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胚胎外胚层细胞和前神经板发育中的转录调控网络,在胚胎干细胞中建模。

Transcriptional regulatory networks in epiblast cells and during anterior neural plate development as modeled in epiblast stem cells.

机构信息

Graduate School of Frontier Biosciences, Osaka University, 1-3 Yamadaoka, Suita, Osaka 565-0871, Japan.

出版信息

Development. 2012 Nov;139(21):3926-37. doi: 10.1242/dev.085936. Epub 2012 Sep 19.

DOI:10.1242/dev.085936
PMID:22992956
Abstract

Somatic development initiates from the epiblast in post-implantation mammalian embryos. Recent establishment of epiblast stem cell (EpiSC) lines has opened up new avenues of investigation of the mechanisms that regulate the epiblast state and initiate lineage-specific somatic development. Here, we investigated the role of cell-intrinsic core transcriptional regulation in the epiblast and during derivation of the anterior neural plate (ANP) using a mouse EpiSC model. Cells that developed from EpiSCs in one day in the absence of extrinsic signals were found to represent the ANP of ~E7.5 embryos. We focused on transcription factors that are uniformly expressed in the E6.5 epiblast but in a localized fashion within or external to the ANP at E7.5, as these are likely to regulate the epiblast state and ANP development depending on their balance. Analyses of the effects of knockdown and overexpression of these factors in EpiSCs on the levels of downstream transcription factors identified the following regulatory functions: cross-regulation among Zic, Otx2, Sox2 and Pou factors stabilizes the epiblastic state; Zic, Otx2 and Pou factors in combination repress mesodermal development; Zic and Sox2 factors repress endodermal development; and Otx2 represses posterior neural plate development. All of these factors variably activate genes responsible for neural plate development. The direct interaction of these factors with enhancers of Otx2, Hesx1 and Sox2 genes was demonstrated. Thus, a combination of regulatory processes that suppresses non-ANP lineages and promotes neural plate development determines the ANP.

摘要

体节发育始于哺乳动物胚胎植入后的上胚层。最近建立的上胚层干细胞(EpiSC)系为研究调节上胚层状态和启动谱系特异性体节发育的机制开辟了新途径。在这里,我们使用小鼠 EpiSC 模型研究了细胞内在核心转录调控在上胚层和前神经板(ANP)衍生中的作用。在没有外在信号的情况下,从 EpiSCs 发育一天的细胞被发现代表约 E7.5 胚胎的 ANP。我们专注于在 E6.5 上胚层中均匀表达但在 E7.5 时在 ANP 内或外部局部表达的转录因子,因为这些因子可能根据其平衡调节上胚层状态和 ANP 发育。在 EpiSCs 中敲低和过表达这些因子对下游转录因子水平的影响分析确定了以下调节功能:Zic、Otx2、Sox2 和 Pou 因子之间的交叉调节稳定了上胚层状态;Zic、Otx2 和 Pou 因子共同抑制中胚层发育;Zic 和 Sox2 因子抑制内胚层发育;Otx2 抑制后神经板发育。所有这些因子都不同程度地激活负责神经板发育的基因。证明了这些因子与 Otx2、Hesx1 和 Sox2 基因增强子的直接相互作用。因此,抑制非 ANP 谱系和促进神经板发育的一系列调节过程决定了 ANP。

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