Size-tunable drug-delivery capsules composed of a magnetic nanoshell.

Biomatter Pub Date : 2012-10-01 DOI:10.4161/biom.22617
Teruaki Fuchigami, Yoshitaka Kitamoto, Yoshihisa Namiki
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引用次数: 16

Abstract

Nano-sized FePt capsules with two types of ultrathin shell were fabricated using a template method for use in a nano-scale drug delivery system. One capsule was composed of an inorganic-organic hybrid shell of a water-soluble polymer and FePt nanoparticles, and the other capsule was composed of a network of fused FePt nanoparticles. We demonstrated that FePt nanoparticles selectively accumulated on the polymer molecules adsorbed on the template silica particles, and investigated the morphologies of the particle accumulation by changing the concentration of the polymer solution with which the template particles were treated. Capsular size was reduced from 340 to less than 90 nm by changing the size of the silica template particles, and the shell thickness was controlled by changing the amount of FePt nanoparticles adsorbed on the template particles. The hybrid shell was maintained by the connection of FePt nanoparticles and polymer molecules, and the shell thickness was 10 nm at the maximum. The FePt network shell was fabricated by hydrothermal treatment of the FePt/polymer-modified silica composite particles. The FePt network shell was produced from only the FePt alloy, and the shell thickness was 3 nm. Water-soluble anti-cancer drugs could be loaded into the hollow space of FePt network capsules, and lipid-coated FePt network capsules loaded with anti-cancer drugs showed cellular toxicity. The nano-sized capsular structure and the ultrathin shell suggest applicability as a drug carrier in magnetically guided drug delivery systems.

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由磁性纳米壳组成的可调节大小的药物递送胶囊。
采用模板法制备了具有两种超薄外壳的FePt纳米胶囊,用于纳米级给药系统。一种胶囊由水溶性聚合物和FePt纳米粒子的无机-有机杂化壳组成,另一种胶囊由熔融FePt纳米粒子网络组成。我们证明了FePt纳米颗粒选择性地积聚在吸附在模板二氧化硅颗粒上的聚合物分子上,并通过改变处理模板颗粒的聚合物溶液的浓度来研究颗粒积聚的形态。通过改变模板颗粒的大小,可以将胶囊的尺寸从340 nm减小到小于90 nm,通过改变模板颗粒上吸附的FePt纳米颗粒的量来控制胶囊的壳厚。FePt纳米粒子与聚合物分子的连接维持了杂化壳,最大壳厚为10 nm。采用水热法制备了FePt/聚合物改性二氧化硅复合粒子的FePt网壳。仅用FePt合金制备FePt网壳,网壳厚度为3 nm。水溶性抗癌药物可装入FePt网络胶囊的中空空间,脂质包被FePt网络胶囊装入抗癌药物后显示出细胞毒性。纳米尺寸的胶囊结构和超薄的外壳表明在磁导给药系统中作为药物载体的适用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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