Joshi R P, Hu Q, Schoenbach K H, Beebe S J
Department of Electrical and Computer Engineering, Old Dominion University, Norfolk, Virginia 23529-0246, USA.
Phys Rev E Stat Nonlin Soft Matter Phys. 2004 May;69(5 Pt 1):051901. doi: 10.1103/PhysRevE.69.051901. Epub 2004 May 4.
We provide a simple, but physical analysis for cell irreversibility and apoptosis in response to an ultrashort (nanosecond), high-intensity electric pulse. Our approach is based on an energy landscape model for determining the temporal evolution of the configurational probability function p(q). The primary focus is on obtaining qualitative predictions of a pulse width dependence to apoptotic cell irreversibility that has been observed experimentally. The analysis couples a distributed electrical model for current flow with the Smoluchowski equation to provide self-consistent, time-dependent transmembrane voltages. The model captures the essence of the experimentally observed pulse-width dependence, and provides a possible physical picture that depends only on the electrical trigger. A number of interesting features are predicted.
我们针对超短(纳秒级)、高强度电脉冲作用下细胞的不可逆性和凋亡提供了一种简单但基于物理原理的分析。我们的方法基于一个能量景观模型,用于确定构型概率函数p(q)的时间演化。主要关注点在于获得对凋亡细胞不可逆性的脉冲宽度依赖性的定性预测,这一点已在实验中观察到。该分析将用于电流流动的分布式电学模型与斯莫卢霍夫斯基方程相结合,以提供自洽的、随时间变化的跨膜电压。该模型抓住了实验观察到的脉冲宽度依赖性的本质,并提供了一种仅依赖于电触发的可能物理图景。预测出了许多有趣的特征。