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优化无场点位置、梯度场和铁磁聚合物比例以增强基于聚合物的磁控微型机器人在血管中的导航能力。

Optimization of Field-Free Point Position, Gradient Field and Ferromagnetic Polymer Ratio for Enhanced Navigation of Magnetically Controlled Polymer-Based Microrobots in Blood Vessel.

作者信息

Sharif Saqib, Nguyen Kim Tien, Bang Doyeon, Park Jong-Oh, Choi Eunpyo

机构信息

School of Mechanical Engineering, Chonnam National University, Gwangju 61186, Korea.

Korea Institute of Medical Microrobotics, Gwangju 61011, Korea.

出版信息

Micromachines (Basel). 2021 Apr 13;12(4):424. doi: 10.3390/mi12040424.

Abstract

Microscale and nanoscale robots, frequently referred to as future cargo systems for targeted drug delivery, can effectively convert magnetic energy into locomotion. However, navigating and imaging them within a complex colloidal vascular system at a clinical scale is exigent. Hence, a more precise and enhanced hybrid control navigation and imaging system is necessary. Magnetic particle imaging (MPI) has been successfully applied to visualize the ensemble of superparamagnetic nanoparticles (MNPs) with high temporal sensitivity. MPI uses the concept of field-free point (FFP) mechanism in the principal magnetic field. The gradient magnetic field (|∇B|) of MPI scanners can generate sufficient magnetic force in MNPs; hence, it has been recently used to navigate nanosized particles and micron-sized swimmers. In this article, we present a simulation analysis of the optimized navigation of an ensemble of microsized polymer MNP-based drug carriers in blood vessels. Initially, an ideal two-dimensional FFP case is employed for the basic optimization of the FFP position to achieve efficient navigation. Thereafter, a nine-coil electromagnetic actuation simulation system is developed to generate and manipulate the FFP position and |∇B|. Under certain vessel and fluid conditions, the particle trajectories of different ferromagnetic polymer ratios and |∇B| were compared to optimize the FFP position.

摘要

微尺度和纳尺度机器人,常被称为用于靶向给药的未来载药系统,能够有效地将磁能转化为运动。然而,在临床尺度的复杂胶体血管系统中对它们进行导航和成像极具挑战性。因此,需要一个更精确且增强的混合控制导航和成像系统。磁粒子成像(MPI)已成功应用于以高时间灵敏度可视化超顺磁性纳米粒子(MNP)的集合。MPI利用主磁场中的无场点(FFP)机制概念。MPI扫描仪的梯度磁场(|∇B|)能在MNP中产生足够的磁力;因此,它最近已被用于引导纳米级粒子和微米级游动体。在本文中,我们展示了对基于微米级聚合物MNP的药物载体在血管中优化导航的模拟分析。首先,采用理想的二维FFP情况对FFP位置进行基本优化以实现高效导航。此后,开发了一个九线圈电磁驱动模拟系统来生成和操纵FFP位置及|∇B|。在特定的血管和流体条件下,比较了不同铁磁聚合物比例和|∇B|时的粒子轨迹以优化FFP位置。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fa7d/8070347/8025b4b85fa3/micromachines-12-00424-g001.jpg

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