Activity-Dependent Axonal Plasticity: The Effects of Electrical Stimulation on Compound Action Potentials Recorded from the Mouse Nervous System In Vitro

Z. Ahmed, A. Wieraszko
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引用次数: 6

Abstract

The influence of electrical stimulation on the amplitude of the action potentials recorded from the mouse nerv- ous system in vitro was investigated. Brief (1 s) high frequency (100 Hz) stimulation of the sciatic nerve induced a long- lasting increase in the amplitude of the compound action potential (CAP). Low frequency (1 Hz) stimulation delivered for 15 min attenuated the antidromically evoked potential recorded from hippocampal slices and CAP recorded from the sci- atic nerve. The stimulation-induced decrease in the amplitude of CAP occurred in two phases. While during the first phase the decrease was reversible and calcium-dependent, the second, later phase was irreversible. The experiments with two stimulating electrodes activated separately revealed that the changes in the CAP amplitude were not related to unspecific electrode-tissue interactions. The attenuation in the CAP amplitude was accompanied by an increase and decrease of minimal and maximal thresholds, respectively. The stimulation of the sciatic nerve segments with twin pulses revealed that the velocity of CAP propagation and refractoriness were significantly diminished after LFS application. The stimula- tion-induced changes in CAP were correlated with decreased sodium channels antibody signal, indicating fall in the num- ber of sodium channels. According to postulated hypothesis, the stimulation-induced influx of Na + during the first phase intensifies internalization of sodium channels. This amplified endocytosis is accompanied by activation of lysosomal pathways and subsequent hydrolysis of sodium channels leading to irreversible decline in the CAP amplitude. Described results indicate, that axons can contribute to neuronal plasticity.
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活动依赖性轴突可塑性:电刺激对小鼠体外神经系统复合动作电位的影响
研究了电刺激对离体小鼠神经系统动作电位振幅的影响。短暂(1秒)的高频率(100赫兹)刺激坐骨神经诱导复合动作电位(CAP)振幅的持续增加。低频(1hz)刺激15分钟后,海马切片和脊髓神经CAP记录的反生理诱发电位有所减弱。刺激引起的CAP振幅下降分两个阶段。而在第一阶段,减少是可逆的和钙依赖,第二,后期阶段是不可逆的。分别激活两个刺激电极的实验表明,CAP振幅的变化与非特异性电极-组织相互作用无关。CAP振幅的衰减分别伴随着最小阈值和最大阈值的增加和减少。双脉冲刺激坐骨神经节段发现LFS应用后CAP的传播速度和耐火度明显降低。刺激诱导的CAP变化与钠通道抗体信号减少有关,表明钠通道数量减少。根据假设,第一阶段刺激诱导的Na +内流强化了钠离子通道的内化。这种放大的内吞作用伴随着溶酶体途径的激活和随后的钠通道的水解,导致CAP振幅的不可逆下降。所描述的结果表明,轴突可以促进神经元的可塑性。
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