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Hedgehog 信号通路调控斑马鱼耳感觉上皮及其相关神经支配的发育。

Hedgehog signaling governs the development of otic sensory epithelium and its associated innervation in zebrafish.

机构信息

Departament de Ciències Experimentals i de la Salut, Universitat Pompeu Fabra, Parc de Recerca Biomèdica de Barcelona, 08003 Barcelona, Spain.

出版信息

J Neurosci. 2010 Mar 10;30(10):3612-23. doi: 10.1523/JNEUROSCI.5109-09.2010.

Abstract

The inner ear is responsible for the perception of motion and sound in vertebrates. Its functional unit, the sensory patch, contains mechanosensory hair cells innervated by sensory neurons from the statoacoustic ganglion (SAG) that project to the corresponding nuclei in the brainstem. How hair cells develop at specific positions, and how otic neurons are sorted to specifically innervate each endorgan and to convey the extracted information to the hindbrain is not completely understood. In this work, we study the generation of macular sensory patches and investigate the role of Hedgehog (Hh) signaling in the production of their neurosensory elements. Using zebrafish transgenic lines to visualize the dynamics of hair cell and neuron production, we show that the development of the anterior and posterior maculae is asynchronic, suggesting they are independently regulated. Tracing experiments demonstrate the SAG is topologically organized in two different neuronal subpopulations, which are spatially segregated and innervate specifically each macula. Functional experiments identify the Hh pathway as crucial in coordinating the production of hair cells in the posterior macula, and the formation of its specific innervation. Finally, gene expression analyses suggest that Hh influences the balance between different SAG neuronal subpopulations. These results lead to a model in which Hh orients functionally the development of inner ear towards an auditory fate in all vertebrate species.

摘要

内耳负责脊椎动物运动和声音的感知。其功能单位,即感觉斑,包含由来自前庭神经节(SAG)的感觉神经元支配的机械敏感毛细胞,这些神经元投射到脑干中的相应核团。毛细胞如何在特定位置发育,以及耳神经元如何被分类以特异性地支配每个终末器官,并将提取的信息传递到后脑,这些都还不完全清楚。在这项工作中,我们研究了黄斑感觉斑的产生,并研究了 Hedgehog(Hh)信号在产生其神经感觉元件中的作用。利用斑马鱼转基因系来可视化毛细胞和神经元产生的动态,我们表明前、后黄斑的发育是不同步的,这表明它们是独立调节的。追踪实验表明,SAG 在两个不同的神经元亚群中是拓扑组织的,这两个亚群在空间上是分离的,并特异性地支配每个黄斑。功能实验表明 Hh 通路在协调后黄斑毛细胞的产生及其特定支配的形成中起着关键作用。最后,基因表达分析表明 Hh 影响 SAG 不同神经元亚群之间的平衡。这些结果提出了一个模型,即在所有脊椎动物物种中,Hh 或定向地将内耳的发育向听觉命运发展。

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