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斑马鱼Rfx4控制神经管中背侧和腹侧中线的形成。

Zebrafish Rfx4 controls dorsal and ventral midline formation in the neural tube.

作者信息

Sedykh Irina, Keller Abigail N, Yoon Baul, Roberson Laura, Moskvin Oleg V, Grinblat Yevgenya

机构信息

Department of Integrative Biology, University of Wisconsin, Madison, Wisconsin.

Department of Neuroscience, University of Wisconsin, Madison, Wisconsin.

出版信息

Dev Dyn. 2018 Apr;247(4):650-659. doi: 10.1002/dvdy.24613. Epub 2018 Jan 31.

Abstract

BACKGROUND

Rfx winged-helix transcription factors, best known as key regulators of core ciliogenesis, also play ciliogenesis-independent roles during neural development. Mammalian Rfx4 controls neural tube morphogenesis via both mechanisms.

RESULTS

We set out to identify conserved aspects of rfx4 gene function during vertebrate development and to establish a new genetic model in which to analyze these mechanisms further. To this end, we have generated frame-shift alleles in the zebrafish rfx4 locus using CRISPR/Cas9 mutagenesis. Using RNAseq-based transcriptome analysis, in situ hybridization and immunostaining we identified a requirement for zebrafish rfx4 in the forming midlines of the caudal neural tube. These functions are mediated, least in part, through transcriptional regulation of several zic genes in the dorsal hindbrain and of foxa2 in the ventral hindbrain and spinal cord (floor plate).

CONCLUSIONS

The midline patterning functions of rfx4 are conserved, because rfx4 regulates transcription of foxa2 and zic2 in zebrafish and in mouse. In contrast, zebrafish rfx4 function is dispensable for forebrain morphogenesis, while mouse rfx4 is required for normal formation of forebrain ventricles in a ciliogenesis-dependent manner. Collectively, this report identifies conserved aspects of rfx4 function and establishes a robust new genetic model for in-depth dissection of these mechanisms. Developmental Dynamics 247:650-659, 2018. © 2017 Wiley Periodicals, Inc.

摘要

背景

Rfx翼状螺旋转录因子,作为核心纤毛发生的关键调节因子最为人所知,在神经发育过程中也发挥着与纤毛发生无关的作用。哺乳动物的Rfx4通过这两种机制控制神经管形态发生。

结果

我们着手确定脊椎动物发育过程中rfx4基因功能的保守方面,并建立一个新的遗传模型,以便进一步分析这些机制。为此,我们使用CRISPR/Cas9诱变技术在斑马鱼rfx4基因座中产生了移码等位基因。通过基于RNAseq的转录组分析、原位杂交和免疫染色,我们确定斑马鱼rfx4在尾神经管形成的中线中是必需的。这些功能至少部分是通过对背侧后脑的几个zic基因以及腹侧后脑和脊髓(底板)中的foxa2进行转录调控来介导的。

结论

rfx4的中线模式形成功能是保守的,因为rfx4在斑马鱼和小鼠中都调节foxa2和zic2的转录。相比之下,斑马鱼rfx4功能对于前脑形态发生是可有可无的,而小鼠rfx4以纤毛发生依赖的方式是前脑脑室正常形成所必需的。总体而言,本报告确定了rfx4功能的保守方面,并建立了一个强大的新遗传模型,用于深入剖析这些机制。《发育动力学》2018年第247卷:650 - 659页。© 2017威利期刊公司。

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