Wegner Lars H, Flickinger Bianca, Eing Christian, Berghöfer Thomas, Hohenberger Petra, Frey Wolfgang, Nick Peter
Karlsruhe Institute of Technology, Institute for Pulsed Power and Microwave Technology (IHM), Campus North, 76344 Eggenstein-Leopoldshafen, Germany; Karlsruhe Institute of Technology, Botanical Institute I-Molecular Cell Biology, Campus South, 76131 Karlsruhe, Germany.
Biochim Biophys Acta. 2011 Jun;1808(6):1728-36. doi: 10.1016/j.bbamem.2011.01.016. Epub 2011 Feb 4.
Permeabilization of biological membranes by pulsed electric fields ("electroporation") is frequently used as a tool in biotechnology. However, the electrical properties of cellular membranes at supra-physiological voltages are still a topic of intensive research efforts. Here, the patch clamp technique in the whole cell and the outside out configuration was employed to monitor current-voltage relations of protoplasts derived from the tobacco culture cell line "Bright yellow-2". Cells were exposed to a sequence of voltage pulses including supra-physiological voltages. A transition from a low-conductance (0.1 nS/pF) to a high-conductance state (5 nS/pF) was observed when the membrane was either hyperpolarized or depolarized beyond threshold values of around -250 to -300 mV and +200 to +250 mV, respectively. Current-voltage curves obtained with ramp protocols revealed that the electro-permeabilized membrane was 5-10 times more permeable to K+ than to gluconate. The K+ channel blocker tetraethylammonium (25 mM) did not affect currents elicited by 10 ms-pulses, suggesting that the electro-permeabilization was not caused by a non-physiological activation of K+ channels. Supra-physiological voltage pulses even reduced "regular" K+ channel activity, probably due to an increase of cytosolic Ca2+ that is known to inhibit outward-rectifying K+ channels in Bright yellow-2 cells. Our data are consistent with a reversible formation of aqueous membrane pores at supra-physiological voltages.
脉冲电场使生物膜通透化(“电穿孔”)在生物技术中常被用作一种工具。然而,超生理电压下细胞膜的电学性质仍是深入研究的课题。在此,采用全细胞模式和外向膜片钳技术监测源自烟草培养细胞系“亮黄-2”的原生质体的电流-电压关系。细胞暴露于一系列包括超生理电压的电压脉冲。当膜分别超极化或去极化超过约-250至-300 mV和+200至+250 mV的阈值时,观察到从低电导(0.1 nS/pF)到高电导状态(5 nS/pF)的转变。用斜坡方案获得的电流-电压曲线表明,电通透化的膜对K+的通透性比对葡萄糖酸盐高5至10倍。K+通道阻滞剂四乙铵(25 mM)不影响10 ms脉冲引发的电流,这表明电通透化不是由K+通道的非生理性激活引起的。超生理电压脉冲甚至降低了“正常”的K+通道活性,这可能是由于已知能抑制亮黄-2细胞外向整流K+通道的胞质Ca2+增加所致。我们的数据与超生理电压下形成可逆的水相膜孔一致。