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Mnb/Dyrk1A orchestrates a transcriptional network at the transition from self-renewing neurogenic progenitors to postmitotic neuronal precursors

机译:MNB / Dyrk1a在从自我更新神经源性祖细胞到后关染的神经元前体的转型中调节转录网络

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The Down syndrome and microcephaly related gene Mnb/Dyrk1A encodes an evolutionary conserved protein kinase subfamily that plays important roles in neurodevelopment. minibrain (mnb) mutants of Drosophila melanogaster (Dm) exhibit reduced adult brains due to neuronal deficits generated during larval development. These deficits are the consequence of the apoptotic cell death of numerous neuronal precursors that fail to properly exit the cell cycle and differentiate. We have recently found that in both the Dm larval brain and the embryonic vertebrate central nervous system (CNS), a transient expression of Mnb/Dyrk1A promotes the cell cycle exit of newborn neuronal precursors by upregulating the expression of the cyclin-dependent kinase inhibitor p27kip1 (called Dacapo in Dm). In the larval brain, Mnb performs this action by regulating the expression of three transcription factors, Asense (Ase), Deadpan (Dpn) and Prospero (Pros), which are key regulators of the self-renewal, proliferation, and terminal differentiation of neural progenitor cells. We have here studied in detail the cellular/temporal expression pattern of Ase, Dpn, Pros and Mnb, and have analyzed possible regulatory effects among them at the transitions from neurogenic progenitors to postmitotic neuronal precursors in the Dm larval brain. The emerging picture of this analysis reveals an intricate regulatory network in which Mnb appears to play a pivotal role helping to delineate the dynamics of the expression patterns of Ase, Dpn and Pros, as well as their specific functions in the aforementioned transitions. Our results also show that Ase, Dpn and Pros perform several cross-regulatory actions and contribute to shape the precise cellular/temporal expression pattern of Mnb. We propose that Mnb/Dyrk1A plays a central role in CNS neurogenesis by integrating molecular mechanisms that regulate progenitor self-renewal, cell cycle progression and neuronal differentiation.
机译:唐氏综合征和微头相关基因Mnb / dyrk1a编码进化保守的蛋白激酶亚类,其在神经发育中起重要作用。由于在幼虫发育期间产生的神经元缺陷,果蝇(DM)的纤维杆菌(MNB)突变体表现出降低的成人大脑。这些缺陷是许多神经元前体的凋亡细胞死亡的结果,其未能正确地离开细胞周期并分化。我们最近发现,在DM幼虫脑和胚胎脊椎动物中枢神经系统(CNS)中,通过上调细胞周期蛋白依赖性激酶抑制剂P27KIP1的表达,MnB / Dyrk1a的瞬时表达促进新生儿神经元前体的细胞周期出口(称为DM中的DACAPO)。在幼虫大脑中,MNB通过调节三种转录因素,assense(ASE),Deadpan(DPN)和Prospero(专业人士)的表达来执行这一行动,这是神经的自我更新,增殖和末端分化的关键监管机构祖细胞。我们这里详细研究了ASE,DPN,PROS和MnB的细胞/时间表情模式,并在神经源性祖细胞的过渡到DM幼虫脑中的后脑后神经元前体进行了可能的调节作用。该分析的新兴图片揭示了一个复杂的监管网络,其中MNB似乎在有助于描绘ASE,DPN和专业人员的表达模式的动态,以及它们在上述过渡中的特定功能的枢转作用。我们的结果还表明,ASE,DPN和Prus执行了几种跨调控作用,并有助于塑造MNB的精确细胞/时间表达模式。我们提出通过将调节祖细胞自我更新,细胞周期进展和神经元分化的分子机制相容,MNB / Dyrk1a在CNS神经发生中起着核心作用。

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