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Dynamic finite-element model for efficient modelling of electric currents in electroporated tissue

机译:动态有限元模型可有效模拟电穿孔组织中的电流

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摘要

In silico experiments (numerical simulations) are a valuable tool for non-invasive research of the influences of tissue properties, electrode placement and electric pulse delivery scenarios in the process of electroporation. The work described in this article was aimed at introducing time dependent effects into a finite element model developed specifically for electroporation. Reference measurements were made ex vivo on beef liver samples and experimental data were used both as an initial condition for simulation (applied pulse voltage) and as a reference value for numerical model calibration (measured pulse current). The developed numerical model is able to predict the time evolution of an electric pulse current within a 5% error over a broad range of applied pulse voltages, pulse durations and pulse repetition frequencies. Given the good agreement of the current flowing between the electrodes, we are confident that the results of our numerical model can be used both for detailed in silico research of electroporation mechanisms (giving researchers insight into time domain effects) and better treatment planning algorithms, which predict the outcome of treatment based on both spatial and temporal distributions of applied electric pulses.
机译:计算机模拟实验(数值模拟)是用于非侵入性研究电穿孔过程中组织特性,电极放置和电脉冲传输情况的影响的有价值的工具。本文所述的工作旨在将时间依赖性效应引入专门为电穿孔开发的有限元模型中。在牛肝样品上进行离体参考测量,并将实验数据用作模拟的初始条件(施加的脉冲电压)和数值模型校准的参考值(测得的脉冲电流)。开发的数值模型能够在广泛的施加脉冲电压,脉冲持续时间和脉冲重复频率范围内预测电脉冲电流在5%误差范围内的时间演变。考虑到电极之间电流的良好一致性,我们相信,我们的数值模型的结果可用于电穿孔机理的详细计算机模拟研究(使研究人员了解时域效应)和更好的治疗计划算法,根据所施加电脉冲的时空分布预测治疗结果。

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