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小鼠黑色素瘤热疗的数值模拟

Numerical Simulation of Thermal Therapy for Melanoma in Mice.

作者信息

Zhang Yunfei, Lu Mai

机构信息

Key Laboratory of Opto-Electronic Technology and Intelligent Control of Ministry of Education, Lanzhou Jiaotong University, Lanzhou 730070, China.

出版信息

Bioengineering (Basel). 2024 Jul 9;11(7):694. doi: 10.3390/bioengineering11070694.

Abstract

In recent years, the progressively escalating incidence and exceptionally high fatality rate of cutaneous melanoma have drawn the attention of numerous scholars. Magnetic induction hyperthermia, as an efficacious tumor treatment modality, has been promoted and applied in the therapy of some tumors. In this paper, the melanoma atop the mice's heads was chosen as the research subject, and a magnetic induction hyperthermia approach based on Helmholtz coils as the magnetic field excitation was investigated and designed. The influence of the electromagnetic field and thermal field on organisms was addressed through modeling by COMSOL simulation software. The results showed that the maximum values of induced electric field and magnetic induction strength in mouse tumor tissues were 63.1 V/m and 8.5621 mT, respectively, which reached the threshold value of magnetic field strength required for magnetic induction hyperthermia. The maxima of the induced electric field and magnetic induction intensity in brain tissues are, respectively, 35.828 V/m and 8.57 mT. Approximately 93% of the tumor tissue can reach 42 °C, and the maximum temperature is 44.2 °C. Within this temperature range, a large quantity of tumor cells can be successfully induced to undergo apoptosis without harming normal cells, and the therapeutic effect is favorable.

摘要

近年来,皮肤黑色素瘤的发病率逐渐上升且死亡率极高,引起了众多学者的关注。磁感应热疗作为一种有效的肿瘤治疗方式,已在某些肿瘤的治疗中得到推广和应用。本文选取小鼠头部的黑色素瘤作为研究对象,研究并设计了一种基于亥姆霍兹线圈作为磁场激励的磁感应热疗方法。通过COMSOL模拟软件进行建模,探讨了电磁场和热场对生物体的影响。结果表明,小鼠肿瘤组织中感应电场和磁感应强度的最大值分别为63.1 V/m和8.5621 mT,达到了磁感应热疗所需的磁场强度阈值。脑组织中感应电场和磁感应强度的最大值分别为35.828 V/m和8.57 mT。约93%的肿瘤组织温度可达到42℃,最高温度为44.2℃。在此温度范围内,大量肿瘤细胞可成功诱导凋亡,且不损伤正常细胞,治疗效果良好。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5f0b/11273475/db99a8d42001/bioengineering-11-00694-g001.jpg

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