Beebe Stephen J, Fox Paula M, Rec Laura J, Willis E Lauren K, Schoenbach Karl H
Center for Pediatric Research, 855 W. Brambleton Ave., Norfolk, VA 23510, USA.
FASEB J. 2003 Aug;17(11):1493-5. doi: 10.1096/fj.02-0859fje. Epub 2003 Jun 17.
Electroporation by using pulsed electric fields with long durations compared with the charging time of the plasma membrane can induce cell fusion or introduce xenomolecules into cells. Nanosecond pulse power technology generates pulses with high-intensity electric fields, but with such short durations that the charging time of the plasma membrane is not reached, but intracellular membranes are affected. To determine more specifically their effects on cell structure and function, human cells were exposed to high intensity (up to 300 kV/cm) nanosecond (10-300 ns) pulsed electric fields (nsPEF) and were analyzed at the cellular and molecular levels. As the pulse duration decreased, plasma membrane electroporation decreased and appearances of apoptosis markers were delayed. NsPEF induced apoptosis within tens of minutes, depending on the pulse duration. Annexin-V binding, caspase activation, decreased forward light scatter, and cytochrome c release into the cytoplasm were coincident. Apoptosis was caspase- and mitochondria-dependent but independent of plasma membrane electroporation and thermal changes. The results suggest that with decreasing pulse durations, nsPEF modulate cell signaling from the plasma membrane to intracellular structures and functions. NsPEF technology provides a unique, high-power, energy-independent tool to recruit plasma membrane and/or intracellular signaling mechanisms that can delete aberrant cells by apoptosis.
与质膜充电时间相比,使用持续时间长的脉冲电场进行电穿孔可诱导细胞融合或将异种分子引入细胞。纳秒脉冲功率技术产生具有高强度电场的脉冲,但持续时间极短,以至于未达到质膜的充电时间,但会影响细胞内膜。为了更具体地确定它们对细胞结构和功能的影响,将人类细胞暴露于高强度(高达300 kV/cm)的纳秒(10 - 300 ns)脉冲电场(nsPEF)下,并在细胞和分子水平上进行分析。随着脉冲持续时间的缩短,质膜电穿孔减少,凋亡标志物的出现延迟。NsPEF在数十分钟内诱导凋亡,这取决于脉冲持续时间。膜联蛋白-V结合、半胱天冬酶激活、前向光散射减少以及细胞色素c释放到细胞质中是同时发生的。凋亡是半胱天冬酶和线粒体依赖性的,但与质膜电穿孔和热变化无关。结果表明,随着脉冲持续时间的缩短,nsPEF调节从质膜到细胞内结构和功能的细胞信号传导。NsPEF技术提供了一种独特的、高功率、与能量无关的工具,可募集质膜和/或细胞内信号传导机制,通过凋亡消除异常细胞。