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体细胞膜电位和 Kv1 通道控制皮质轴突侧支和突触前末梢的尖峰复极化。

Somatic membrane potential and Kv1 channels control spike repolarization in cortical axon collaterals and presynaptic boutons.

机构信息

Department of Neurobiology, Kavli Institute for Neuroscience, Yale University School of Medicine, New Haven, Connecticut 06510, USA.

出版信息

J Neurosci. 2011 Oct 26;31(43):15490-8. doi: 10.1523/JNEUROSCI.2752-11.2011.

Abstract

The shape of action potentials invading presynaptic terminals, which can vary significantly from spike waveforms recorded at the soma, may critically influence the probability of synaptic neurotransmitter release. Revealing the conductances that determine spike shape in presynaptic boutons is important for understanding how changes in the electrochemical context in which a spike is generated, such as subthreshold depolarization spreading from the soma, can modulate synaptic strength. Utilizing recent improvements in the signal-to-noise ratio of voltage-sensitive dye imaging in mouse brain slices, we demonstrate that intracortical axon collaterals and en passant presynaptic terminals of layer 5 pyramidal cells exhibit a high density of Kv1 subunit-containing ion channels, which generate a slowly inactivating K(+) current critically important for spike repolarization in these compartments. Blockade of the current by low doses of 4-aminopyridine or α-dendrotoxin dramatically slows the falling phase of action potentials in axon collaterals and presynaptic boutons. Furthermore, subthreshold depolarization of the soma broadened action potentials in collaterals bearing presynaptic boutons, an effect abolished by blocking Kv1 channels with α-dendrotoxin. These results indicate that action potential-induced synaptic transmission may operate through a mix of analog-digital transmission owing to the properties of Kv1 channels in axon collaterals and presynaptic boutons.

摘要

入侵突触前末梢的动作电位的形状可能与从胞体记录的尖峰波形有很大的不同,这可能会严重影响突触神经递质释放的概率。揭示决定突触前末梢尖峰形状的电导率对于理解电化学环境的变化如何调节突触强度非常重要,例如从胞体传播的亚阈去极化。利用最近在小鼠脑片上电压敏感染料成像的信噪比提高,我们证明了皮质内轴突侧支和第 5 层锥体神经元的沿途突触前末梢含有大量 Kv1 亚基的离子通道,这些通道产生一种缓慢失活的 K(+)电流,对这些区域中的尖峰复极化至关重要。低剂量的 4-氨基吡啶或α-蝎毒素阻断该电流可显著减慢轴突侧支和突触前末梢中的动作电位的下降相。此外,胞体的亚阈去极化扩宽了带有突触前末梢的侧支中的动作电位,这种作用被α-蝎毒素阻断 Kv1 通道所消除。这些结果表明,动作电位诱导的突触传递可能通过轴突侧支和突触前末梢中 Kv1 通道的特性而通过模拟-数字传输的混合方式进行。

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