Department of Biomedical Engineering, College of Health Science, Korea University, Seoul 136-703, Republic of Korea.
Lab Chip. 2010 Jun 21;10(12):1604-10. doi: 10.1039/b926443d. Epub 2010 Apr 7.
The utility of electro-responsive smart materials has been limited by bubble generation (hydrolysis) during application of electrical fields and by biocompatibility issues. Here we describe the design of a device that overcomes these limitations by combining material properties, new design concepts, and microtechnology. 4-hydroxybutyl acrylate (4-HBA) was used as a backbone hydrogel material, and its actuating behavior, bending force, and elasticity were extensively characterized as a function of size and acrylic acid concentration. To prevent bubble generation, the system was designed such that the hydrogel actuator could be operated at low driving voltages (<1.2 V). A microfluidic channel with an integrated electroactive hydrogel actuator was developed for sorting particles. This device could be operated in cell culture media, and the sorting capabilities were initially assessed by sorting droplets in an oil droplet emulsion. Biocompatibility was subsequently tested by sorting mouse embryoid bodies (mEBs) according to size. The sorted and collected mEBs maintained pluripotency, and selected mEBs successfully differentiated into three germ layers: endoderm, mesoderm, and ectoderm. The electroactive hydrogel device, integrated into a microfluidic system, successfully demonstrated the practical application of smart materials for use in cell biology.
电响应智能材料的实用性受到应用电场时产生气泡(水解)和生物相容性问题的限制。在这里,我们描述了一种通过结合材料特性、新设计理念和微技术来克服这些限制的设备的设计。我们使用 4-羟丁基丙烯酸酯 (4-HBA) 作为骨干水凝胶材料,并广泛地研究了其在尺寸和丙烯酸浓度变化时的致动行为、弯曲力和弹性。为了防止气泡生成,系统设计使得水凝胶致动器可以在低驱动电压(<1.2 V)下工作。我们开发了带有集成电活性水凝胶致动器的微流道用于粒子分选。该设备可以在细胞培养基中运行,并且通过对油滴乳液中的液滴进行分选,初步评估了其分选能力。随后,根据大小对小鼠胚胎体(mEB)进行分选,测试了其生物相容性。分选和收集的 mEB 保持多能性,并且选定的 mEB 成功地分化为三个胚层:内胚层、中胚层和外胚层。集成到微流控系统中的电活性水凝胶设备成功地展示了智能材料在细胞生物学中的实际应用。