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斑马鱼初级神经元发育的遗传控制

Genetic control of primary neuronal development in zebrafish.

作者信息

Kimmel C B, Hatta K, Eisen J S

机构信息

Institute of Neuroscience, University of Oregon, Eugene 97403.

出版信息

Dev Suppl. 1991;Suppl 2:47-57.

PMID:1842357
Abstract

During the first day of embryogenesis in the zebrafish, a precise and relatively simple network of neurons develops, pioneering axonal pathways and apparently functioning to mediate reflexive motor responses to touch stimuli. We have begun to use zygotic lethal mutations to analyze the assembly of this 'primary' embryonic nervous system. Here we focus on spinal primary motoneurons, their inputs from hindbrain Mauthner neurons, and their outputs to segmental body wall muscle. The mutation nic-1 blocks synaptic transmission between nerve and muscle, yet embryonic primary motoneurons appear normal, suggesting that functional interactions with their targets are not involved in regulating their development. The mutation spt-1 directly disrupts development of this muscle, and the mutation cyc-1 appears to directly block specification of the floor plate. Both spt-1 and cyc-1 affect aspects of primary neuronal development, and they probably do so indirectly. The nonautonomous actions of these mutations are local and they produce variable neuronal phenotypes. The observations can be interpreted to mean that some cellular interactions that specify the neurons and their axonal paths occur at close range and involve multiple, possibly combinatorial, transmitter-independent pathways.

摘要

在斑马鱼胚胎发育的第一天,一个精确且相对简单的神经元网络开始形成,它开辟轴突通路,显然起着介导对触觉刺激的反射性运动反应的作用。我们已开始利用合子致死突变来分析这个“初级”胚胎神经系统的组装。在这里,我们聚焦于脊髓初级运动神经元、它们来自后脑毛特纳神经元的输入以及它们向节段性体壁肌肉的输出。nic-1突变阻断神经与肌肉之间的突触传递,但胚胎初级运动神经元看起来正常,这表明与它们的靶标的功能相互作用并不参与调节其发育。spt-1突变直接扰乱这种肌肉的发育,而cyc-1突变似乎直接阻断底板的特化。spt-1和cyc-1都影响初级神经元发育的各个方面,而且它们可能是间接产生这种影响。这些突变的非自主作用是局部性的,并且会产生可变的神经元表型。这些观察结果可以解释为意味着一些确定神经元及其轴突路径的细胞相互作用发生在近距离,并且涉及多个可能是组合性的、不依赖递质的通路。

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