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用于药物靶向中引导超顺磁性纳米颗粒的混合磁阵列的实验与模拟表征

Experimental and Simulative Characterization of a Hybrid Magnetic Array for Steering Superparamagnetic Nanoparticles in Drug Targeting.

作者信息

Thalmayer Angelika S, Fink Lucas, Fischer Georg

出版信息

IEEE Trans Biomed Eng. 2025 Mar;72(3):940-952. doi: 10.1109/TBME.2024.3479938. Epub 2025 Feb 20.

DOI:10.1109/TBME.2024.3479938
PMID:39401110
Abstract

INTRODUCTION

Adjustable magnetic fields are essential for precisely steering drug-loaded magnetic nanoparticles in cancer therapy. Since electromagnets require high currents to achieve a strong magnetic force, this paper presents a new approach combining electromagnets and permanent magnets.

OBJECTIVE

The basic idea of the hybrid array is to use the strong and low-cost magnetic field of permanent magnets and superimpose them with the field of electromagnets via a Halbach arrangement. This results in a constructive and destructive superposition of the magnetic field, which can easily be reversed by the applied current's direction. Moreover, the current's magnitude can be reduced dramatically to 2 A, as the primary magnetic flux comes from the permanent magnets.

METHODS

To the authors' knowledge, this is the first paper proposing a magnetic hybrid array for steering magnetic nanoparticles in a velocity flow. The array was validated in simulations using COMSOL Multiphysics and measurements in a tube flow system. In contrast to state-of-the-art publications, the particle distribution was determined quantitatively.

RESULTS

In this proof of concept, the simulation and measurement results fit well. It was demonstrated that the magnetic force is adjustable via the current and that the magnetic field of permanent magnets can be eliminated by superimposing the field of electromagnets, also indicated by the particle distribution. Furthermore, gravitation has a significant influence on particle distribution.

SIGNIFICANCE

The proposed system combines the advantages of permanent magnets and electromagnets. Hence, the induced heat that damages tissue is decreased, which is crucial for bringing the setup into clinical treatments.

摘要

引言

在癌症治疗中,可调磁场对于精确引导载药磁性纳米颗粒至关重要。由于电磁铁需要高电流才能产生强大的磁力,本文提出了一种将电磁铁与永磁体相结合的新方法。

目的

混合阵列的基本思想是利用永磁体强大且低成本的磁场,并通过哈尔巴赫阵列将其与电磁铁的磁场叠加。这会导致磁场的相长和相消叠加,通过施加电流的方向可以轻松实现反转。此外,由于主磁通来自永磁体,电流大小可大幅降低至2A。

方法

据作者所知,本文是第一篇提出用于在速度流中引导磁性纳米颗粒的磁性混合阵列的论文。该阵列在使用COMSOL Multiphysics进行的模拟以及在管流系统中的测量中得到了验证。与现有文献不同,颗粒分布是通过定量确定的。

结果

在这个概念验证中,模拟和测量结果吻合良好。结果表明,磁力可通过电流进行调节,并且通过叠加电磁铁的磁场可以消除永磁体的磁场,这也通过颗粒分布得到了体现。此外,重力对颗粒分布有显著影响。

意义

所提出的系统结合了永磁体和电磁铁的优点。因此,减少了对组织造成损伤的感应热,这对于将该装置应用于临床治疗至关重要。

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