Liu Xianqiao, Kaminski Michael D, Chen Haitao, Torno Michael, Taylor LaToyia, Rosengart Axel J
Departments of Neurology and Surgery (Neurosurgery), The University of Chicago and Pritzker School of Medicine, Chicago, IL 60637, USA.
J Control Release. 2007 May 14;119(1):52-8. doi: 10.1016/j.jconrel.2006.11.031. Epub 2007 Feb 2.
The objective of this study was to develop high magnetization, biodegradable/biocompatible polymer-coated magnetic nanospheres for biomedical applications. Magnetic spheres were prepared by a modified single oil-in-water emulsion-solvent evaporation method utilizing highly-concentrated hydrophobic magnetite and poly(d,l lactide-co-glycolide) (PLGA). Hydrophobic magnetite prepared using oleic acid exhibited high magnetite concentrations (84 wt.%) and good miscibility with biopolymer solvents to form a stable oily suspension. The oily suspension was then emulsified within an aqueous solution containing poly(vinyl alcohol). After rapid evaporation of the organic solvent, we obtained solid magnetic nanospheres. We characterized these spheres in terms of external morphology, microstructure, size and zeta potential, magnetite content and distribution within the nanospheres, and magnetic properties. The results showed good encapsulation where the magnetite distorted the smooth surface morphology only at the highest magnetite concentrations. The mean diameter was 360-370 nm with polydispersity indices of 0.12-0.20. We obtained high magnetite content (40-60%) and high magnetization (26-40 emu/g). The high magnetization properties were obtained while leaving sufficient polymer to retain drugs making these biodegradable spheres suitable as a potential platform for the design of magnetically-guided drug delivery and other in vivo biomagnetic applications.
本研究的目的是开发用于生物医学应用的高磁化、可生物降解/生物相容的聚合物包覆磁性纳米球。利用高浓度疏水性磁铁矿和聚(d,l丙交酯-共-乙交酯)(PLGA),通过改进的单水包油乳液-溶剂蒸发法制备磁性球。使用油酸制备的疏水性磁铁矿表现出高磁铁矿浓度(84 wt.%),并且与生物聚合物溶剂具有良好的混溶性,以形成稳定的油性悬浮液。然后将该油性悬浮液在含有聚乙烯醇的水溶液中乳化。有机溶剂快速蒸发后,我们获得了固体磁性纳米球。我们从外部形态、微观结构、尺寸和zeta电位、磁铁矿含量及其在纳米球内的分布以及磁性等方面对这些球进行了表征。结果表明,在最高磁铁矿浓度下,磁铁矿仅使光滑的表面形态发生畸变,包封效果良好。平均直径为360 - 370 nm,多分散指数为0.12 - 0.20。我们获得了高磁铁矿含量(40 - 60%)和高磁化强度(26 - 40 emu/g)。在获得高磁化性能的同时,保留了足够的聚合物以保留药物,使得这些可生物降解的球适合作为磁导向药物递送和其他体内生物磁应用设计的潜在平台。