Huang Feiran, Fang Zhihui, Mast Jason, Chen Wei
Cellular and Molecular Biophysics, Department of Physics, University of South Florida, Tampa, Florida 33620, USA.
Bioelectromagnetics. 2013 May;34(4):253-63. doi: 10.1002/bem.21773. Epub 2013 Jan 15.
In this paper, we compared the minimum potential differences in the electroporation of membrane lipid bilayers and the denaturation of membrane proteins in response to an intensive pulsed electric field with various pulse durations. Single skeletal muscle fibers were exposed to a pulsed external electric field. The field-induced changes in the membrane integrity (leakage current) and the Na channel currents were monitored to identify the minimum electric field needed to damage the membrane lipid bilayer and the membrane proteins, respectively. We found that in response to a relatively long pulsed electric shock (longer than the membrane intrinsic time constant), a lower membrane potential was needed to electroporate the cell membrane than for denaturing the membrane proteins, while for a short pulse a higher membrane potential was needed. In other words, phospholipid bilayers are more sensitive to the electric field than the membrane proteins for a long pulsed shock, while for a short pulse the proteins become more vulnerable. We can predict that for a short or ultrashort pulsed electric shock, the minimum membrane potential required to start to denature the protein functions in the cell plasma membrane is lower than that which starts to reduce the membrane integrity.
在本文中,我们比较了膜脂质双层电穿孔以及膜蛋白变性过程中,响应不同脉冲持续时间的强脉冲电场时的最小电位差。将单个骨骼肌纤维暴露于脉冲外部电场中。监测电场诱导的膜完整性变化(泄漏电流)和钠通道电流,以分别确定损伤膜脂质双层和膜蛋白所需的最小电场。我们发现,响应相对较长的脉冲电击(长于膜固有时间常数)时,使细胞膜发生电穿孔所需的膜电位低于使膜蛋白变性所需的膜电位,而对于短脉冲,则需要更高的膜电位。换句话说,对于长脉冲电击,磷脂双层比膜蛋白对电场更敏感,而对于短脉冲,蛋白变得更易受损。我们可以预测,对于短或超短脉冲电击,使细胞质膜中蛋白功能开始变性所需的最小膜电位低于开始降低膜完整性所需的膜电位。