Korea Institute of Medical Microrobotics (KIMIRo), 43-26 Cheomdangwagi-ro, Buk-gu, Gwangju, Korea.
College of Medical Engineering, Xinxiang Medical University, Xinxiang, Henan, China.
Sci Rep. 2021 Jul 23;11(1):15122. doi: 10.1038/s41598-021-94446-4.
Magnetic nanorobots (MNRs) based on paramagnetic nanoparticles/nanoclusters for the targeted therapeutics of anticancer drugs have been highlighted for their efficiency potential. Controlling the locomotion of the MNRs is a key challenge for effective delivery to the target legions. Here, we present a method for controlling paramagnetic nanoclusters through enhanced tumbling and disaggregation motions with a combination of rotating field and gradient field generated by external electromagnets. The mechanism is carried out via an electromagnetic actuation system capable of generating MNR motions with five degrees of freedom in a spherical workspace without singularity. The nanocluster swarm structures can successfully pass through channels to the target region where they can disaggregate. The results show significantly faster response and higher targeting rate by using rotating magnetic and gradient fields. The mean velocities of the enhanced tumbling motion are twice those of the conventional tumbling motion and approximately 130% higher than the gradient pulling motion. The effects of each fundamental factor on the locomotion are investigated for further MNR applications. The locomotion speed of the MNR could be predicted by the proposed mathematical model and agrees well with experimental results. The high access rate and disaggregation performance insights the potentials for targeted drug delivery application.
基于顺磁纳米粒子/纳米团簇的磁性纳米机器人 (MNRs) 因其潜在的高效性而被突出用于抗癌药物的靶向治疗。控制 MNRs 的运动是将其有效递送到靶区的关键挑战。在这里,我们提出了一种通过外加电磁场产生的旋转场和梯度场的组合来控制顺磁纳米团簇的运动的方法,从而增强了翻滚和离解运动。该机制通过一个电磁驱动系统来实现,该系统能够在一个没有奇点的球形工作空间中产生具有五个自由度的 MNR 运动。纳米团簇群结构可以成功地通过通道到达目标区域并在那里离解。结果表明,使用旋转磁场和梯度场可以显著提高响应速度和靶向率。增强翻滚运动的平均速度是传统翻滚运动的两倍,比梯度牵引运动高约 130%。研究了每个基本因素对运动的影响,以进一步应用 MNR。通过所提出的数学模型可以预测 MNR 的运动速度,并且与实验结果吻合良好。高进入率和离解性能为靶向药物输送应用提供了潜力。