用于三维磁粒子成像的可集成磁流体热疗系统。

Q1 Pharmacology, Toxicology and Pharmaceutics
Nanotheranostics Pub Date : 2024-02-12 eCollection Date: 2024-01-01 DOI:10.7150/ntno.90360
André Behrends, Huimin Wei, Alexander Neumann, Thomas Friedrich, Anna C Bakenecker, Jochen Franke, Kulthisa Sajjamark, Oliver Buchholz, Sébastien Bär, Ulrich G Hofmann, Matthias Graeser, Thorsten M Buzug
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引用次数: 0

摘要

背景:磁粉成像(MPI)与磁流体热疗(MFH)相结合,能够进行局部热疗和磁粉成像辅助热疗温度测量。这样就可以在体内进行精确的区域选择性加热,而无需进行侵入性干预。在目前的 MPI-MFH 平台中,使用的是独立的系统,需要将物体从一个系统转移到另一个系统。在此,我们介绍了可整合的 MFH 平台的设计、开发和评估过程,该平台将商用 MPI 扫描仪与 MFH 的功能进行了扩展。方法:将磁流体热疗平台集成到磁粉成像系统中的最大问题是设备的磁耦合,这会在成像系统中产生高压,并对其元件造成损害。本文采用启发式算法衍生的自我补偿方法来保护磁粉成像扫描仪。我们对可积分平台的电气和磁特性、冷却能力、磁场强度、与磁粉成像系统主电磁线圈复制品的磁耦合以及粒子加热等方面进行了评估。结果:MFH 平台能产生适合颗粒磁加热的磁场,并与商用磁粉成像扫描仪兼容。与成像系统相结合,可以利用梯度磁场进行选择性加热,并利用 MPI 聚焦磁场进行可转向的加热定位。结论拟议的磁热疗平台可作为一种治疗工具,释放商用磁粉成像扫描仪的磁热疗功能,使其能够用于未来的 MPI 引导、空间选择性磁热疗临床前试验。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Integrable Magnetic Fluid Hyperthermia Systems for 3D Magnetic Particle Imaging.

Background: Combining magnetic particle imaging (MPI) and magnetic fluid hyperthermia (MFH) offers the ability to perform localized hyperthermia and magnetic particle imaging-assisted thermometry of hyperthermia treatment. This allows precise regional selective heating inside the body without invasive interventions. In current MPI-MFH platforms, separate systems are used, which require object transfer from one system to another. Here, we present the design, development and evaluation process for integrable MFH platforms, which extends a commercial MPI scanner with the functionality of MFH. Methods: The biggest issue of integrating magnetic fluid hyperthermia platforms into a magnetic particle imaging system is the magnetic coupling of the devices, which induces high voltage in the imaging system, and is harming its components. In this paper, we use a self-compensation approach derived from heuristic algorithms to protect the magnetic particle imaging scanner. The integrable platforms are evaluated regarding electrical and magnetic characteristics, cooling capability, field strength, the magnetic coupling to a replica of the magnetic particle imaging system's main solenoid and particle heating. Results: The MFH platforms generate suitable magnetic fields for the magnetic heating of particles and are compatible with a commercial magnetic particle imaging scanner. In combination with the imaging system, selective heating with a gradient field and steerable heating positioning using the MPI focus fields are possible. Conclusion: The proposed MFH platforms serve as a therapeutic tool to unlock the MFH functionality of a commercial magnetic particle imaging scanner, enabling its use in future preclinical trials of MPI-guided, spatially selective magnetic hyperthermia therapy.

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来源期刊
Nanotheranostics
Nanotheranostics Pharmacology, Toxicology and Pharmaceutics-Pharmacology, Toxicology and Pharmaceutics (miscellaneous)
CiteScore
10.40
自引率
0.00%
发文量
37
审稿时长
12 weeks
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