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Evaluation of Induced Voltage on Biological Cell Membranes

机译:对生物细胞膜诱导电压的评价

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The application of pulsed electric fields (PEF) to biological cells induces trans-membrane potentials that can give rise to significant biological effects, predominantly electroporation. Recently, the effects of sub-microsecond intense electrical pulses (sm-PEF) on cellular organelles have been reported. In such applications, instantaneous power is high (~MW) but, due to the short pulse duration, energy delivered to cells and tissues is low (~nJ per cell). Electroporation is used mainly for transfections of exogenous materials, but many other interventions are possible, including microbial deactivation, whereas sm-PEF has shown particular promise in medical fields, including oncology. In this paper, the response of cells to PEF and sm-PEF is examined using an equivalent circuit model (ECM) where a network of electrical components is used to represent the cell and its environment. The model is validated through comparison with independent analytical and numerical studies. It is shown that the ECM, which is not computationally demanding, may be usefully adopted to examine how a cell and organelle respond to a wide range of cell parameters and pulse types. It is considered that such mathematical models, which can help to establish a quantitative link between the application of a time-varying electromagnetic pulse and the subsequent cell response, may allow the possible correlation between such responses and microbiological measurements to be investigated. It is anticipated that the development of these modeling approaches will aid in the analysis of those experimental measurements that are presently considered to be unattainable through real stochastic studies
机译:脉冲电场的应用(PEF)到生物细胞诱导跨膜电位可以引起显著生物效应,主要是电穿孔。最近,有报道亚微秒强烈的电脉冲(SM-PEF)对细胞器的影响。在这种应用中,瞬时功率是高(〜MW),但是,由于短脉冲持续时间,递送到细胞和组织中的能量是低(〜毫微每个细胞)。电穿孔主要用于外源性物质转染的,但许多其他干预是可能的,包括微生物去活性,而SM-PEF已经显示出在医疗领域,包括肿瘤特别的前景。在本文中,细胞PEF和SM-PEF的响应是使用其中的电组件的网络用于表示细胞和其环境的等效电路模型(ECM)检测。该模型通过与独立的分析和数值模拟研究比较验证。结果表明,该ECM,这是不计算要求,可有效地采用以检查细胞如何和细胞器响应于宽范围的晶胞参数和脉冲类型。据认为,这样的数学模型,这可以帮助建立随时间变化的电磁脉冲的施加和随后的细胞应答之间的量化的链路,可以允许研究这种反应和微生物测量之间的相关性可能。可以预见的是,这些模型方法的发展将在目前被认为是通过实际随机研究高不可攀的实验测量有助于分析

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