Sun Yanming, Pan Renjie, Chen Yuduo, Wang Yong, Sun Lei, Wang Neng, Ma Xing, Wang Guo Ping
College of Electronics and Information Engineering, Shenzhen University, 3688 Nanhai Boulevard, Shenzhen 518060, China.
School of Materials Science and Engineering, Harbin Institute of Technology (Shenzhen), Shenzhen 518055, Guangdong, China.
ACS Nanosci Au. 2022 Nov 25;3(1):94-102. doi: 10.1021/acsnanoscienceau.2c00042. eCollection 2023 Feb 15.
The applications of nanomotors in the biomedical field have been attracting extensive attention. However, it remains a challenge to fabricate nanomotors in a facile way and effectively load drugs for active targeted therapy. In this work, we combine the microwave heating method and chemical vapor deposition (CVD) to fabricate magnetic helical nanomotors efficiently. The microwave heating method can accelerate intermolecular movement, which converts kinetic energy into heat energy and shortens the preparation time of the catalyst used for carbon nanocoil (CNC) synthesis by 15 times. FeO nanoparticles are in situ nucleated on the CNC surface by the microwave heating method to fabricate magnetically driven CNC/FeO nanomotors. In addition, we achieved precise control of the magnetically driven CNC/FeO nanomotors through remote manipulation of magnetic fields. Anticancer drug doxorubicin (DOX) is then efficiently loaded onto the nanomotors via π-π stacking interactions. Finally, the drug-loaded CNC/FeO@DOX nanomotor can accurately accomplish cell targeting under external magnetic field control. Under short-time irradiation of near-infrared light, DOX can be quickly released onto target cells to effectively kill the cells. More importantly, CNC/FeO@DOX nanomotors allow for single-cell or cell-cluster-targeted anticancer drug delivery, providing a dexterous platform to potentially perform many medically relevant tasks in vivo. The efficient preparation method and application in drug delivery are beneficial for future industrial production and provide inspiration for advanced micro/nanorobotic systems using the CNC as a carrier for a wide range of biomedical applications.
纳米马达在生物医学领域的应用一直备受广泛关注。然而,以简便的方式制造纳米马达并有效地负载药物以进行主动靶向治疗仍然是一个挑战。在这项工作中,我们结合微波加热法和化学气相沉积(CVD)来高效制备磁性螺旋纳米马达。微波加热法可以加速分子间运动,将动能转化为热能,使用于碳纳米线圈(CNC)合成的催化剂的制备时间缩短了15倍。通过微波加热法使FeO纳米颗粒在CNC表面原位成核,以制备磁驱动的CNC/FeO纳米马达。此外,我们通过远程操纵磁场实现了对磁驱动的CNC/FeO纳米马达的精确控制。然后,通过π-π堆积相互作用将抗癌药物阿霉素(DOX)有效地负载到纳米马达上。最后,载药的CNC/FeO@DOX纳米马达在外部磁场控制下可以准确地完成细胞靶向。在近红外光的短时间照射下,DOX可以快速释放到靶细胞上以有效地杀死细胞。更重要的是,CNC/FeO@DOX纳米马达允许进行单细胞或细胞簇靶向的抗癌药物递送,为在体内潜在地执行许多医学相关任务提供了一个灵活的平台。这种高效的制备方法及其在药物递送中的应用有利于未来的工业生产,并为以CNC作为载体的先进微/纳米机器人系统在广泛的生物医学应用中提供了灵感。