Design, Fabrication, and Wireless Control of 3D-microprinted Robots for Biomedical Applications

Van Du Nguyen, K. T. Nguyen, Jong-Oh Park, Eunpyo Choi
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Abstract

This paper dealt with the design, fabrication, control, and evaluation of an untethered robot for biomedical applications. Helical tubular microstructures were first printed using a two-photon lithography (2PP) system, which can precisely print 3D microstructures at a nanoscale resolution. The microstructures were then masked with dopamine using in situ polymerization to facilitate magnetic nanoparticles (MNPs) and anticancer drug deposition onto their surfaces to make the microrobots with therapeutic functions. The MNP deposition allowed the wireless manipulation of the microrobots using an external magnetic actuating (EMA) system. While the addition of an anticancer drug could be used to release to the cancer area to which the microrobots were controlled. The printed microrobots had a length of 465 μm and an outer diameter (including helical wings) of 185 μm. Under the external magnetic field, the microrobots could move using helical motion with an average velocity of as high as 126 μm/s. Moreover, they could be controlled following various predefined trajectories. Finally, the therapeutic functions of the microrobots were tested by incubating the microrobots with human-origin cancer cells. The result showed that the microrobots could effectively kill the cells following a dose-dependent manner in 24 h. Thus this work proposes an innovative approach to prepare and apply a wirelessly manipulated microrobot for active targeting and treatment of cancerous cells.
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生物医学应用的3d微打印机器人的设计、制造和无线控制
本文讨论了一种生物医学应用的无系绳机器人的设计、制造、控制和评估。采用双光子光刻(2PP)系统首次打印螺旋管状微结构,该系统可以以纳米级分辨率精确打印3D微结构。然后用多巴胺原位聚合掩盖微结构,促进磁性纳米颗粒(MNPs)和抗癌药物沉积在其表面,使微机器人具有治疗功能。MNP沉积允许使用外部磁致动(EMA)系统对微型机器人进行无线操作。而添加抗癌药物可以用来释放到微型机器人控制的癌症区域。打印的微型机器人的长度为465 μm,外径(包括螺旋翼)为185 μm。在外加磁场作用下,微机器人可进行螺旋运动,平均运动速度可达126 μm/s。此外,它们可以按照各种预定义的轨迹进行控制。最后,通过将微机器人与人源癌细胞孵育,测试了微机器人的治疗功能。结果表明,微机器人可以在24小时内以剂量依赖的方式有效杀死癌细胞。因此,本工作提出了一种创新的方法来制备和应用无线操纵的微机器人来主动靶向和治疗癌细胞。
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