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PEGylated polyethyleneimine-entrapped gold nanoparticles for enhanced and targeted gene delivery applications

机译:聚乙二醇化聚乙烯亚胺的金纳米颗粒用于增强和靶向基因递送应用

摘要

Gene therapy, which involves the transfer of nucleic acid into target cells in patients, has become one of the most important and widely explored strategies to treat a variety of diseases, such as cancer, infectious diseases and genetic disorders. Relative to viral vectors that have high immunogenicity, toxicity and oncogenicity, non-viral vectors have gained a lot of interest in recent years. This is largely due to their ability to mimic viral vector features including the capacity to overcome extra- and intra-cellular barriers and to enhance transfection efficiency. Polyethyleneimine (PEI) has been extensively investigated as a non-viral vector. This cationic polymer, which is able to compact nucleic acid through electrostatic interactions and to transport it across the negatively charged cell membranes, has been shown to effectively transfect nucleic acid into different cell lines. Moreover, entrapment of gold nanoparticles (Au NPs) into such an amine-terminated polymer template has been shown to significantly enhance gene transfection efficiency. In this work, a novel non-viral nucleic acid vector system for enhanced and targeted nucleic acid delivery applications was developed. The system was based on the functionalization of PEI with folic acid (FA; for targeted delivery to cancer cells overexpressing FA receptors on their surface) using polyethylene glycol (PEG) as a linker molecule. This was followed by the preparation of PEI-entrapped Au NPs (Au PENPs; for enhancement of transfection efficiency). In the synthesis process, the primary amines of PEI were first partially modified with fluorescein isothiocyanate (FI) using a molar ratio of 1:7. The formed PEI-FI conjugate was then further modified with either PEG or PEGylated FA using a molar ratio of 1:1. This process was finally followed by entrapment of Au NPs into the modified polymers. The resulting conjugates and Au PENPs were characterized by several techniques, namely Nuclear Magnetic Resonance, Dynamic Light Scattering and Ultraviolet-Visible Spectroscopy, to assess their physicochemical properties. In the cell biology studies, the synthesized conjugates and their respective Au PENPs were shown to be non-toxic towards A2780 human ovarian carcinoma cells. The role of these materials as gene delivery agents was lastly evaluated. In the gene delivery studies, the A2780 cells were successfully transfected with plasmid DNA using the different vector systems. However, FA-modification and Au NPs entrapment were not determinant factors for improved transfection efficiency. In the gene silencing studies, on the other hand, the Au PENPs were shown to effectively deliver small interfering RNA, thereby reducing the expression of the B-cell lymphoma 2 protein. Based on these results, we can say that the systems synthesized in this work show potential for enhanced and targeted gene therapy applications.
机译:基因疗法涉及将核酸转移到患者的靶细胞中,已成为治疗各种疾病(例如癌症,传染病和遗传疾病)的最重要且得到广泛探索的策略之一。相对于具有高免疫原性,毒性和致癌性的病毒载体,非病毒载体近年来引起了广泛的关注。这主要是由于它们具有模仿病毒载体功能的能力,包括克服细胞外和细胞内屏障以及提高转染效率的能力。聚乙烯亚胺(PEI)已作为非病毒载体进行了广泛研究。这种阳离子聚合物能够通过静电相互作用将核酸压紧,并能通过带负电荷的细胞膜转运核酸,已被证明可以有效地将核酸转染到不同的细胞系中。而且,已经表明将金纳米颗粒(Au NPs)截留在这种胺末端的聚合物模板中可以显着提高基因转染效率。在这项工作中,开发了一种用于增强和靶向核酸递送应用的新型非病毒核酸载体系统。该系统基于使用聚乙二醇(PEG)作为连接分子的叶酸对PEI的功能化(FA;用于靶向递送至在其表面过表达FA受体的癌细胞)。接下来是制备包埋有​​PEI的Au NP(Au PENP;用于提高转染效率)。在合成过程中,首先用异硫氰酸荧光素(FI)以1:7的摩尔比对PEI的伯胺进行部分改性。然后将形成的PEI-FI缀合物用PEG或PEG化的FA以1:1的摩尔比进一步修饰。该过程最后是将金纳米颗粒截留在改性聚合物中。通过几种技术(即核磁共振,动态光散射和紫外-可见光谱)对所得的缀合物和Au PENP进行表征,以评估其理化性质。在细胞生物学研究中,合成的缀合物及其各自的Au PENPs对A2780人卵巢癌细胞无毒。最后评估了这些材料作为基因传递剂的作用。在基因传递研究中,使用不同的载体系统成功地用质粒DNA转染了A2780细胞。但是,FA修饰和Au NPs的包埋不是提高转染效率的决定性因素。另一方面,在基因沉默研究中,Au PENPs可有效递送小分子干扰RNA,从而降低B细胞淋巴瘤2蛋白的表达。基于这些结果,我们可以说这项工作中综合的系统显示出增强和靶向基因治疗应用的潜力。

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  • 作者

    Zhao Yan;

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  • 年度 2015
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  • 原文格式 PDF
  • 正文语种 eng
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