斑马鱼:研究基础生物发生、结构和功能的脊椎动物工具。

Q2 Biochemistry, Genetics and Molecular Biology Cilia Pub Date : 2016-05-10 eCollection Date: 2016-01-01 DOI:10.1186/s13630-016-0036-2
Ryan A Marshall, Daniel P S Osborn
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引用次数: 7

摘要

对基础体(BBs)在发育和疾病中的作用的理解在很大程度上被对纤毛功能的研究所掩盖。虽然这两种细胞器密切相关,但它们在成功的细胞发育中具有特定的作用。纤毛的正常发育和功能是纤毛功能的基础。事实上,有越来越多的人类遗传疾病影响纤毛发育,统称为纤毛病。越来越多的证据表明,BBs建立细胞极性,直接纤毛发生,并为纤毛轴突内所需的蛋白质提供对接位点。我们对BB结构和功能的认识主要是由鞭毛或纤毛单细胞真核生物,特别是四膜虫和衣单胞菌的研究提供的。在脊椎动物身上重现这些和其他发现需要动物体内模型。斑马鱼已经迅速成为脊椎动物功能遗传学建模的首选生物之一。快速的体外发育,熟练的产卵,易于基因操作,以及价格低廉使斑马鱼成为一种有吸引力的脊椎动物研究工具。此外,斑马鱼与人类共享80%以上的致病基因。本文讨论了利用斑马鱼研究BB功能遗传学的优点,综述了目前对斑马鱼BB超微结构和功能机制的认识,并对未来基于斑马鱼的BB研究进行了展望。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Zebrafish: a vertebrate tool for studying basal body biogenesis, structure, and function.

Understanding the role of basal bodies (BBs) during development and disease has been largely overshadowed by research into the function of the cilium. Although these two organelles are closely associated, they have specific roles to complete for successful cellular development. Appropriate development and function of the BB are fundamental for cilia function. Indeed, there are a growing number of human genetic diseases affecting ciliary development, known collectively as the ciliopathies. Accumulating evidence suggests that BBs establish cell polarity, direct ciliogenesis, and provide docking sites for proteins required within the ciliary axoneme. Major contributions to our knowledge of BB structure and function have been provided by studies in flagellated or ciliated unicellular eukaryotic organisms, specifically Tetrahymena and Chlamydomonas. Reproducing these and other findings in vertebrates has required animal in vivo models. Zebrafish have fast become one of the primary organisms of choice for modeling vertebrate functional genetics. Rapid ex-utero development, proficient egg laying, ease of genetic manipulation, and affordability make zebrafish an attractive vertebrate research tool. Furthermore, zebrafish share over 80 % of disease causing genes with humans. In this article, we discuss the merits of using zebrafish to study BB functional genetics, review current knowledge of zebrafish BB ultrastructure and mechanisms of function, and consider the outlook for future zebrafish-based BB studies.

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来源期刊
Cilia
Cilia Biochemistry, Genetics and Molecular Biology-Cell Biology
CiteScore
6.40
自引率
0.00%
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0
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