Krause T L, Magarshak Y, Fishman H M, Bittner G D
Department of Physiology and Biophysics, University of Texas Medical Branch, Galveston 77555-0641, USA.
Biophys J. 1995 Mar;68(3):795-9. doi: 10.1016/S0006-3495(95)80255-9.
For many years, membrane potential (Vm) and input resistance have been used to characterize the electrophysiological nature of a seal (barrier) that forms at the cut end of a transected axon or other extended cytoplasmic structure. Data from a mathematical and an analog model of a transected axon and other theoretical considerations show that steady-state values of Vm and input resistance measured from any cable-like structure provide a very equivocal assessment of the electrical barrier (seal) at the cut end. Extracellular assessments of injury currents almost certainly provide a better electrophysiological measure of the status of plasma membrane sealing because measurements of these currents do not depend on the cable properties of extended cytoplasmic processes after transection.
多年来,膜电位(Vm)和输入电阻一直被用于表征在横断轴突或其他延伸的细胞质结构的切断端形成的密封(屏障)的电生理性质。来自横断轴突的数学模型和模拟模型以及其他理论考量的数据表明,从任何类电缆结构测量得到的Vm和输入电阻的稳态值,对切断端的电阻(密封)的评估非常模糊。几乎可以肯定的是,损伤电流的细胞外评估能提供更好的质膜密封状态的电生理测量,因为这些电流的测量不依赖于横断后延伸的细胞质突起的电缆特性。