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Action Potential Initiation in Neocortical Inhibitory Interneurons

机译:在新皮层抑制interneurons中的动作电位启动。

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摘要

Action potential (AP) generation in inhibitory interneurons is critical for cortical excitation-inhibition balance and information processing. However, it remains unclear what determines AP initiation in different interneurons. We focused on two predominant interneuron types in neocortex: parvalbumin (PV)- and somatostatin (SST)-expressing neurons. Patch-clamp recording from mouse prefrontal cortical slices showed that axonal but not somatic Na+ channels exhibit different voltage-dependent properties. The minimal activation voltage of axonal channels in SST was substantially higher (∼7 mV) than in PV cells, consistent with differences in AP thresholds. A more mixed distribution of high- and low-threshold channel subtypes at the axon initial segment (AIS) of SST cells may lead to these differences. Surprisingly, NaV1.2 was found accumulated at AIS of SST but not PV cells; reducing NaV1.2-mediated currents in interneurons promoted recurrent network activity. Together, our results reveal the molecular identity of axonal Na+ channels in interneurons and their contribution to AP generation and regulation of network activity.
机译:抑制性中间神经元中动作电位(AP)的产生对于皮层兴奋抑制平衡和信息处理至关重要。但是,尚不清楚是什么决定了不同中间神经元中AP的启动。我们专注于新皮层中两种主要的中间神经元类型:表达小白蛋白(PV)和生长抑素(SST)的神经元。小鼠前额皮质切片的膜片钳记录表明,轴突而非体细胞的Na + 通道表现出不同的电压依赖性。 SST中轴突通道的最小激活电压比PV电池中的轴激通道的最低激活电压高得多(约7 mV),这与AP阈值的差异一致。在SST轴突起始节(AIS)处,高阈值通道亚型和低阈值通道亚型的混合分布可能会导致这些差异。出乎意料的是,发现NaV1.2积累在SST的AIS处,但没有积累在PV电池中。减少中间神经元中NaV1.2介导的电流可促进复发性网络活动。总之,我们的结果揭示了中间神经元中轴突Na + 通道的分子身份,以及它们对AP生成和网络活动调节的贡献。

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