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甲基结合结构域3/核小体重塑与去乙酰化酶复合物调控大脑皮质中神经细胞命运决定和终末分化。

The methyl binding domain 3/nucleosome remodelling and deacetylase complex regulates neural cell fate determination and terminal differentiation in the cerebral cortex.

作者信息

Knock Erin, Pereira João, Lombard Patrick D, Dimond Andrew, Leaford Donna, Livesey Frederick J, Hendrich Brian

机构信息

Wellcome Trust - Medical Research Council Stem Cell Institute, University of Cambridge, Cambridge, CB2 1QR, UK.

Tanz Centre for Research in Neurodegenerative Diseases, Krembil Discovery Tower, 6KD-404, 60 Leonard Avenue, Toronto, ON, Canada.

出版信息

Neural Dev. 2015 May 2;10:13. doi: 10.1186/s13064-015-0040-z.

Abstract

BACKGROUND

Chromatin-modifying complexes have key roles in regulating various aspects of neural stem cell biology, including self-renewal and neurogenesis. The methyl binding domain 3/nucleosome remodelling and deacetylation (MBD3/NuRD) co-repressor complex facilitates lineage commitment of pluripotent cells in early mouse embryos and is important for stem cell homeostasis in blood and skin, but its function in neurogenesis had not been described. Here, we show for the first time that MBD3/NuRD function is essential for normal neurogenesis in mice.

RESULTS

Deletion of MBD3, a structural component of the NuRD complex, in the developing mouse central nervous system resulted in reduced cortical thickness, defects in the proper specification of cortical projection neuron subtypes and neonatal lethality. These phenotypes are due to alterations in PAX6+ apical progenitor cell outputs, as well as aberrant terminal neuronal differentiation programmes of cortical plate neurons. Normal numbers of PAX6+ apical neural progenitor cells were generated in the MBD3/NuRD-mutant cortex; however, the PAX6+ apical progenitor cells generate EOMES+ basal progenitor cells in reduced numbers. Cortical progenitor cells lacking MBD3/NuRD activity generate neurons that express both deep- and upper-layer markers. Using laser capture microdissection, gene expression profiling and chromatin immunoprecipitation, we provide evidence that MBD3/NuRD functions to control gene expression patterns during neural development.

CONCLUSIONS

Our data suggest that although MBD3/NuRD is not required for neural stem cell lineage commitment, it is required to repress inappropriate transcription in both progenitor cells and neurons to facilitate appropriate cell lineage choice and differentiation programmes.

摘要

背景

染色质修饰复合物在调节神经干细胞生物学的各个方面发挥关键作用,包括自我更新和神经发生。甲基结合结构域3/核小体重塑与去乙酰化(MBD3/NuRD)共抑制复合物促进小鼠早期胚胎中多能细胞的谱系定向分化,对血液和皮肤中的干细胞稳态很重要,但其在神经发生中的功能尚未见报道。在此,我们首次表明MBD3/NuRD的功能对小鼠正常神经发生至关重要。

结果

在发育中的小鼠中枢神经系统中缺失NuRD复合物的结构成分MBD3,导致皮质厚度减小、皮质投射神经元亚型的正确特化出现缺陷以及新生小鼠死亡。这些表型是由于PAX6+顶端祖细胞输出的改变以及皮质板神经元异常的终末神经元分化程序所致。在MBD3/NuRD突变的皮质中产生的PAX6+顶端神经祖细胞数量正常;然而,PAX6+顶端祖细胞产生的EOMES+基底祖细胞数量减少。缺乏MBD3/NuRD活性的皮质祖细胞产生同时表达深层和上层标记物的神经元。通过激光捕获显微切割、基因表达谱分析和染色质免疫沉淀,我们提供证据表明MBD3/NuRD在神经发育过程中发挥控制基因表达模式的作用。

结论

我们的数据表明,虽然MBD3/NuRD对神经干细胞谱系定向分化不是必需的,但它对于抑制祖细胞和神经元中不适当的转录以促进适当的细胞谱系选择和分化程序是必需的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9c2e/4432814/c0b496c49ca8/13064_2015_40_Fig1_HTML.jpg

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