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Mitigation of eddy current heating during magnetic nanoparticle hyperthermia therapy.

作者信息

Stigliano Robert V, Shubitidze Fridon, Petryk James D, Shoshiashvili Levan, Petryk Alicia A, Hoopes P Jack

机构信息

a Thayer School of Engineering at Dartmouth College , Hanover , New Hampshire ;

b Geisel School of Medicine at Dartmouth College , Hanover , New Hampshire ;

出版信息

Int J Hyperthermia. 2016 Nov;32(7):735-48. doi: 10.1080/02656736.2016.1195018. Epub 2016 Jul 20.


DOI:10.1080/02656736.2016.1195018
PMID:27436449
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5095930/
Abstract

BACKGROUND: Magnetic nanoparticle hyperthermia therapy is a promising technology for cancer treatment, involving delivering magnetic nanoparticles (MNPs) into tumours then activating them using an alternating magnetic field (AMF). The system produces not only a magnetic field, but also an electric field which penetrates normal tissue and induces eddy currents, resulting in unwanted heating of normal tissues. Magnitude of the eddy current depends, in part, on the AMF source and the size of the tissue exposed to the field. The majority of in vivo MNP hyperthermia therapy studies have been performed in small animals, which, due to the spatial distribution of the AMF relative to the size of the animals, do not reveal the potential toxicity of eddy current heating in larger tissues. This has posed a non-trivial challenge for researchers attempting to scale up to clinically relevant volumes of tissue. There is a relative dearth of studies focused on decreasing the maximum temperature resulting from eddy current heating to increase therapeutic ratio. METHODS: This paper presents two simple, clinically applicable techniques for decreasing maximum temperature induced by eddy currents. Computational and experimental results are presented to understand the underlying physics of eddy currents induced in conducting, biological tissues and leverage these insights to mitigate eddy current heating during MNP hyperthermia therapy. RESULTS: Phantom studies show that the displacement and motion techniques reduce maximum temperature due to eddy currents by 74% and 19% in simulation, and by 77% and 33% experimentally. CONCLUSION: Further study is required to optimise these methods for particular scenarios; however, these results suggest larger volumes of tissue could be treated, and/or higher field strengths and frequencies could be used to attain increased MNP heating when these eddy current mitigation techniques are employed.

摘要

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本文引用的文献

[1]
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