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甲基化CpG结合蛋白MBD1通过维持成体神经干细胞特性来调控神经元谱系定向分化。

Methyl-CpG-Binding Protein MBD1 Regulates Neuronal Lineage Commitment through Maintaining Adult Neural Stem Cell Identity.

作者信息

Jobe Emily M, Gao Yu, Eisinger Brian E, Mladucky Janessa K, Giuliani Charles C, Kelnhofer Laurel E, Zhao Xinyu

机构信息

Cellular and Molecular Biology Graduate Program.

Waisman Center, and.

出版信息

J Neurosci. 2017 Jan 18;37(3):523-536. doi: 10.1523/JNEUROSCI.1075-16.2016.

Abstract

UNLABELLED

Methyl-CpG-binding domain 1 (MBD1) belongs to a family of methyl-CpG-binding proteins that are epigenetic "readers" linking DNA methylation to transcriptional regulation. MBD1 is expressed in neural stem cells residing in the dentate gyrus of the adult hippocampus (aNSCs) and MBD1 deficiency leads to reduced neuronal differentiation, impaired neurogenesis, learning deficits, and autism-like behaviors in mice; however, the precise function of MBD1 in aNSCs remains unexplored. Here, we show that MBD1 is important for maintaining the integrity and stemness of NSCs, which is critical for their ability to generate neurons. MBD1 deficiency leads to the accumulation of undifferentiated NSCs and impaired transition into the neuronal lineage. Transcriptome analysis of neural stem and progenitor cells isolated directly from the dentate gyrus of MBD1 mutant (KO) and WT mice showed that gene sets related to cell differentiation, particularly astrocyte lineage genes, were upregulated in KO cells. We further demonstrated that, in NSCs, MBD1 binds and represses directly specific genes associated with differentiation. Our results suggest that MBD1 maintains the multipotency of NSCs by restraining the onset of differentiation genes and that untimely expression of these genes in MBD1-deficient stem cells may interfere with normal cell lineage commitment and cause the accumulation of undifferentiated cells. Our data reveal a novel role for MBD1 in stem cell maintenance and provide insight into how epigenetic regulation contributes to adult neurogenesis and the potential impact of its dysregulation.

SIGNIFICANCE STATEMENT

Adult neural stem cells (aNSCs) in the hippocampus self-renew and generate neurons throughout life. We show that methyl-CpG-binding domain 1 (MBD1), a DNA methylation "reader," is important for maintaining the integrity of NSCs, which is critical for their neurogenic potency. Our data reveal a novel role for MBD1 in stem cell maintenance and provide insight into how epigenetic regulation preserves the multipotency of stem cells for subsequent differentiation.

摘要

未标记

甲基化CpG结合结构域1(MBD1)属于甲基化CpG结合蛋白家族,是将DNA甲基化与转录调控联系起来的表观遗传“读取器”。MBD1在成年海马齿状回中的神经干细胞(aNSCs)中表达,MBD1缺陷会导致小鼠神经元分化减少、神经发生受损、学习缺陷和自闭症样行为;然而,MBD1在aNSCs中的精确功能仍未被探索。在这里,我们表明MBD1对于维持神经干细胞的完整性和干性很重要,这对它们产生神经元的能力至关重要。MBD1缺陷导致未分化神经干细胞的积累以及向神经元谱系的转变受损。对直接从MBD1突变体(KO)和野生型(WT)小鼠齿状回中分离的神经干细胞和祖细胞进行转录组分析表明,与细胞分化相关的基因集,特别是星形胶质细胞谱系基因,在KO细胞中上调。我们进一步证明,在神经干细胞中,MBD1直接结合并抑制与分化相关的特定基因。我们的结果表明,MBD1通过抑制分化基因的起始来维持神经干细胞的多能性,并且这些基因在MBD1缺陷干细胞中的过早表达可能会干扰正常的细胞谱系定向并导致未分化细胞的积累。我们的数据揭示了MBD1在干细胞维持中的新作用,并深入了解了表观遗传调控如何促进成体神经发生及其失调的潜在影响。

意义声明

海马体中的成年神经干细胞(aNSCs)终生自我更新并产生神经元。我们表明,作为一种DNA甲基化“读取器”的甲基化CpG结合结构域1(MBD1)对于维持神经干细胞的完整性很重要,这对它们的神经发生能力至关重要。我们的数据揭示了MBD1在干细胞维持中的新作用,并深入了解了表观遗传调控如何保持干细胞的多能性以便随后进行分化。

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Neurogenesis in the Adult Hippocampus.成年海马体中的神经发生
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