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海鞘蝌蚪幼虫的神经生物学:一种古老脊索动物的最新进展

The neurobiology of the ascidian tadpole larva: recent developments in an ancient chordate.

作者信息

Meinertzhagen Ian A, Lemaire Patrick, Okamura Yasushi

机构信息

Marine Biological Laboratory, Woods Hole, Massachusetts 02543, USA.

出版信息

Annu Rev Neurosci. 2004;27:453-85. doi: 10.1146/annurev.neuro.27.070203.144255.

Abstract

With little more than 330 cells, two thirds within the sensory vesicle, the CNS of the tadpole larva of the ascidian Ciona intestinalis provides us with a chordate nervous system in miniature. Neurulation, neurogenesis and its genetic bases, as well as the gene expression territories of this tiny constituency of cells all follow a chordate plan, giving rise in some cases to frank structural homologies with the vertebrate brain. Recent advances are fueled by the release of the genome and EST expression databases and by the development of methods to transfect embryos by electroporation. Immediate prospects to test the function of neural genes are based on the isolation of mutants by classical genetics and insertional mutagenesis, as well as by the disruption of gene function by morpholino antisense oligo-nucleotides. Coupled with high-speed video analysis of larval swimming, optophysiological methods offer the prospect to analyze at single-cell level the function of a CNS built on a vertebrate plan.

摘要

海鞘Ciona intestinalis蝌蚪幼虫的中枢神经系统仅有330多个细胞,其中三分之二位于感觉泡内,它为我们提供了一个微型的脊索动物神经系统。神经胚形成、神经发生及其遗传基础,以及这个微小细胞群体的基因表达区域均遵循脊索动物模式,在某些情况下与脊椎动物大脑呈现出明显的结构同源性。基因组和EST表达数据库的发布以及通过电穿孔转染胚胎方法的发展推动了近期的研究进展。通过经典遗传学和插入诱变分离突变体,以及通过吗啉代反义寡核苷酸破坏基因功能,为测试神经基因的功能提供了直接的前景。结合幼虫游泳的高速视频分析,光生理学方法为在单细胞水平分析基于脊椎动物模式构建的中枢神经系统的功能提供了可能。

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