Yang Chih-Hui, Wang Chih-Yu, Huang Keng-Shiang, Kung Chao-Pin, Chang Yi-Ching, Shaw Jei-Fu
Department of Biological Science and Technology, I-Shou University, Taiwan.
Department of Biomedical Engineering, I-Shou University, Taiwan.
Int J Pharm. 2014 Mar 25;463(2):155-60. doi: 10.1016/j.ijpharm.2013.08.020. Epub 2013 Aug 26.
This paper demonstrates a simple and easy approach for the one-step synthesis of Fe₃O₄-chitosan composite particles with tadpole-like shape. The length and diameter of the particles were adjustable from 638.3 μm to ca. 798 μm (length), and from 290 μm to 412 μm (diameter) by varying the flow rate of the dispersed phase. Mitoxantrone was used as the model drug in the drug release study. The encapsulation rate of the drug was 71% for chitosan particles, and 69% for magnetic iron oxide-chitosan particles, respectively. The iron oxide-chitosan composite particles had a faster release rate (up to 41.6% at the third hour) than the chitosan particles (about 24.6%). These iron oxide-chitosan composite particles are potentially useful for biomedical applications, such as magnetic responsive drug carriers, magnetic resonance imaging (MRI) enhancers, in the future.
本文展示了一种简单易行的方法,用于一步合成具有蝌蚪状的Fe₃O₄-壳聚糖复合颗粒。通过改变分散相的流速,颗粒的长度和直径可在638.3μm至约798μm(长度)以及290μm至412μm(直径)范围内调节。在药物释放研究中,米托蒽醌用作模型药物。壳聚糖颗粒的药物包封率分别为71%,磁性氧化铁-壳聚糖颗粒为69%。氧化铁-壳聚糖复合颗粒的释放速率比壳聚糖颗粒更快(在第三小时高达41.6%,壳聚糖颗粒约为24.6%)。这些氧化铁-壳聚糖复合颗粒未来在生物医学应用中具有潜在用途,如磁响应药物载体、磁共振成像(MRI)增强剂等。