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发育阶段依赖性转录调控途径控制神经母细胞谱系的进展。

Developmental stage-dependent transcriptional regulatory pathways control neuroblast lineage progression.

机构信息

National Laboratory of Biomacromolecules, Institute of Biophysics, Chinese Academy of Sciences, 15 Datun Road, Chaoyang District, Beijing 100101, China.

出版信息

Development. 2013 Sep;140(18):3838-47. doi: 10.1242/dev.098723. Epub 2013 Aug 14.

Abstract

Neuroblasts generate neurons with different functions by asymmetric cell division, cell cycle exit and differentiation. The underlying transcriptional regulatory pathways remain elusive. Here, we performed genetic screens in C. elegans and identified three evolutionarily conserved transcription factors (TFs) essential for Q neuroblast lineage progression. Through live cell imaging and genetic analysis, we showed that the storkhead TF HAM-1 regulates spindle positioning and myosin polarization during asymmetric cell division and that the PAR-1-like kinase PIG-1 is a transcriptional regulatory target of HAM-1. The TEAD TF EGL-44, in a physical association with the zinc-finger TF EGL-46, instructs cell cycle exit after the terminal division. Finally, the Sox domain TF EGL-13 is necessary and sufficient to establish the correct neuronal fate. Genetic analysis further demonstrated that HAM-1, EGL-44/EGL-46 and EGL-13 form three transcriptional regulatory pathways. We have thus identified TFs that function at distinct developmental stages to ensure appropriate neuroblast lineage progression and suggest that their vertebrate homologs might similarly regulate neural development.

摘要

神经母细胞通过不对称细胞分裂、细胞周期退出和分化产生具有不同功能的神经元。潜在的转录调控途径仍不清楚。在这里,我们在秀丽隐杆线虫中进行了遗传筛选,鉴定了三个对 Q 神经母细胞谱系进展至关重要的进化保守转录因子 (TF)。通过活细胞成像和遗传分析,我们表明 storkhead TF HAM-1 调节不对称细胞分裂过程中的纺锤体定位和肌球蛋白极化,而类似于 PAR-1 的激酶 PIG-1 是 HAM-1 的转录调控靶标。TEAD TF EGL-44 与锌指 TF EGL-46 形成物理关联,在终末分裂后指示细胞周期退出。最后,Sox 结构域 TF EGL-13 是建立正确神经元命运所必需和充分的。遗传分析进一步表明,HAM-1、EGL-44/EGL-46 和 EGL-13 形成三个转录调控途径。因此,我们已经鉴定出在不同发育阶段发挥作用的 TF,以确保适当的神经母细胞谱系进展,并表明它们的脊椎动物同源物可能类似地调节神经发育。

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