Department of Robotics and Mechatronics, The Faculty of Electrical Engineering, Mathematics and Computer Science, Technical Medical Centre, University of Twente, 7522 NB, Enschede, The Netherlands.
Department of Medical Imaging, Radboud University Medical Center Nijmegen, Geert Grooteplein Zuid 10, 6525 GA, Nijmegen, The Netherlands.
Int J Comput Assist Radiol Surg. 2021 Aug;16(8):1325-1334. doi: 10.1007/s11548-021-02403-3. Epub 2021 May 25.
Irreversible electroporation (IRE) is an emerging technique that has drawn attention in the field of cancer treatment. IRE uses non-thermal electric pulses to induce death of cancerous cells. However, recent studies have shown that the application of this technique may result in heating of the tissue. There is still room for improving its efficiency and defining better treatment protocols. This study investigates the optimal IRE protocols that avoiding the thermal damage during the IRE treatment.
Electrode and pulse parameter are investigated. Finite element models are created to evaluate the ablation area and the temperature changes in the tissue. The model is validated experimentally in bovine liver tissue, while the parameters were optimized using response surface method (RSM).
From analysis of variance, the parameter of electrode distance and input voltage has significant effect to the temperature rise in the IRE treatment of bovine liver (P = 0.020 and P = 0.003 respectively). Meanwhile, only the input voltage significantly affects the ablation area (P < 0.001). The optimal result from RSM showed that for maximum ablation area 250.82mm with no thermal damage, the IRE protocol consisted of an active electrode length of 10 mm, a distance between electrodes of 10 mm, and the delivery of 50 pulses of 41.21 µs and 3000 V.
The approach presented in this study allows the optimization of the IRE protocols. An optimal IRE protocol that maximizes the ablation area was successfully calculated which can be applied with no risk of thermal damage to the tissue.
不可逆电穿孔(IRE)是一种新兴技术,在癌症治疗领域引起了关注。IRE 利用非热电场脉冲诱导癌细胞死亡。然而,最近的研究表明,该技术的应用可能导致组织加热。提高其效率和确定更好的治疗方案仍有空间。本研究旨在探讨避免 IRE 治疗过程中热损伤的最佳 IRE 方案。
研究了电极和脉冲参数。创建有限元模型以评估消融区域和组织温度变化。该模型在牛肝组织中进行了实验验证,同时使用响应面法(RSM)对参数进行了优化。
方差分析表明,电极距离和输入电压这两个参数对牛肝IRE 治疗中的温升有显著影响(P=0.020 和 P=0.003)。同时,只有输入电压对消融区域有显著影响(P<0.001)。RSM 的最佳结果表明,为了获得最大的无热损伤消融面积 250.82mm,IRE 方案由 10mm 长的主动电极、10mm 电极间距以及 50 个 41.21µs 和 3000V 的脉冲组成。
本研究提出的方法允许优化 IRE 方案。成功计算出了最大消融面积的最佳 IRE 方案,该方案可应用于组织无热损伤风险。