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阴离子对壳聚糖-DNA纳米颗粒形成及性质的影响。

Influence of anions on the formation and properties of chitosan-DNA nanoparticles.

作者信息

Peng Jiaofeng, Xing Xinli, Wang Kemin, Tan Weihong, He Xiaoxiao, Huang Shasheng

机构信息

State Key Laboratory of Chemo/Biosensing and Chemometrics, Engineering Research Center for Bio-Nanotechnology of Hunan Province, College of Chemistry and Chemical Engineering, Hunan University, Changsha 410082, P. R. China.

出版信息

J Nanosci Nanotechnol. 2005 May;5(5):713-7. doi: 10.1166/jnn.2005.091.

Abstract

Chitosan-DNA nanoparticles were prepared by using different anions (such as chloride, sulfate, citrate, and tripolyphosphate) as mediation agents. The research suggested that the formation and morphological characteristics of chitosan-DNA nanoparticles largely depended on concentration, molecular size, charge number, and chemical structure of anions, as well as chitosan/DNA ratio. The observation by atom force microscopy showed that chitosan-DNA nanoparticles mediated by four anions (in their appropriate range of concentration) had a spherical shape, narrow size distribution, and good monodispersivity. Especially, nanoparticles mediated by sulfate and TPP had a size distribution of 40-50 nm. Additionally, the nanoparticles presented high encapsulation efficiency and good protection of DNA from DNasel digestion. The zeta-potential of nanoparticles could be adjusted moderately by adding different anions and controlling their concentrations, and DNA encapsulation efficiency was not influenced, which would reduce nonspecific interactions with the cell membrane and nanoparticle toxicity. Smaller size and lower zeta-potential will be beneficial for improving gene therapy. In addition, the anion mediation method has potential for the preparation of cationic polymer nanoparticles as drug or gene vectors.

摘要

以不同阴离子(如氯离子、硫酸根离子、柠檬酸根离子和三聚磷酸根离子)作为介导剂制备了壳聚糖 - DNA纳米颗粒。研究表明,壳聚糖 - DNA纳米颗粒的形成及其形态特征在很大程度上取决于阴离子的浓度、分子大小、电荷数、化学结构以及壳聚糖/DNA比例。原子力显微镜观察显示,由四种阴离子介导(在其适当的浓度范围内)的壳聚糖 - DNA纳米颗粒呈球形,粒径分布窄,具有良好的单分散性。特别是,由硫酸根离子和三聚磷酸根离子介导的纳米颗粒粒径分布为40 - 50 nm。此外,这些纳米颗粒具有高包封率,并且对DNA具有良好的保护作用,使其免受DNasel消化。通过添加不同阴离子并控制其浓度,可以适度调节纳米颗粒的zeta电位,且不影响DNA包封率,这将减少与细胞膜的非特异性相互作用以及纳米颗粒的毒性。较小的粒径和较低的zeta电位有利于改善基因治疗。此外,阴离子介导法在制备作为药物或基因载体的阳离子聚合物纳米颗粒方面具有潜力。

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