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尖叶蕉作为电穿孔模型。

Musa acuminata as electroporation model.

作者信息

Andrade Daniella L L S, Pintarelli Guilherme B, Rosa Juliana V, Paro Isabela B, Pagano Pedro J T, Silva Julia C N, Suzuki Daniela O H

机构信息

Institute of Biomedical Engineering, Department of Electrical and Electronics Engineering, Federal University of Santa Catarina, Florianópolis, SC, Brazil.

Department of Control and Automation Engineering, Federal University of Santa Catarina, Blumenau, SC, Brazil.

出版信息

Bioelectrochemistry. 2023 Dec;154:108549. doi: 10.1016/j.bioelechem.2023.108549. Epub 2023 Aug 22.

Abstract

Electrochemotherapy (ECT) and Irreversible electroporation (IRE) are cancer treatments based on electric field distribution in tissues. Solanum tuberosum (potato tissue) phantom is known to mimic changes in the electrical conductivity that occur in animal tissues during electroporation (EP). Electric field distribution is assessed through enzymatic staining. However, the 24-h wait for this assessment could slow agile response scenarios. We developed and validated the Musa acuminata (cavendish banana) conductivity model, which quickly evaluates EP by tissue staining. We investigated the frequency response of the tissue using impedance spectroscopy analysis, conductivity changes, and enzymatic staining. We optimized three usual EP models: adapted Gompertz, smoothed Heaviside, and the sigmoid or logistic function. We found dielectric parameters in banana tissue similar to those in potato (electrical conductivity of 0.035 S/m and relative permittivity of 4.1×10). The coefficients of determination R were 99.94% (Gompertz), 99.85% (Heaviside), and 99.58% (sigmoid). The sigmoid and Heaviside functions described the calibration and validation electric currents with 95% confidence. We observed the electroporated areas in bananas 3h30m after EP. Staining was significant after 450 V/cm. The conductivity model of Musa acuminata suits treatment planning, hardware development, and training scenarios. Banana phantom supports the 3Rs practice and is a reliable alternative for potato in EP studies.

摘要

电化学疗法(ECT)和不可逆电穿孔(IRE)是基于组织中电场分布的癌症治疗方法。已知马铃薯(土豆组织)模型可模拟动物组织在电穿孔(EP)过程中发生的电导率变化。通过酶染色评估电场分布。然而,等待24小时进行此评估可能会减缓敏捷响应方案。我们开发并验证了香蕉(卡文迪什香蕉)电导率模型,该模型可通过组织染色快速评估电穿孔。我们使用阻抗谱分析、电导率变化和酶染色研究了组织的频率响应。我们优化了三种常用的电穿孔模型:适配的冈珀茨模型、平滑的海维赛德模型和S形或逻辑函数模型。我们发现香蕉组织中的介电参数与马铃薯中的相似(电导率为0.035 S/m,相对介电常数为4.1×10)。决定系数R分别为99.94%(冈珀茨模型)、99.85%(海维赛德模型)和99.58%(S形模型)。S形模型和海维赛德模型以95%的置信度描述了校准电流和验证电流。电穿孔后3小时30分钟,我们观察到香蕉中的电穿孔区域。在450 V/cm后染色明显。香蕉电导率模型适用于治疗计划、硬件开发和培训场景。香蕉模型支持3R原则,是电穿孔研究中马铃薯的可靠替代品。

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