Stephanova D I
Central Laboratory of Biophysics, Bulgarian Academy of Sciences, Sofia.
Biol Cybern. 1989;62(1):83-7. doi: 10.1007/BF00217663.
The membrane excitability changes as well as the underlying mechanisms of these changes in a normal and in a systematically paranodally demyelinated nerve fibre have been investigated by paired stimulation during the first 30 ms of the recovery cycle. The ionic current kinetics determining the observed changes in the action potential parameters are presented also. The simulation of the conduction in the normal fibre is based on the Frankenhaeuser and Huxley (1964) and Goldman and Albus (1968) equations, while in the case of a demyelinated fibre according to the same equations modified by Stephanova (1988a). It has been shown for the demyelinated membrane that increased demyelination increases both the threshold current for the second potential as well as the absolute refractory period. With increasing interpulse interval, the subnormality of the membrane excitability is followed by supernormality in the case of the demyelinated membrane. For the recovery cycle of 30 ms under consideration no supernormality of the normal membrane excitability is obtained. With interpulse interval from 8.8 to 10.9 ms, the highest degree of demyelination (l = 30 microns) is accompanied by a refractory period of transmission. The membrane properties of the normal and demyelinated fibres recover 20 ms after the first pulse. For short interpulse intervals, the amplitude of the second action potential is decreased, and a slower propagation velocity is obtained. The most sensitive phenomenon is the excitability of the demyelinated membrane, which remains unrecovered 30 ms after the first pulses has been applied.
通过在恢复周期的前30毫秒内进行成对刺激,研究了正常和系统性结旁脱髓鞘神经纤维的膜兴奋性变化及其潜在机制。还介绍了决定动作电位参数观察到变化的离子电流动力学。正常纤维传导的模拟基于Frankenhaeuser和Huxley(1964年)以及Goldman和Albus(1968年)的方程,而脱髓鞘纤维的情况则根据Stephanova(1988a)修改后的相同方程。对于脱髓鞘膜,已表明脱髓鞘增加会同时增加第二个电位的阈值电流以及绝对不应期。随着脉冲间隔增加,脱髓鞘膜的膜兴奋性在低于正常水平之后会出现超常期。在所考虑的30毫秒恢复周期内,正常膜兴奋性未出现超常期。当脉冲间隔为8.8至10.9毫秒时,最高程度的脱髓鞘(l = 30微米)伴随着传导的不应期。正常和脱髓鞘纤维的膜特性在第一个脉冲后20毫秒恢复。对于短脉冲间隔,第二个动作电位的幅度减小,并且获得较慢的传播速度。最敏感的现象是脱髓鞘膜的兴奋性,在施加第一个脉冲后30毫秒仍未恢复。