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弱动作电位逆向传播与沙鼠内侧上橄榄核主神经元的高频轴突放电能力有关。

Weak action potential backpropagation is associated with high-frequency axonal firing capability in principal neurons of the gerbil medial superior olive.

作者信息

Scott Luisa L, Hage Travis A, Golding Nace L

机构信息

Section of Neurobiology and Institute for Neuroscience, University of Texas at Austin, Austin, TX 78712-0248, USA.

出版信息

J Physiol. 2007 Sep 1;583(Pt 2):647-61. doi: 10.1113/jphysiol.2007.136366. Epub 2007 Jul 12.

Abstract

Principal neurons of the medial superior olive (MSO) convey azimuthal sound localization cues through modulation of their rate of action potential firing. Previous intracellular studies in vitro have shown that action potentials appear highly attenuated at the soma of MSO neurons, potentially reflecting specialized action potential initiation and/or a physically distant site of generation. To examine this more directly, we made dual patch-clamp recordings from MSO principal neurons in gerbil brainstem slices. Using somatic and dendritic whole-cell recordings, we show that graded action potentials at the soma are highly sensitive to the rate of rise of excitation and undergo strong attenuation in their backpropagation into the dendrites (length constant, 76 microm), particularly during strong dendritic excitation. Using paired somatic whole-cell and axonal loose-patch recordings, we show that action potentials recorded in the axon at distances > 25 microm are all-or-none, and uniform in amplitude even when action potentials appear graded at the soma. This proximal zone corresponded to the start of myelination in the axon, as assessed with immunocytochemical staining for myelin basic protein in single-labelled neurons. Finally, the axon was capable of sustaining remarkably high firing rates, with perfect entrainment occurring at frequencies of up to 1 kHz. Together, our findings show that action potential signalling in MSO principal neurons is highly secure, but shows a restricted invasion of the somatodendritic compartment of the cell. This restriction may be important for minimizing distortions in synaptic integration during the high frequencies of synaptic input encountered in the MSO.

摘要

内侧上橄榄核(MSO)的主要神经元通过调节其动作电位发放频率来传递方位声音定位线索。以往的体外细胞内研究表明,动作电位在MSO神经元的胞体处似乎高度衰减,这可能反映了特殊的动作电位起始和/或产生动作电位的物理距离较远的部位。为了更直接地研究这一问题,我们在沙鼠脑干切片中的MSO主要神经元上进行了双膜片钳记录。利用胞体和树突的全细胞记录,我们发现胞体处的分级动作电位对兴奋的上升速率高度敏感,并且在向树突的逆向传播过程中(长度常数为76微米)会经历强烈衰减,尤其是在强烈的树突兴奋期间。利用配对的胞体全细胞和轴突松散膜片记录,我们发现距离轴突起始点>25微米处记录到的动作电位是全或无的,并且即使在胞体处动作电位呈现分级时,其幅度也是均匀的。用单标记神经元中髓鞘碱性蛋白的免疫细胞化学染色评估,这个近端区域对应于轴突髓鞘化的起始部位。最后,轴突能够维持非常高的发放频率,在高达1千赫兹的频率下能实现完美的同步。总之,我们的研究结果表明,MSO主要神经元中的动作电位信号传递非常可靠,但在细胞的胞体-树突区的侵入受到限制。这种限制对于在MSO遇到的高频突触输入期间最小化突触整合中的失真可能很重要。

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