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可生物降解的三嵌段共聚物聚乳酸-聚乙二醇-聚L-赖氨酸(PLA-PEG-PLL)作为一种非病毒载体用于增强基因转染。

Biodegradable tri-block copolymer poly(lactic acid)-poly(ethylene glycol)-poly(l-lysine)(PLA-PEG-PLL) as a non-viral vector to enhance gene transfection.

作者信息

Fu Chunhua, Sun Xiaoli, Liu Donghua, Chen Zhijing, Lu Zaijun, Zhang Na

机构信息

Department of Pharmacy, Shandong Medical College, 5460 Bicyclic Nan Road, Ji'nan, 250002 Shandong Province, China; E-Mail:

出版信息

Int J Mol Sci. 2011 Feb 23;12(2):1371-88. doi: 10.3390/ijms12021371.

Abstract

Low cytotoxicity and high gene transfection efficiency are critical issues in designing current non-viral gene delivery vectors. The purpose of the present work was to synthesize the novel biodegradable poly (lactic acid)-poly(ethylene glycol)-poly(l-lysine) (PLA-PEG-PLL) copolymer, and explore its applicability and feasibility as a non-viral vector for gene transport. PLA-PEG-PLL was obtained by the ring-opening polymerization of Lys(Z)-NCA onto amine-terminated NH(2)-PEG-PLA, then acidolysis to remove benzyloxycarbonyl. The tri-block copolymer PLA-PEG-PLL combined the characters of cationic polymer PLL, PLA and PEG: the self-assembled nanoparticles (NPs) possessed a PEG loop structure to increase the stability, hydrophobic PLA segments as the core, and the primary ɛ-amine groups of lysine in PLL to electrostatically interact with negatively charged phosphate groups of DNA to deposit with the PLA core. The physicochemical properties (morphology, particle size and surface charge) and the biological properties (protection from nuclease degradation, plasma stability, in vitro cytotoxicity, and in vitro transfection ability in HeLa and HepG2 cells) of the gene-loaded PLA-PEG-PLL nanoparticles (PLA-PEG-PLL NPs) were evaluated, respectively. Agarose gel electrophoresis assay confirmed that the PLA-PEG-PLL NPs could condense DNA thoroughly and protect DNA from nuclease degradation. Initial experiments showed that PLA-PEG-PLL NPs/DNA complexes exhibited almost no toxicity and higher gene expression (up to 21.64% in HepG2 cells and 31.63% in HeLa cells) than PEI/DNA complexes (14.01% and 24.22%). These results revealed that the biodegradable tri-block copolymer PLA-PEG-PLL might be a very attractive candidate as a non-viral vector and might alleviate the drawbacks of the conventional cationic vectors/DNA complexes for gene delivery in vivo.

摘要

低细胞毒性和高基因转染效率是当前设计非病毒基因递送载体时的关键问题。本研究的目的是合成新型可生物降解的聚(乳酸)-聚(乙二醇)-聚(L-赖氨酸)(PLA-PEG-PLL)共聚物,并探索其作为基因转运非病毒载体的适用性和可行性。通过将Lys(Z)-NCA在胺端基的NH(2)-PEG-PLA上进行开环聚合,然后酸解去除苄氧羰基,得到PLA-PEG-PLL。三嵌段共聚物PLA-PEG-PLL兼具阳离子聚合物PLL、PLA和PEG的特性:自组装纳米颗粒(NPs)具有PEG环结构以提高稳定性,疏水的PLA链段作为核心,PLL中赖氨酸的伯ε-胺基团与带负电荷的DNA磷酸基团静电相互作用,与PLA核心一起沉积。分别评估了载基因的PLA-PEG-PLL纳米颗粒(PLA-PEG-PLL NPs)的物理化学性质(形态、粒径和表面电荷)和生物学性质(抗核酸酶降解、血浆稳定性、体外细胞毒性以及在HeLa和HepG2细胞中的体外转染能力)。琼脂糖凝胶电泳分析证实,PLA-PEG-PLL NPs能彻底凝聚DNA并保护其免受核酸酶降解。初步实验表明,PLA-PEG-PLL NPs/DNA复合物几乎没有毒性,且基因表达高于PEI/DNA复合物(在HepG2细胞中高达21.64%,在HeLa细胞中高达31.63%,而PEI/DNA复合物分别为14.01%和24.22%)。这些结果表明,可生物降解的三嵌段共聚物PLA-PEG-PLL可能是一种非常有吸引力的非病毒载体候选物,可能会减轻传统阳离子载体/DNA复合物在体内基因递送中的缺点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/552b/3083711/49860e1d167a/ijms-12-01371f1.jpg

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