Hogenes Annemiek M, Slump Cornelis H, Te Riet O G Scholten Gerben A, Stommel Martijn W J, Fütterer Jurgen J, Verdaasdonk Rudolf M
Department of Medical Imaging, Radboud University Medical Center, P.O. Box 9101 (766), 6500 HB Nijmegen, The Netherlands.
Department of Robotics and Mechatronics, University of Twente, 7522 NB Enschede, The Netherlands.
Cancers (Basel). 2023 Aug 26;15(17):4280. doi: 10.3390/cancers15174280.
Unintentional local temperature effects can occur during irreversible electroporation (IRE) treatment, especially near the electrodes, and most frequently near the tip. Partial electrical insulation of the IRE electrodes could possibly control these temperature effects. This study investigated and visualized the effect of partial electrical insulation applied to the IRE electrodes on the electric field line pattern and temperature gradient. Six designs of (partial) electrical insulation of the electrode tip and/or active needle length (ANL) of the original monopolar 19G IRE electrodes were investigated. A semolina in castor oil model was used to visualize the electric field line pattern in a high-voltage static electric field. An optical method to visualize a change in temperature gradient (color Schlieren) was used to image the temperature development in a polyacrylamide gel. Computational models were used to support the experimental findings. Around the electrode tip, the highest electric field line density and temperature gradient were present. The more insulation was applied to the electrodes, the higher the resistance. Tip and ANL insulation together reduced the active area of and around the electrodes, resulting in a visually enlarged area that showed a change in temperature gradient. Electrically insulating the electrode tip together with an adjustment in IRE parameter settings could potentially reduce the uncontrollable influence of the tip and may improve the predictability of the current pathway development.
在不可逆电穿孔(IRE)治疗过程中可能会出现意外的局部温度效应,尤其是在电极附近,最常见于电极尖端附近。IRE电极的部分电绝缘可能会控制这些温度效应。本研究调查并可视化了应用于IRE电极的部分电绝缘对电场线模式和温度梯度的影响。研究了原始单极19G IRE电极的电极尖端和/或有效针长(ANL)的六种(部分)电绝缘设计。使用蓖麻油中的粗粒模型来可视化高压静电场中的电场线模式。一种用于可视化温度梯度变化的光学方法(彩色纹影法)被用于对聚丙烯酰胺凝胶中的温度变化进行成像。计算模型用于支持实验结果。在电极尖端周围,存在最高的电场线密度和温度梯度。施加到电极上的绝缘越多,电阻越高。尖端和ANL绝缘共同减少了电极及其周围的有效面积,导致视觉上显示温度梯度变化的区域扩大。对电极尖端进行电绝缘并调整IRE参数设置可能会减少尖端的不可控影响,并可能提高当前路径发展的可预测性。