Sweeney Daniel C, Reberšek Matej, Dermol Janja, Rems Lea, Miklavčič Damijan, Davalos Rafael V
Virginia Tech, Department of Biomedical Engineering and Mechanics, 330 Kelly Hall, Blacksburg, USA.
University of Ljubljana, Faculty of Electrical Engineering, Tržaška 25, SI 1000, Ljubljana, Slovenia.
Biochim Biophys Acta. 2016 Nov;1858(11):2689-2698. doi: 10.1016/j.bbamem.2016.06.024. Epub 2016 Jun 29.
High-frequency bipolar electric pulses have been shown to mitigate undesirable muscle contraction during irreversible electroporation (IRE) therapy. Here, we evaluate the potential applicability of such pulses for introducing exogenous molecules into cells, such as in electrochemotherapy (ECT). For this purpose we develop a method for calculating the time course of the effective permeability of an electroporated cell membrane based on real-time imaging of propidium transport into single cells that allows a quantitative comparison between different pulsing schemes. We calculate the effective permeability for several pulsed electric field treatments including trains of 100μs monopolar pulses, conventionally used in IRE and ECT, and pulse trains containing bursts or evenly-spaced 1μs bipolar pulses. We show that shorter bipolar pulses induce lower effective membrane permeability than longer monopolar pulses with equivalent treatment times. This lower efficiency can be attributed to incomplete membrane charging. Nevertheless, bipolar pulses could be used for increasing the uptake of small molecules into cells more symmetrically, but at the expense of higher applied voltages. These data indicate that high-frequency bipolar bursts of electrical pulses may be designed to electroporate cells as effectively as and more homogeneously than conventional monopolar pulses.
高频双极电脉冲已被证明可减轻不可逆电穿孔(IRE)治疗期间不必要的肌肉收缩。在此,我们评估此类脉冲在将外源性分子导入细胞中的潜在适用性,例如在电化学疗法(ECT)中。为此,我们开发了一种基于碘化丙啶转运至单细胞的实时成像来计算电穿孔细胞膜有效渗透率随时间变化的方法,该方法允许对不同脉冲方案进行定量比较。我们计算了几种脉冲电场处理的有效渗透率,包括IRE和ECT中常用的100μs单极脉冲序列,以及包含猝发或等间隔1μs双极脉冲的脉冲序列。我们表明,在等效治疗时间下,较短的双极脉冲比较长的单极脉冲诱导的有效膜渗透率更低。这种较低的效率可归因于膜充电不完全。然而,双极脉冲可用于更对称地增加小分子进入细胞的摄取,但代价是施加更高的电压。这些数据表明,高频双极电脉冲爆发可设计成比传统单极脉冲更有效且更均匀地使细胞电穿孔。