Tcf7L2对于发育中的小鼠新皮层的神经发生至关重要。

IF 4 3区 生物学 Q1 DEVELOPMENTAL BIOLOGY Neural Development Pub Date : 2018-05-11 DOI:10.1186/s13064-018-0107-8
Olga Chodelkova, Jan Masek, Vladimir Korinek, Zbynek Kozmik, Ondrej Machon
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引用次数: 28

摘要

胚胎新皮层神经元的生成是一个神经元祖细胞增殖分化的平衡过程。典型Wnt信号对于脑室区放射状胶质细胞的扩张和脑室下区中间祖细胞的分化至关重要。我们检测到两种介导典型Wnt信号传导的转录因子Tcf7L1和Tcf7L2在胚胎新皮层的心室区大量表达。条件敲除分析表明,Tcf7L2而非Tcf7L1是维持心室区祖细胞身份的主要Wnt介质。在缺乏Tcf7L2的情况下,Wnt活性降低,心室区标记物Pax6和Sox2下调,神经上皮结构由于顶端粘附连接的丧失而被切断。这导致放射状胶质细胞增殖减少,室下区中间祖细胞数量减少和前脑发育不全。我们的数据表明,典型的Wnt信号是由Tcf7L2介导的,这对于确定新皮质心室区的神经上皮特征至关重要。
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Tcf7L2 is essential for neurogenesis in the developing mouse neocortex.

Generation of neurons in the embryonic neocortex is a balanced process of proliferation and differentiation of neuronal progenitor cells. Canonical Wnt signalling is crucial for expansion of radial glial cells in the ventricular zone and for differentiation of intermediate progenitors in the subventricular zone. We detected abundant expression of two transcrtiption factors mediating canonical Wnt signalling, Tcf7L1 and Tcf7L2, in the ventricular zone of the embryonic neocortex. Conditional knock-out analysis showed that Tcf7L2, but not Tcf7L1, is the principal Wnt mediator important for maintenance of progenitor cell identity in the ventricular zone. In the absence of Tcf7L2, the Wnt activity is reduced, ventricular zone markers Pax6 and Sox2 are downregulated and the neuroepithelial structure is severed due to the loss of apical adherens junctions. This results in decreased proliferation of radial glial cells, the reduced number of intermediate progenitors in the subventricular zone and hypoplastic forebrain. Our data show that canonical Wnt signalling, which is essential for determining the neuroepithelial character of the neocortical ventricular zone, is mediated by Tcf7L2.

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来源期刊
Neural Development
Neural Development 生物-发育生物学
CiteScore
6.60
自引率
0.00%
发文量
11
审稿时长
>12 weeks
期刊介绍: Neural Development is a peer-reviewed open access, online journal, which features studies that use molecular, cellular, physiological or behavioral methods to provide novel insights into the mechanisms that underlie the formation of the nervous system. Neural Development aims to discover how the nervous system arises and acquires the abilities to sense the world and control adaptive motor output. The field includes analysis of how progenitor cells form a nervous system during embryogenesis, and how the initially formed neural circuits are shaped by experience during early postnatal life. Some studies use well-established, genetically accessible model systems, but valuable insights are also obtained from less traditional models that provide behavioral or evolutionary insights.
期刊最新文献
Correction: Embryonic development of a centralised brain in coleoid cephalopods. Terminal differentiation precedes functional circuit integration in the peduncle neurons in regenerating Hydra vulgaris. Mapping the cellular expression patterns of vascular endothelial growth factor aa and bb genes and their receptors in the adult zebrafish brain during constitutive and regenerative neurogenesis LRRK2 kinase activity is necessary for development and regeneration in Nematostella vectensis. Correction: scMultiome analysis identifies a single caudal hindbrain compartment in the developing zebrafish nervous system
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