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首页> 外文期刊>The Journal of Physiology >Resurgent sodium current promotes action potential firing in the avian auditory brainstem
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Resurgent sodium current promotes action potential firing in the avian auditory brainstem

机译:复苏钠电流促进禽耳脑干中的动作潜力

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Key points Auditory brainstem neurons of all vertebrates fire phase‐locked action potentials (APs) at high rates with remarkable fidelity, a process controlled by specialized anatomical and biophysical properties. This is especially true in the avian nucleus magnocellularis (NM) – the analogue of the mammalian anteroventral cochlear nucleus. In addition to high voltage‐activated potassium (K HVA ) channels, we report, using whole cell physiology and modelling, that resurgent sodium current ( I NaR ) of sodium channels (Na V ) is equally important and operates synergistically with K HVA channels to enable rapid AP firing in NM. Anatomically, we detected strong Na V 1.6 expression near hearing maturation, which was less distinct during hearing development despite functional evidence of I NaR , suggesting that multiple Na V channel subtypes may contribute to I NaR . We conclude that I NaR plays an important role in regulating rapid AP firing for NM neurons, a property that may be evolutionarily conserved for functions related to similar avian and mammalian hearing. Abstract Auditory brainstem neurons are functionally primed to fire action potentials (APs) at markedly high rates in order to rapidly encode the acoustic information of sound. This specialization is critical for survival and the comprehension of behaviourally relevant communication functions, including sound localization and distinguishing speech from noise. Here, we investigated underlying ion channel mechanisms essential for high‐rate AP firing in neurons of the chicken nucleus magnocellularis (NM) – the avian analogue of bushy cells of the mammalian anteroventral cochlear nucleus. In addition to the established function of high voltage‐activated potassium channels, we found that resurgent sodium current ( I NaR ) plays a role in regulating rapid firing activity of late‐developing (embryonic (E) days 19–21) NM neurons. I NaR of late‐developing NM neurons showed similar properties to mammalian neurons in that its unique mechanism of an ‘open channel block state’ facilitated the recovery and increased the availability of sodium (Na V ) channels after depolarization. Using a computational model of NM neurons, we demonstrated that removal of I NaR reduced high‐rate AP firing. We found weak I NaR during a prehearing period (E11–12), which transformed to resemble late‐developing I NaR properties around hearing onset (E14–16). Anatomically, we detected strong Na V 1.6 expression near maturation, which became increasingly less distinct at hearing onset and prehearing periods, suggesting that multiple Na V channel subtypes may contribute to I NaR during development. We conclude that I NaR plays an important role in regulating rapid AP firing for NM neurons, a property that may be evolutionarily conserved for functions related to similar avian and mammalian hearing.
机译:所有脊椎动物的关键点听觉脑干神经元以高速率,具有显着保真度的高速率,由专业解剖学和生物物理性质控制的过程。这在禽核细胞(NM)中尤其如此 - 哺乳动物蛛网膜耳核的类似物。除了高压活化的钾(K HVA)通道外,我们还使用全部细胞生理学和建模报告,钠通道(NA V)的复苏钠电流(I NAR)同样重要,并用K HVA通道协同操作。在NM中启用快速AP触发。解剖学上,我们在听力成熟附近发现了强烈的Na V 1.6表达,尽管我NAR的功能证据表明,听力发展中的听力发展差异不太明显,这表明多个NA V通道亚型可能有助于我NAR。我们得出结论,我在调节NM神经元的快速AP烧制方面发挥着重要作用,这是一个可能正在进行的禽类和哺乳动物听力有关的职能所在的财产。摘要听觉脑干神经元在功能上以明显高速率发射动作电位(AP),以便快速编码声音的声学信息。这种专业化对于生存和对行为相关的通信功能的理解至关重要,包括声音本地化和与噪声的言论。在这里,我们研究了鸡核肌细胞(NM)的神经元中的高速AP烧制必不可少的离子通道机制 - 哺乳动物母乳织物耳蜗核浓密细胞的禽类类似物。除了高压活化钾通道的既定功能外,我们发现复苏钠电流(I NAR)在调节晚期发展(胚胎(e)天19-21)NM神经元的快速烧制活性方面发挥作用。我的晚期发展NM神经元对哺乳动物神经元的性质表现出类似的性质,因为它的“开放通道块状态”的独特机制促进了恢复并增加了去极化后(Na V)通道的可用性。使用NM神经元的计算模型,我们证明了DRAL减少了高速AP烧制。在保证期(E11-12)期间,我们发现弱I NAR,其转化以类似于听力发作周围的后期发育I NAR性能(E14-16)。解剖学上,我们在成熟附近检测到强烈的Na V 1.6表达,这在听力发作和预清术期间变得越来越小,表明多个NA V通道亚型可能在发育过程中有助于I NAR。我们得出结论,我在调节NM神经元的快速AP烧制方面发挥着重要作用,这是一个可能正在进行的禽类和哺乳动物听力有关的职能所在的财产。

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