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用于中空器官肿瘤热疗的混合支架的纳米磁驱动

Nanomagnetic Actuation of Hybrid Stents for Hyperthermia Treatment of Hollow Organ Tumors.

作者信息

Mues Benedikt, Bauer Benedict, Roeth Anjali A, Ortega Jeanette, Buhl Eva Miriam, Radon Patricia, Wiekhorst Frank, Gries Thomas, Schmitz-Rode Thomas, Slabu Ioana

机构信息

Institute of Applied Medical Engineering, Helmholtz Institute, Medical Faculty, RWTH Aachen University, Pauwelsstraße 20, 52074 Aachen, Germany.

Institut für Textiltechnik, RWTH Aachen University, Otto-Blumenthal-Straße 1, 52074 Aachen, Germany.

出版信息

Nanomaterials (Basel). 2021 Mar 2;11(3):618. doi: 10.3390/nano11030618.

Abstract

This paper describes a magnetic nanotechnology that locally enables hyperthermia treatment of hollow organ tumors by using polymer hybrid stents with incorporated magnetic nanoparticles (MNP). The hybrid stents are implanted and activated in an alternating magnetic field to generate therapeutically effective heat, thereby destroying the tumor. Here, we demonstrate the feasibility of nanomagnetic actuation of three prototype hybrid stents for hyperthermia treatment of hollow organ tumors. The results show that the heating efficiency of stent filaments increases with frequency from approximately 60 W/g (95 kHz) to approximately 250 W/g (270 kHz). The same trend is observed for the variation of magnetic field amplitude; however, heating efficiency saturates at approximately 30 kA/m. MNP immobilization strongly influences heating efficiency showing a relative difference in heating output of up to 60% compared to that of freely dispersed MNP. The stents showed uniformly distributed heat on their surface reaching therapeutically effective temperatures of 43 °C and were tested in an explanted pig bile duct for their biological safety. Nanomagnetic actuation of hybrid stents opens new possibilities in cancer treatment of hollow organ tumors.

摘要

本文介绍了一种磁性纳米技术,该技术通过使用含有磁性纳米颗粒(MNP)的聚合物混合支架,在局部实现中空器官肿瘤的热疗。将混合支架植入并在交变磁场中激活以产生治疗有效的热量,从而破坏肿瘤。在此,我们展示了三种用于中空器官肿瘤热疗的原型混合支架的纳米磁驱动可行性。结果表明,支架细丝的加热效率随频率从约60W/g(95kHz)增加到约250W/g(270kHz)。磁场幅度变化也观察到相同趋势;然而,加热效率在约30kA/m时达到饱和。MNP的固定化对加热效率有强烈影响,与自由分散的MNP相比,加热输出的相对差异高达60%。支架表面显示出均匀分布的热量,达到43°C的治疗有效温度,并在离体猪胆管中测试了其生物安全性。混合支架的纳米磁驱动为中空器官肿瘤的癌症治疗开辟了新的可能性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/41df/7999083/715a1c414b9b/nanomaterials-11-00618-g001.jpg

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