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首页> 外文期刊>IEEE Transactions on Biomedical Engineering >Investigation of Low-Voltage Pulse Parameters on Electroporation and Electrical Lysis Using a Microfluidic Device With Interdigitated Electrodes
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Investigation of Low-Voltage Pulse Parameters on Electroporation and Electrical Lysis Using a Microfluidic Device With Interdigitated Electrodes

机译:使用带有叉指电极的微流控设备对低压脉冲参数进行电穿孔和电裂解的研究

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摘要

Electroporation (EP) of biological cells leads to the exchange of materials through the permeabilized cell membrane, while electrical lysis (EL) irreversibly disrupts the cell membrane. We report a microfluidic device to study these two phenomena with low-voltage excitation for lab-on-a-chip (LOC) applications. For systematic study of EP, we have employed a quantification metric: flow Index (FI) of EP. Simulation and experimental results with the microfluidic device containing interdigitated, coplanar, integrated electrodes to electroporate, and rapidly lyse biological cells are presented. H&E stained human buccal cells were subjected to various pulse magnitudes, pulsewidths, and number of pulses. Simulations show that an electric field of 25 kV/cm with a 20 V applied potential produced 1.3 $^{circ }$C temperature rise for a 5 s of excitation. For a 20 V pulse-excitation with pulse-widths between 0.5 to 5 s, EL was observed, whereas for lower excitations, only EP was observed. FI of EP is found to be a direct function of pulse magnitudes, pulsewidths, and numbers of pulses. To release DNA from nucleus, excitation-pulses of 5 s were required. Quantification of EP would be useful for systematic study of EP toward optimization with various excitation pulses, while low-voltage requirement and high yield of EP and EL are critical to develop LOC for drug delivery and cell-sample preparation, respectively.
机译:生物细胞的电穿孔(EP)导致通过透化细胞膜的物质交换,而电裂解(EL)不可逆地破坏细胞膜。我们报告了一种微流控设备,用于在芯片实验室(LOC)应用中利用低压激励研究这两种现象。对于EP的系统研究,我们采用了一种量化指标:EP的流动指数(FI)。提出了使用微流体装置的模拟和实验结果,该装置包含相互交叉的,共面的,集成的电极以电穿孔并快速裂解生物细胞。 H&E染色的人颊细胞受到各种脉冲幅度,脉冲宽度和脉冲数的影响。模拟表明,在施加5 V激励的情况下,施加20 V电压的25 kV / cm电场会产生1.3°C的温度上升。对于脉冲宽度在0.5至5 s之间的20 V脉冲激励,观察到EL,而对于较低激励,仅观察到EP。发现EP的FI是脉冲幅度,脉冲宽度和脉冲数的直接函数。为了从细胞核中释放DNA,需要5 s的激发脉冲。 EP的定量将有助于系统研究EP,以优化各种激发脉冲,而EP和EL的低电压要求和高产率对于分别开发用于药物递送和细胞样品制备的LOC至关重要。

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