论文标题

脉冲宽度对单极和双极脉冲电场中温度囊泡动力学的影响

Effect of pulse width on the dynamics of a deflated vesicle in unipolar and bipolar pulsed electric fields

论文作者

Das, Sudip, Jaeger, Marc, Leonetti, Marc, Thaokar, Rochish M., Chen, Paul G.

论文摘要

受到脉冲直流(脉冲-DC)磁场的巨型单层囊泡是研究细胞电穿孔的有希望的仿生系统。在强的电场中,囊泡发生显着的变形,从而强烈改变了跨膜电位,因此是电穿孔的。先前的理论研究调查了DC场中囊泡的电去(未脉冲)。在这项工作中,我们在计算过程中研究了单极,双极和两步单极脉冲下的温囊泡的变形,并显示中间形状对脉冲类型和脉冲宽度的敏感依赖性。从缩放囊泡的无应力初始形状开始,该囊泡类似于岩体球体,对相对于外流体培养基具有较高和较低电导率的较高和较低电导率的病例进行了分析。对于内部流体电导率的比率,$σ_\ mathrm {r} $ = 10,形状始终保持倾斜度,包括关闭字段时。对于$σ_\ mathrm {r} = 0.1 $,观察到几个复杂的动力学,例如倾斜到圆锥形的(PO),pr酸到圆锥形到叠层对构酸(POP)形状(POP)形状过渡,这取决于场的强度和脉冲特性。在这种情况下,在关闭田野时,可以看到亚稳态的平衡形状,这似乎是导致popo跃迁的温度囊泡的特征。当应用两步的单极脉冲(结合强和弱子脉冲)时,囊泡可以根据两个子螺栓的相对持续时间达到扁平或扁平的最终形状。

Giant unilamellar vesicles subjected to pulsed direct-current (pulsed-DC) fields are promising biomimetic systems to investigate the electroporation of cells. In strong electric fields, vesicles undergo significant deformation, which strongly alters the transmembrane potential, consequently the electroporation. Previous theoretical studies investigated the electrodeformation of vesicles in DC fields (which are not pulsed). In this work, we computationally investigate the deformation of a deflated vesicle under unipolar, bipolar, and two-step unipolar pulses and show sensitive dependence of intermediate shapes on type of pulse and the pulse width. Starting with the stress-free initial shape of a deflated vesicle, which is similar to a prolate spheroid, the analysis is presented for the cases with higher and lower conductivities of the inner fluid medium relative to the outer fluid medium. For the ratio of inner to outer fluid conductivity, $σ_\mathrm{r}$ = 10, the shape always remains prolate, including when the field is turned off. For $σ_\mathrm{r} = 0.1$, several complex dynamics are observed, such as the prolate-to-oblate (PO), prolate-to-oblate-to-prolate (POP) shape transitions in time depending upon the strength of the field and the pulse properties. In this case, on turning off the field, a metastable oblate equilibrium shape is seen, that seems to be a characteristics of a deflated vesicle leading to POPO transitions. When a two-step unipolar pulse (a combination of a strong and a weak subpulse) is applied, a vesicle can reach an oblate or a prolate final shape depending upon the relative durations of the two subpulses.

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