Optimal parameters for the efficient microwave ablation of liver tumor from the 3D-IRCADb-01 database.

Acta of bioengineering and biomechanics Pub Date : 2024-04-22 Print Date: 2024-06-01 DOI:10.37190/abb-02406-2024-04
Nikola Bošković, Branislav Radjenovic, Marija Radmilović-Radjenović
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Abstract

Purpose: Microwave ablation is a minimally invasive thermal modality for cancer treatment with high survival and low recurrence rates. Despite the unquestionable benefits of microwave ablation, the interaction between the medical instruments and the tissue may cause damage to the healthy tissue around the tumor. Such damages can be removed by clarifying the conditions for their development. In addition to clinical methods, computer simulations have become very effective tools for optimizing microwave ablation performance. Methods: The study was focused on the determination of the optimal input power for complete microwave tumor ablation with an ade-quate safety margin avoiding injury to the surrounding healthy tissue. In three-dimensional simulations, the liver tumor model was based on a real tumor (1.74 cm × 2.40 cm × 1.43 cm) from the 3D-IRCADb-01 database. Calculations were performed for a 10-slot antenna proven to achieve a higher degree of ablation zone localization than a standard single-slot antenna. The temperature-dependent dielectric and thermal properties of healthy and tumoral liver tissue, blood perfusion, and water content were included in the model. Results: The obtained simulation results revealed that the proper choice of input power ensures that necrotic tissue is mainly located in the tumor with minimal damage to the surrounding healthy tissue. Conclusions: This study may represent a step forward in the planning of individual microwave ablation treatment for each patient.

来自 3D-IRCADb-01 数据库的肝脏肿瘤高效微波消融最佳参数。
目的:微波消融术是一种微创热疗癌症方式,具有高生存率和低复发率的特点。尽管微波消融术的优点毋庸置疑,但医疗器械与组织之间的相互作用可能会对肿瘤周围的健康组织造成损害。要消除这种损害,就必须明确其产生的条件。除临床方法外,计算机模拟已成为优化微波消融性能的有效工具。研究方法研究的重点是确定最佳输入功率,使微波在完全消融肿瘤的同时具有足够的安全余量,避免对周围健康组织造成伤害。在三维模拟中,肝脏肿瘤模型基于 3D-IRCADb-01 数据库中的真实肿瘤(1.74 厘米 × 2.40 厘米 × 1.43 厘米)。计算是针对 10 槽天线进行的,与标准单槽天线相比,这种天线的消融区定位程度更高。模型中还包括健康和肿瘤肝组织随温度变化的介电和热特性、血液灌注和含水量。结果模拟结果表明,输入功率的适当选择可确保坏死组织主要位于肿瘤内,而对周围健康组织的损害最小。结论这项研究为制定针对每位患者的微波消融治疗计划迈出了一步。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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