Sadik Mohamed M, Li Jianbo, Shan Jerry W, Shreiber David I, Lin Hao
Department of Mechanical and Aerospace Engineering, Rutgers, The State University of New Jersey, 98 Brett Road, Piscataway, New Jersey 08854, USA.
Phys Rev E Stat Nonlin Soft Matter Phys. 2011 Jun;83(6 Pt 2):066316. doi: 10.1103/PhysRevE.83.066316. Epub 2011 Jun 21.
When subject to applied electric pulses, a lipid membrane exhibits complex responses including electrodeformation and electroporation. In this work, the electrodeformation of giant unilamellar vesicles under strong dc electric fields was investigated. Specifically, the degree of deformation was quantified as a function of the applied field strength and the electrical conductivity ratio of the fluids inside and outside of the vesicles. The vesicles were made from L-α-phosphatidylcholine with diameters ranging from 14 to 30 μm. Experiments were performed with field strengths ranging from 0.9 to 2.0 kV/cm, and intra-to-extra-vesicular conductivity ratios varying between 1.92 and 53.0. With these parametric configurations, the vesicles exhibited prolate elongations along the direction of the electric field. The degree of deformation was, in general, significant. In some cases, the aspect ratio of a deformed vesicle exceeded 10, representing a strong-deformation regime previously not explored. The aspect ratio scaled quadratically with the field strength, and increased asymptotically to a maximum value at high conductivity ratios. Appreciable area and volumetric changes were observed both during and after pulsation, indicating the concurrence of electroporation. A theoretical model is developed to predict these large deformations in the strongly permeabilized limit, and the results are compared with the experimental data. Both agreements and discrepancies are found, and the model limitations and possible extensions are discussed.
当受到外加电脉冲作用时,脂质膜会表现出包括电极化和电穿孔在内的复杂响应。在这项工作中,研究了强直流电场下巨型单层囊泡的电极化现象。具体而言,将变形程度量化为外加场强以及囊泡内外流体电导率比的函数。这些囊泡由直径在14至30μm之间的L-α-磷脂酰胆碱制成。实验在0.9至2.0 kV/cm的场强范围内进行,囊泡内外电导率比在1.92至53.0之间变化。在这些参数配置下,囊泡沿电场方向呈现出长形伸长。总体而言,变形程度较为显著。在某些情况下,变形囊泡的纵横比超过10,代表了一个此前未探索过的强变形状态。纵横比与场强呈二次方比例关系,并在高电导率比时渐近增加至最大值。在脉动期间和之后均观察到明显的面积和体积变化,表明同时发生了电穿孔现象。建立了一个理论模型来预测强渗透极限下的这些大变形,并将结果与实验数据进行比较。发现了相符之处和差异之处,并讨论了模型的局限性和可能的扩展。