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生理变化可能在可逆电穿孔过程中主导肝脏的电学特性:测量和建模。

Physiological changes may dominate the electrical properties of liver during reversible electroporation: Measurements and modelling.

机构信息

Université Paris-Saclay, Institut Gustave Roussy, CNRS, Metabolic and Systemic Aspects of Oncogenesis (METSY), 94805 Villejuif, France; Department of Information and Communication Technologies, Universitat Pompeu Fabra, Barcelona, Spain.

EIGSI La Rochelle, La Rochelle Cedex F-17041, France; Team MONC, INRIA, CNRS UMR 5251, Bordeaux INP, Talence Cedex F-33405, France.

出版信息

Bioelectrochemistry. 2020 Dec;136:107627. doi: 10.1016/j.bioelechem.2020.107627. Epub 2020 Aug 1.

DOI:10.1016/j.bioelechem.2020.107627
PMID:32784102
Abstract

This study presents electrical measurements (both conductivity during the pulses and impedance spectroscopy before and after) performed in liver tissue of mice during electroporation with classical electrochemotherapy conditions (8 pulses of 100 µs duration). A four-needle electrode arrangement inserted in the tissue was used for the measurements. The undesirable effects of the four-electrode geometry, notably concerning its sensitivity, were quantified and discussed showing how the electrode geometry chosen for the measurements can impact the results. Numerical modelling was applied to the information collected during the pulse, and to the impedance spectra acquired before and after the pulses sequence. Our results show that the numerical results were not consistent, suggesting that other collateral phenomena not considered in the model are at work during electroporation in vivo. We show how the modification in the volume of the intra and extra cellular media, likely caused by the vascular lock effect, could at least partially explain the recorded impedance evolution. In the present study we demonstrate the significant impact that physiological effects have on impedance changes following electroporation at the tissue scale and the potential need of introducing them into the numerical models. The code for the numerical model is publicly available at https://gitlab.inria.fr/poignard/4-electrode-system.

摘要

本研究对电穿孔过程中鼠肝组织进行了电测量(脉冲期间的电导率和脉冲前后的阻抗谱),采用经典电化学疗法条件(8 个 100µs 脉冲)。四针电极排列插入组织进行测量。定量和讨论了四电极几何形状的不良影响,特别是其灵敏度,表明用于测量的电极几何形状如何影响结果。数值模型应用于脉冲期间收集的信息以及脉冲序列前后获取的阻抗谱。我们的结果表明,数值结果不一致,表明在体内电穿孔过程中,模型中未考虑的其他附带现象在起作用。我们展示了细胞内和细胞外介质体积的变化(可能由血管锁定效应引起)如何至少部分解释记录的阻抗演变。在本研究中,我们证明了生理效应在组织尺度上电穿孔后阻抗变化的显著影响,以及在数值模型中引入它们的潜在需求。数值模型的代码可在 https://gitlab.inria.fr/poignard/4-electrode-system 上获得。

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