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神经营养因子对双极螺旋神经节神经元突触前和突触后蛋白的相互调节

Reciprocal regulation of presynaptic and postsynaptic proteins in bipolar spiral ganglion neurons by neurotrophins.

作者信息

Flores-Otero Jacqueline, Xue Hui Zhong, Davis Robin L

机构信息

Department of Cell Biology and Neuroscience, Rutgers University, Piscataway, New Jersey 08854, USA.

出版信息

J Neurosci. 2007 Dec 19;27(51):14023-34. doi: 10.1523/JNEUROSCI.3219-07.2007.

Abstract

A unifying principle of sensory system organization is feature extraction by modality-specific neuronal maps in which arrays of neurons show systematically varied response properties and receptive fields. Only beginning to be understood, however, are the mechanisms by which these graded systems are established. In the peripheral auditory system, we have shown previously that the intrinsic firing features of spiral ganglion neurons are influenced by brain-derived neurotrophic factor (BDNF) and neurotrophin-3 (NT-3). We now show that is but a part of a coordinated package of neurotrophin actions that also includes effects on presynaptic and postsynaptic proteins, thus encompassing the input, transmission, and output functions of the spiral ganglion neurons. Using immunocytochemical methods, we determined that proteins targeted to opposite ends of the neuron were organized and regulated in a reciprocal manner. AMPA receptor subunits GluR2 and GluR3 were enriched in base neurons compared with their apex counterparts. This distribution pattern was enhanced by exposure to BDNF but reduced by NT-3. SNAP-25 and synaptophysin were distributed and regulated in the mirror image: enriched in the apex, enhanced by NT-3 and reduced by BDNF. Moreover, we used a novel coculture to identify potential endogenous sources of neurotrophins by showing that sensory receptors from different cochlear regions were capable of altering presynaptic and postsynaptic protein levels in these neurons. From these studies, we suggest that BDNF and NT-3, which are systematically distributed in complementary gradients, are responsible for orchestrating a comprehensive set of electrophysiological specializations along the frequency contour of the cochlea.

摘要

感觉系统组织的一个统一原则是通过特定模态的神经元图谱进行特征提取,其中神经元阵列表现出系统变化的反应特性和感受野。然而,这些分级系统建立的机制才刚刚开始被理解。在周围听觉系统中,我们之前已经表明螺旋神经节神经元的内在放电特征受脑源性神经营养因子(BDNF)和神经营养素-3(NT-3)的影响。我们现在表明,这只是神经营养因子作用协调组合的一部分,该组合还包括对突触前和突触后蛋白的影响,从而涵盖了螺旋神经节神经元的输入、传递和输出功能。使用免疫细胞化学方法,我们确定靶向神经元两端的蛋白质以相互的方式进行组织和调节。与顶端对应物相比,AMPA受体亚基GluR2和GluR3在基部神经元中富集。这种分布模式在暴露于BDNF时增强,但在NT-3作用下减少。SNAP-25和突触素的分布和调节呈镜像:在顶端富集,在NT-3作用下增强,在BDNF作用下减少。此外,我们使用一种新型共培养方法,通过表明来自不同耳蜗区域的感觉受体能够改变这些神经元中突触前和突触后蛋白水平,来确定神经营养因子的潜在内源性来源。从这些研究中,我们认为以互补梯度系统分布的BDNF和NT-3负责在耳蜗的频率轮廓上协调一系列全面的电生理特化。

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