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持续钠电流调节 CA1 锥体神经元的轴突兴奋性。

Persistent sodium current modulates axonal excitability in CA1 pyramidal neurons.

机构信息

Department of Neurophysiology, Institute of Physiology and Pathophysiology, Heidelberg University, Heidelberg, Germany.

出版信息

J Neurochem. 2018 Aug;146(4):446-458. doi: 10.1111/jnc.14479. Epub 2018 Aug 1.

DOI:10.1111/jnc.14479
PMID:29863287
Abstract

Axonal excitability is an important determinant for the accuracy, direction, and velocity of neuronal signaling. The mechanisms underlying spike generation in the axonal initial segment and transmitter release from presynaptic terminals have been intensely studied and revealed a role for several specific ionic conductances, including the persistent sodium current (I ). Recent evidence indicates that action potentials can also be generated at remote locations along the axonal fiber, giving rise to ectopic action potentials during physiological states (e.g., fast network oscillations) or in pathological situations (e.g., following demyelination). Here, we investigated how ectopic axonal excitability of mouse hippocampal CA1 pyramidal neurons is regulated by I . Recordings of field potentials and intracellular voltage in brain slices revealed that electrically evoked antidromic spikes were readily suppressed by two different blockers of I , riluzole and phenytoin. The effect was mediated by a reduction of the probability of ectopic spike generation while latency was unaffected. Interestingly, the contribution of I to excitability was much more pronounced in axonal branches heading toward the entorhinal cortex compared with the opposite fiber direction toward fimbria. Thus, excitability of distal CA1 pyramidal cell axons is affected by persistent sodium currents in a direction-selective manner. This mechanism may be of importance for ectopic spike generation in oscillating network states as well as in pathological situations.

摘要

轴突兴奋性是神经元信号传递准确性、方向和速度的重要决定因素。轴突起始段的锋电位产生和突触前末梢递质释放的机制已经得到了深入研究,揭示了几种特定离子电导的作用,包括持续钠电流(I)。最近的证据表明,动作电位也可以在轴突纤维的远程位置产生,导致在生理状态(例如快速网络振荡)或病理情况下(例如脱髓鞘后)产生异位动作电位。在这里,我们研究了 I 如何调节小鼠海马 CA1 锥体神经元的异位轴突兴奋性。脑片的场电位和细胞内电压记录显示,电诱发的逆行锋电位很容易被两种 I 的阻断剂利鲁唑和苯妥英抑制。这种作用是通过降低异位锋电位产生的概率而潜伏期不受影响来介导的。有趣的是,与相反的纤维方向朝向穹窿相比,I 对兴奋性的贡献在朝向内侧膝状体的轴突分支中更为明显。因此,持续钠电流以定向选择的方式影响远端 CA1 锥体神经元轴突的兴奋性。这种机制对于在振荡网络状态和病理情况下产生异位锋电位可能很重要。

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