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Development of a Multi-functional Nano-device for Safe and Effective Gene Delivery to Target Organs

机译:开发用于靶器官安全有效基因传递的多功能纳米装置

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摘要

Nucleic acids are expected as novel effective medicines, although they require a drug delivery system (DDS). Complexes of nucleic acids with cationic liposomes and cationic polymers have been mainly used as DDS for clinical use. However, most cationic complexes have disadvantages such as strong cytotoxicity and low biocompatibility. We previously found that a plasmid DNA (pDNA) complex coated with biodegradable γ-polyglutamic acid (γ-PGA) provided adequate gene expression without cytotoxicity. Based on these results, we developed a new DDS (multi-functional Nano-device) of pDNA using biodegradable polyamino acids. A typical cationic polyamino acid, poly-L-lysine (PLL), was complexed with pDNA. The binary complexes, however, showed low gene expression and high cytotoxicity. Gene expression was enhanced by addition of poly-L-histidine (PLH) to the binary complexes. PLH can increase endosome escape of the complexes by inducing pH-buffering effects. The quaternary complexes (pDNA-PLL-PLH-γ-PGA complexes) exhibited high gene expression and low cytotoxicity. Furthermore, we used dendrigraft poly-L-lysine (DGL) instead of PLL and PLH to enhance gene expression. DGL had sterically congested cations and was biodegradable. The ternary complexes (pDNA-DGL-γ-PGA complexes) exhibited markedly high gene expression and low cytotoxicity. The pDNA-DGL-γ-PGA complexes also had high gene expression in the marginal zone (rich dendritic cells) of the spleen after intravenous injection into mice. These results indicate that pDNA-DGL-γ-PGA complexes may be useful as vaccine vectors. Therefore we prepared a novel malaria DNA vaccine using Plasmodium yoelii GPI8p-transamidase-related protein pDNA (PyTAM). The PyTAM-DGL-γ-PGA complexes markedly improved survival time of model mice infected with malaria.
机译:核酸虽然需要药物递送系统(DDS),但仍有望作为新型有效药物。核酸与阳离子脂质体和阳离子聚合物的复合物已主要用作临床用途的DDS。然而,大多数阳离子复合物具有诸如强细胞毒性和低生物相容性的缺点。我们先前发现,涂有可生物降解的γ-聚谷氨酸(γ-PGA)的质粒DNA(pDNA)复合物提供了足够的基因表达而没有细胞毒性。基于这些结果,我们使用可生物降解的聚氨基酸开发了一种新的pDNA DDS(多功能纳米设备)。将典型的阳离子聚氨基酸聚L-赖氨酸(PLL)与pDNA复合。然而,二元复合物显示低基因表达和高细胞毒性。通过向二元复合物中添加聚-L-组氨酸(PLH)增强基因表达。 PLH可通过诱导pH缓冲作用来增加复合物的内体逸出。季复合物(pDNA-PLL-PLH-γ-PGA复合物)表现出高基因表达和低细胞毒性。此外,我们使用树状移植物聚L-赖氨酸(DGL)代替PLL和PLH来增强基因表达。 DGL具有空间拥挤的阳离子,并且可生物降解。三元复合物(pDNA-DGL-γ-PGA复合物)表现出显着的高基因表达和低细胞毒性。静脉内注射给小鼠后,pDNA-DGL-γ-PGA复合物在脾的边缘区(富含树突状细胞)中也具有高基因表达。这些结果表明,pDNA-DGL-γ-PGA复合物可用作疫苗载体。因此,我们使用约氏疟原虫GPI8p-转酰胺酶相关蛋白pDNA(PyTAM)制备了新型疟疾DNA疫苗。 PyTAM-DGL-γ-PGA复合物显着提高了感染疟疾的模型小鼠的存活时间。

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    兒玉 幸修;

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  • 年度 2016
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  • 正文语种 ja
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