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Localization and Actuation for MNPs Based on Magnetic Field-Free Point: Feasibility of Movable Electromagnetic Actuations

机译:基于磁场 - 无磁场点的MNP定位和致动:可移动电磁致动的可行性

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摘要

Targeted drug delivery (TDD) based on magnetic nanoparticles (MNPs) and external magnetic actuation is a promising drug delivery technology compared to conventional treatments usually utilized in cancer therapy. However, the implementation of a TDD system at a clinical site based on considerations for the actual size of the human body requires a simplified structure capable of both external actuation and localization. To address these requirements, we propose a novel approach to localize drug carriers containing MNPs by manipulating the field-free point (FFP) mechanism in the principal magnetic field. To this end, we devise a versatile electromagnetic actuation (EMA) system for FFP generation based on four coils affixed to a movable frame. By the Biot–Savart law, the FFP can be manipulated by appropriately controlling the gradient field strength at the target area using the EMA system. Further, weighted-norm solutions are utilized to correct the positions of FFP to improve the accuracy of FFP displacement in the region of interest (ROI). As MNPs, ferrofluid is used to experiment with 2D and 3D localizations in a blocked phantom placed in the designed ROI. The resultant root mean square error of the localizations is observed to be approximately 1.4 mm in the 2D case and 1.6 mm in the 3D case. Further, the proposed movable EMA is verified to be capable of simultaneously scanning multiple points as well as the actuation and imaging of MNPs. Based on the success of the experiments in this study, further research is intended to be conducted in scale-up system development to design precise TDD systems at clinical sites.
机译:与通常用于癌症治疗的常规治疗相比,基于磁性纳米颗粒(MNP)和外部磁性致动的靶向药物递送(TDD)是一种有前景的药物递送技术。然而,基于人体实际尺寸的考虑的临床站点在临床站点上实现TDD系统需要一种能够进行外部致动和定位的简化结构。为了解决这些要求,我们提出了一种通过操纵主磁场中的无场 - 自由点(FFP)机制来定位含有MnP的药物载体的新方法。为此,我们设计了一种基于固定到可移动框架的四个线圈的FFP生成的多功能电磁驱动(EMA)系统。通过Biot-Savart Law,可以通过使用EMA系统适当地控制目标区域的梯度场强来操纵FFP。此外,利用加权规范解决方案来校正FFP的位置,以提高感兴趣区域(ROI)中的FFP位移的精度。作为MNPS,Ferrofluid用于在放置在设计的ROI中的封闭幻像中进行2D和3D局部。在2D案例中观察到本地化的所得到的根均方误差为约1.4mm,3D情况下为1.6mm。此外,验证所提出的可移动EMA能够同时扫描多个点以及MNP的致动和成像。基于本研究实验的成功,进一步研究旨在在扩大系统开发中进行,以在临床部位设计精确的TDD系统。

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