Synthesis of nanoparticles of Poly (ethyleneimine) and their characterization by transmission electron microscopy, thin layer chromatography, and infrared spectroscopy

R. Bashyal
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Abstract

Intracellular gene delivery alters the expression of a gene and corrects a defective gene that may be the cause of a disease or a disorder. Nonviral gene delivery is more appropriate than viral-mediated due to their low cytotoxicity and immunogenicity. Amongst these, polycationic nanoparticles i.e. Polyethyleneimine (PEI) were used most successfully. The PEGylation of such cationic polymer reduces its cytotoxicity. Different molecular weight poly (ethylene glycol) was used for the PEGylation of such cationic nanoparticles which have an individual effect. For this purpose, the PEG is esterified, which was then reacted with a cationic polymer. Four different molecular weights of PEG were used. The size of nanoparticles so formed depends upon the molecular weight of PEG. So formed nanoparticles were dialyzed, lyophilized, and then characterized by IR and TEM. The nanoparticles so formed are directly affected by the different molecular weights of PEG. Higher the molecular weights of PEG smaller size of nanoparticles so formed but only up to a limited extent. The decreasing order of nanoparticles as an increment of molecular weight of PEG was found as a -0.85 coefficient of correlation. The smaller-sized nanoparticles have higher transfection efficiency than larger-sized nanoparticles. So, the higher the molecular weight of PEG higher will be the transfection efficiency.
聚亚胺纳米粒子的合成及其透射电镜、薄层色谱和红外光谱表征
细胞内基因传递改变了基因的表达,并纠正了可能导致疾病或失调的缺陷基因。非病毒基因传递比病毒介导更合适,因为它们具有低细胞毒性和免疫原性。其中,聚阳离子纳米粒子即聚乙烯亚胺(PEI)的应用最为成功。这种阳离子聚合物的聚乙二醇化降低了其细胞毒性。采用不同分子量的聚乙二醇对这类阳离子纳米粒子进行聚乙二醇化修饰,其效果各不相同。为此,将聚乙二醇酯化,然后与阳离子聚合物反应。使用了四种不同分子量的聚乙二醇。形成的纳米颗粒的大小取决于聚乙二醇的分子量。对所形成的纳米颗粒进行透析、冻干,并用红外光谱和透射电镜对其进行表征。不同分子量的聚乙二醇直接影响纳米颗粒的形成。聚乙二醇的分子量越高,形成的纳米颗粒尺寸越小,但只是在有限的程度上。随着PEG分子量的增加,纳米颗粒的数量呈递减趋势,相关系数为-0.85。粒径较小的纳米颗粒比粒径较大的纳米颗粒转染效率更高。因此,PEG分子量越大,转染效率越高。
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