首页> 美国卫生研究院文献>International Journal of Molecular Sciences >In Silico Study on Tumor-Size-Dependent Thermal Profiles inside an Anthropomorphic Female Breast Phantom Subjected to Multi-Dipole Antenna Array
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In Silico Study on Tumor-Size-Dependent Thermal Profiles inside an Anthropomorphic Female Breast Phantom Subjected to Multi-Dipole Antenna Array

机译:在对多偶极天线阵列进行的拟肢女性乳房幻影内肿瘤大小依赖热谱的研究

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摘要

Electromagnetic hyperthermia as a potent adjuvant for conventional cancer therapies can be considered valuable in modern oncology, as its task is to thermally destroy cancer cells exposed to high-frequency electromagnetic fields. Hyperthermia treatment planning based on computer in silico simulations has the potential to improve the localized heating of breast tissues through the use of the phased-array dipole applicators. Herein, we intended to improve our understanding of temperature estimation in an anatomically accurate female breast phantom embedded with a tumor, particularly when it is exposed to an eight-element dipole antenna matrix surrounding the breast tissues. The Maxwell equations coupled with the modified Pennes’ bioheat equation was solved in the modelled breast tissues using the finite-difference time-domain (FDTD) engine. The microwave (MW) applicators around the object were modelled with shortened half-wavelength dipole antennas operating at the same 1 GHz frequency, but with different input power and phases for the dipole sources. The total input power of an eight-dipole antenna matrix was set at 8 W so that the temperature in the breast tumor did not exceed 42 °C. Finding the optimal setting for each dipole antenna from the matrix was our primary objective. Such a procedure should form the basis of any successful hyperthermia treatment planning. We applied the algorithm of multi for multi-objective optimization for the power and phases for the dipole sources in terms of maximizing the specific absorption rate (SAR) parameter inside the breast tumor while minimizing this parameter in the healthy tissues. Electro-thermal simulations were performed for tumors of different radii to confirm the reliable operation of the given optimization procedure. In the next step, thermal profiles for tumors of various sizes were calculated for the optimal parameters of dipole sources. The computed results showed that larger tumors heated better than smaller tumors; however, the procedure worked well regardless of the tumor size. This verifies the effectiveness of the applied optimization method, regardless of the various stages of breast tumor development.
机译:作为常规癌症疗法的有效佐剂的电磁热疗可以在现代肿瘤学中认为是有价值的,因为其任务是热破坏暴露于高频电磁场的癌细胞。基于计算机的高温治疗计划在Silico模拟中具有潜力通过使用相位阵列偶极涂布器来改善乳房组织的局部加热。在此,我们旨在改善我们对嵌入肿瘤的解剖学准确的雌性乳房幻影中对温度估计的理解,特别是当它暴露于乳腺组织周围的八元偶极天线基质时。使用有限差分时域(FDTD)发动机在建模的乳房组织中求解与改性的Pennes的生物组织中耦合的麦克斯韦方程。物体周围的微波(MW)涂抹器用缩短的半波长偶极天线以相同的1 GHz频率操作,但具有不同的输入功率和偶极源的阶段。八偶极天线矩阵的总输入功率设定为8W,使乳腺肿瘤中的温度不超过42℃。从矩阵找到每个偶极天线的最佳设置是我们的主要目标。这种程序应构成任何成功的热疗治疗计划的基础。我们在最大限度地提高了乳腺肿瘤内的特定吸收率(SAR)参数的同时在健康组织中最小化该参数,将多目标优化的多目标优化算法应用于偶极子源的功率和阶段。对不同半径的肿瘤进行电热模拟,以确认给定优化程序的可靠操作。在下一步中,计算用于偶极源的最佳参数的各种尺寸的肿瘤的热谱。计算结果表明,较大的肿瘤比较小的肿瘤更好;然而,无论肿瘤大小如何,该程序都良好工作。这验证了应用优化方法的有效性,无论乳腺肿瘤发育的各个阶段如何。

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