Need for Speed and Precision: Structural and Functional Specialization in the Cochlear Nucleus of the Avian Auditory System.

Journal of Experimental Neuroscience Pub Date : 2018-12-12 eCollection Date: 2018-01-01 DOI:10.1177/1179069518815628
Hui Hong, Jason Tait Sanchez
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引用次数: 7

Abstract

Birds such as the barn owl and zebra finch are known for their remarkable hearing abilities that are critical for survival, communication, and vocal learning functions. A key to achieving these hearing abilities is the speed and precision required for the temporal coding of sound-a process heavily dependent on the structural, synaptic, and intrinsic specializations in the avian auditory brainstem. Here, we review recent work from us and others focusing on the specialization of neurons in the chicken cochlear nucleus magnocellularis (NM)-a first-order auditory brainstem structure analogous to bushy cells in the mammalian anteroventral cochlear nucleus. Similar to their mammalian counterpart, NM neurons are mostly adendritic and receive auditory nerve input through large axosomatic endbulb of Held synapses. Axonal projections from NM neurons to their downstream auditory targets are sophisticatedly programmed regarding their length, caliber, myelination, and conduction velocity. Specialized voltage-dependent potassium and sodium channel properties also play important and unique roles in shaping the functional phenotype of NM neurons. Working synergistically with potassium channels, an atypical current known as resurgent sodium current promotes rapid and precise action potential firing for NM neurons. Interestingly, these structural and functional specializations vary dramatically along the tonotopic axis and suggest a plethora of encoding strategies for sounds of different acoustic frequencies, mechanisms likely shared across species.

Abstract Image

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对速度和精度的需求:鸟类听觉系统耳蜗核的结构和功能专门化。
像仓鸮和斑胸草雀这样的鸟类以其非凡的听觉能力而闻名,这对生存、交流和声乐学习功能至关重要。获得这些听觉能力的关键是声音时间编码所需的速度和精度,这一过程严重依赖于鸟类听觉脑干的结构、突触和内在特化。在这里,我们回顾了最近我们和其他人在鸡耳蜗大细胞核(NM)神经元特化方面的研究成果。NM是一种类似于哺乳动物耳蜗前腹侧核的一阶听觉脑干结构。与哺乳动物神经元相似,NM神经元大多是树突状的,通过Held突触的大轴体细胞终球接收听神经输入。从NM神经元到其下游听觉目标的轴突投射在其长度,口径,髓鞘形成和传导速度方面经过复杂的编程。特殊的电压依赖性钾和钠通道特性在形成NM神经元的功能表型中也起着重要而独特的作用。与钾通道协同工作,一个非典型的电流被称为复苏钠电流促进NM神经元快速和精确的动作电位放电。有趣的是,这些结构和功能的专门化沿着声位轴变化很大,并表明对不同频率的声音有过多的编码策略,这种机制可能是跨物种共享的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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