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Non-viral gene delivery systems based on cationic polymers have faced limitations related to their relative low gene transfer efficiency, cytotoxicity and system instability invivo. In this paper, a flexible and pompon-like dendrimer composed of poly (amidoamine) (PAMAM) G4.0 as the inner core and poly (L-glutamic acid) grafted low-molecular-weight polyethylenimine (PLGE) as the surrounding multiple arms was synthesized (MGI dendrimer). The novel MGI dendrimer was designed to combine the merits of size-controlled PAMAM G4.0 and the low toxicity and flexible chains of PLGE. In phosphate-buffered saline dispersions the well-defined DNA/MGI complex above a N/P ratio of 30 showed good stability with particle sizes of approximately 200nm and a comparatively low polydispersity index. However, the particle size of the DNA/25kDa polyethylenimine (DNA/PEI 25K) complex was larger than 700nm under the same salt conditions. The shielding of the compact amino groups at the periphery of flexible PAMAM and biocompatible PLGE chains in MGI resulted in a dramatic decrease of the cytotoxicity compared to native PAMAM G4.0 dendrimer. The invitro transfection efficiency of DNA/MGI dendrimer complex was higher than that of PAMAM G4.0 dendrimer. Importantly, in serum-containing medium, DNA/MGI complexes at their optimal N/P ratio maintained the same high levels of transfection efficiency as in serum-free medium, while the transfection efficiency of native PAMAM G4.0, PEI 25K and Lipofectamine 2000 were sharply decreased. Invivo gene delivery of pVEGF165/MGI complex into balloon-injured rabbit carotid arteries resulted in significant inhibition of restenosis by increasing VEGF165 expression in local vessels. Therefore, the pompon-like MGI dendrimer may be a promising vector candidate for efficient gene delivery invivo.
机译:基于阳离子聚合物的非病毒基因递送系统因其相对较低的基因转移效率,细胞毒性和体内系统不稳定性而面临局限性。在本文中,以聚(酰胺胺)(PAMAM)G4.0为内芯和聚(L-谷氨酸)接枝的低分子量聚乙烯亚胺(PLGE)为周围的多臂组成的柔性,绒球状的树状聚合物合成(MGI树枝状聚合物)。新型MGI树状聚合物的设计结合了尺寸控制的PAMAM G4.0和PLGE的低毒性和柔性链的优点。在磷酸盐缓冲盐水分散液中,N / P比率大于30的明确定义的DNA / MGI复合物显示出良好的稳定性,粒径约为200nm,且多分散指数较低。然而,在相同的盐条件下,DNA / 25kDa聚乙烯亚胺(DNA / PEI 25K)复合物的粒径大于700nm。与天然PAMAM G4.0树状大分子相比,MGI中柔性PAMAM和生物相容PLGE链外围的紧密氨基被屏蔽,导致细胞毒性显着降低。 DNA / MGI树状大分子复合物的体外转染效率高于PAMAM G4.0树状大分子。重要的是,在含血清的培养基中,DNA / MGI复合物以其最佳N / P比保持与无血清培养基中相同的高转染效率,而天然PAMAM G4.0,PEI 25K和Lipofectamine 2000的转染效率急剧减少。将pVEGF165 / MGI复合体的体内基因递送到球囊损伤的兔颈动脉中可通过增加局部血管中VEGF165的表达来显着抑制再狭窄。因此,绒球样的MGI树状大分子可能是有效的体内基因传递的有前途的载体候选人。

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