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Chitosan-Graft-Branched Polyethylenimine Copolymers: Influence of Degree of Grafting on Transfection Behavior

机译:壳聚糖接枝支化聚乙烯亚胺共聚物:接枝度对转染行为的影响

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摘要

Background: Successful non-viral gene delivery currently requires compromises to achieve useful transfection levels while minimizing toxicity. Despite high molecular weight (MW) branched polyethylenimine (bPEI) is considered the gold standard polymeric transfectant, it suffers from high cytotoxicity. Inversely, its low MW counterpart is less toxic and effective in transfection. Moreover, chitosan is a highly biocompatible and biodegradable polymer but characterized by very low transfection efficiency. In this scenario, a straightforward approach widely exploited to develop effective transfectants relies on the synthesis of chitosan-graft-low MW bPEIs (Chi-g-bPEIx) but, despite the vast amount of work that has been done in developing promising polymeric assemblies, the possible influence of the degree of grafting on the overall behavior of copolymers for gene delivery has been largely overlooked.Methodology/Principal Findings: With the aim of providing a comprehensive evaluation of the pivotal role of the degree of grafting in modulating the overall transfection effectiveness of copolymeric vectors, we have synthesized seven Chi-g-bPEIx derivatives with a variable amount of bPEI grafts (minimum: 0.6%; maximum: 8.8%). Along the Chi-g-bPEIx series, the higher the degree of grafting, the greater the ζ-potential and the cytotoxicity of the resulting polyplexes. Most important, in all cell lines tested the intermediate degree of grafting of 2.7% conferred low cytotoxicity and higher transfection efficiency compared to other Chi-g-bPEIx copolymers. We emphasize that, in transfection experiments carried out in primary articular chondrocytes, Chi-g-bPEI2.7% was as effective as and less cytotoxic than the gold standard 25 kDa bPEI.Conclusions/Significance: This work underlines for the first time the pivotal role of the degree of grafting in modulating the overall transfection effectiveness of Chi-g-bPEIx copolymers. Crucially, we have demonstrated that, along the copolymer series, the fine tuning of the degree of grafting directly affected the overall charge of polyplexes and, altogether, had a direct effect on cytotoxicity.
机译:背景:目前成功的非病毒基因递送需要折中才能达到有用的转染水平,同时将毒性降至最低。尽管高分子量(MW)支链聚乙烯亚胺(bPEI)被认为是金标准聚合物转染子,但它具有很高的细胞毒性。相反,其低分子量对应物毒性较小,并且在转染中有效。此外,壳聚糖是高度生物相容性和可生物降解的聚合物,但是其转染效率非常低。在这种情况下,被广泛开发来开发有效转染子的直接方法依赖于壳聚糖-低接枝的MW bPEI(Chi-g-bPEIx)的合成,但是,尽管在开发有前途的聚合物装配体方面已进行了大量的工作,方法/主要发现:目的在于全面评估接枝度在调节总体转染效率中的关键作用,目的是全面评估接枝度对共聚物用于基因递送的整体行为的可能影响。在共聚载体中,我们合成了7种带有可变数量bPEI接枝的Chi-g-bPEIx衍生物(最低:0.6%;最高:8.8%)。沿着Chi-g-bPEIx系列,接枝程度越高,所得多链体的ζ电位和细胞毒性就越大。最重要的是,在所有测试的细胞系中,与其他Chi-g-bPEIx共聚物相比,中间接枝度为2.7%,具有较低的细胞毒性和较高的转染效率。我们强调,在原发性软骨细胞进行的转染实验中,Chi-g-bPEI2.7%的疗效与金标准25 kDa bPEI一样,且细胞毒性较小。结论/意义:这项工作首次强调了关键性因素程度对Chi-g-bPEIx共聚物整体转染效率的调节作用。至关重要的是,我们已经证明,在共聚物系列中,接枝度的微调直接影响多聚体的总电荷,并且对细胞毒性具有直接影响。

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