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钠离子通道依赖性Navβ4 募集到轴突起始段和Ranvier 结的节点。

Na+ channel-dependent recruitment of Navβ4 to axon initial segments and nodes of Ranvier.

机构信息

Department of Neuroscience, Baylor College of Medicine, Houston, Texas 77030, USA.

出版信息

J Neurosci. 2013 Apr 3;33(14):6191-202. doi: 10.1523/JNEUROSCI.4051-12.2013.

Abstract

The axon initial segment (AIS) and nodes of Ranvier are the sites of action potential initiation and regeneration in axons. Although the basic molecular architectures of AIS and nodes, characterized by dense clusters of Na(+) and K(+) channels, are similar, firing patterns vary among cell types. Neuronal firing patterns are established by the collective activity of voltage-gated ion channels and can be modulated through interaction with auxiliary subunits. Here, we report the neuronal expression pattern and subcellular localization of Navβ4, the modulatory Na(+) channel subunit thought to underlie resurgent Na(+) current. Immunostaining of rat tissues revealed that Navβ4 is strongly enriched at the AIS of a select set of neuron types, including many characterized by high-frequency firing, and at nodes of Ranvier in the PNS and some nodes in the CNS. By introducing full-length and mutant GFP-tagged Navβ4 into cultured neurons, we determined that the AIS and nodal localization of Navβ4 depends on its direct interaction with Na(+) channel α subunits through an extracellular disulfide bond. Based on these results, we propose that differences in the specific composition of the Na(+) channel complexes enriched at the AIS and nodes contribute to the diverse physiologies observed among cell types.

摘要

轴突起始段(AIS)和郎飞氏结是轴突中动作电位起始和再生的部位。尽管 AIS 和节点的基本分子结构相似,其特征是密集的 Na(+) 和 K(+) 通道簇,但放电模式在细胞类型之间存在差异。神经元的放电模式是由电压门控离子通道的集体活动建立的,并可以通过与辅助亚基的相互作用进行调节。在这里,我们报告了神经元表达模式和 Navβ4 的亚细胞定位,Navβ4 是一种被认为是潜在的复发性 Na(+) 电流的调节 Na(+) 通道亚基。对大鼠组织的免疫染色显示,Navβ4 在包括许多以高频放电为特征的特定神经元类型的 AIS 中以及 PNS 的郎飞氏结和 CNS 的一些郎飞氏结中高度富集。通过将全长和突变 GFP 标记的 Navβ4 引入培养的神经元中,我们确定 Navβ4 的 AIS 和节点定位取决于其通过细胞外二硫键与 Na(+) 通道 α 亚基的直接相互作用。基于这些结果,我们提出,在 AIS 和节点处富集的 Na(+) 通道复合物的特定组成的差异导致了细胞类型之间观察到的不同生理学特性。

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