Lee Kong Chian Faculty of Engineering and Science, Universiti Tunku Abdul Rahman, Bandar Sungai Long, Kajang 43000, Selangor, Malaysia.
Lab Chip. 2018 Oct 9;18(20):3207-3215. doi: 10.1039/c8lc00776d.
This paper reports a wirelessly powered ionic polymer-metal composite (IPMC) soft actuator operated by external radio frequency (RF) magnetic fields for targeted drug delivery. A 183 μm thick IPMC cantilever valve was fitted with an embedded LC resonant circuit to wirelessly control the actuator when the field frequency is tuned to its resonant frequency of approximately 25 MHz. Experimental characterization of the fabricated actuator showed a cumulative cantilever deflection of 160 μm for three repeated RF ON-OFF cycles at 0.6 W input power. The device was loaded with a dye solution and immersed in DI water to demonstrate wireless drug release. The qualitative result shows the successful release of the dye solution from the device reservoir. The release rate can be controlled by tuning the RF input power. We achieved a maximum average release rate of ∼0.1 μl s-1. We further conducted an in vitro study with human tumor cells (HeLa) to demonstrate the proof of concept of the developed device. The experiments show promising results towards the intended drug delivery application.
本文报道了一种由外部射频 (RF) 磁场驱动的无线供电离子聚合物-金属复合 (IPMC) 软体驱动器,用于靶向药物输送。一个 183μm 厚的 IPMC 悬臂阀配备了一个嵌入式 LC 谐振电路,当磁场频率调谐到其约 25MHz 的谐振频率时,可以无线控制驱动器。对所制造的驱动器的实验特性进行了表征,结果表明在 0.6W 输入功率下,三个重复的 RF ON-OFF 循环可产生累积的 160μm 悬臂偏转。该装置加载有染料溶液并浸入 DI 水中,以演示无线药物释放。定性结果表明,染料溶液从装置储液器中成功释放。通过调节 RF 输入功率可以控制释放速率。我们实现了最大平均释放速率约为 0.1μl s-1。我们进一步用人肿瘤细胞 (HeLa) 进行了体外研究,以证明所开发装置的概念验证。实验结果表明,该装置在预期的药物输送应用中具有有前景的结果。