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负载聚乙二醇和水溶性壳聚糖组合涂层的长循环聚合物纳米颗粒。

Long-circulating polymeric nanoparticles bearing a combinatorial coating of PEG and water-soluble chitosan.

作者信息

Sheng Yan, Liu Changsheng, Yuan Yuan, Tao Xinyi, Yang Fan, Shan Xiaoqian, Zhou Huanjun, Xu Feng

机构信息

The State Key Laboratory of Bioreactor Engineering, East China University of Science and Technology, Shanghai 200237, PR China.

出版信息

Biomaterials. 2009 Apr;30(12):2340-8. doi: 10.1016/j.biomaterials.2008.12.070. Epub 2009 Jan 17.

Abstract

A major obstacle in the development of polymeric nanoparticles (NPs) as effective drug delivery vesicles is the rapid clearance from blood. In order to realize a significant prolongation in blood circulation, a combinatorial design, covalent attachment of polyethylene glycol (PEG) to polylactic acid (PLA) and physical adsorption of water-soluble chitosan (WSC) to particle surface, has been developed for surface modification of PLA NPs. Two types of WSC, cationic partially deacetylated chitin (PDC) and anionic N-carboxy propionyl chitosan sodium (CPCTS) were investigated. All the NPs formulated in the size range of 100-200nm were prepared by a modified w/o/w technique and physicochemically characterized. In vitro phagocytosis by mouse peritoneal macrophage (MPM), in vivo blood clearance and biodistribution following intravenous administration in mice, of these NPs labeled with 6-coumarin, were evaluated. The presence of WSC, whether alone or with PEG, highly improved the surface hydrophilicity as well as suspension stability of NPs. Their surface charge was greatly affected by the WSC coating, being close to neutrality for PEG/PDC NPs and highly negative in the case of PEG/CPCTS NPs. In comparison to NPs treated with PEG or WSC alone, the synergistic action of PEG and WSC strongly inhibited the macrophage uptake and extended the circulation half-life (t(1/2)) with concomitant reduced liver sequestration. Particularly, PEG/PDC NPs showed the most striking result with regard to their performance in vitro and in vivo. Calculated t(1/2) of PEG/PDC NPs and PEG/CPCTS NPs was 63.5h and 7.1h, respectively, much longer than that of control PEG/PVA NPs (1.1h). More WSC materials need to be evaluated, but the present data suggest that, a combinatorial coating of PEG and PDC greatly prolongs the systemic circulation of NPs and represents a significant step in the development of long-circulating drug delivery carriers.

摘要

将聚合物纳米颗粒(NPs)开发为有效的药物递送囊泡的一个主要障碍是其从血液中的快速清除。为了实现血液循环的显著延长,已经开发了一种组合设计,即将聚乙二醇(PEG)共价连接到聚乳酸(PLA)上,并将水溶性壳聚糖(WSC)物理吸附到颗粒表面,用于PLA NPs的表面改性。研究了两种类型的WSC,阳离子部分脱乙酰化甲壳素(PDC)和阴离子N-羧基丙酰壳聚糖钠(CPCTS)。所有粒径在100 - 200nm范围内的NPs均采用改进的w/o/w技术制备,并进行了物理化学表征。对这些用6-香豆素标记的NPs,评估了其在小鼠腹腔巨噬细胞(MPM)中的体外吞噬作用、静脉注射后在小鼠体内的血液清除和生物分布。WSC的存在,无论是单独存在还是与PEG一起,都极大地提高了NPs的表面亲水性以及悬浮稳定性。它们的表面电荷受到WSC涂层的极大影响,PEG/PDC NPs接近中性,而PEG/CPCTS NPs则带高度负电荷。与单独用PEG或WSC处理的NPs相比,PEG和WSC的协同作用强烈抑制了巨噬细胞摄取,并延长了循环半衰期(t(1/2)),同时减少了肝脏摄取。特别是,PEG/PDC NPs在体外和体内的性能方面表现出最显著的结果。计算得出PEG/PDC NPs和PEG/CPCTS NPs的t(1/2)分别为63.5小时和7.1小时,远长于对照PEG/PVA NPs的t(1/2)(1.1小时)。需要评估更多的WSC材料,但目前的数据表明,PEG和PDC的组合涂层极大地延长了NPs的全身循环时间,代表了长效循环药物递送载体开发中的重要一步。

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