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首页> 外文期刊>Brain research >Manipulating Wnt signaling at different subcellular levels affects the fate of neonatal neural stem/progenitor cells
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Manipulating Wnt signaling at different subcellular levels affects the fate of neonatal neural stem/progenitor cells

机译:在不同亚细胞水平下操纵WNT信号传导影响新生儿神经茎/祖细胞的命运

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摘要

The canonical Wnt signaling pathway plays an important role in embryogenesis, and the establishment of neurogenic niches. It is involved in proliferation and differentiation of neural progenitors, since elevated Wnt/beta-catenin signaling promotes differentiation of neural stem/progenitor cells (NS/PCs1) towards neuroblasts. Nevertheless, it remains elusive how the differentiation program of neural progenitors is influenced by the Wnt signaling output. Using transgenic mouse models, we found that in vitro activation of Wnt signaling resulted in higher expression of beta-catenin protein and Wnt/beta-catenin target genes, while Wnt signaling inhibition resulted in the reverse effect. Within differentiated cells, we identified three electrophysiologically and immunocytochemically distinct cell types, whose incidence was markedly affected by the Wnt signaling output. Activation of the pathway suppressed gliogenesis, and promoted differentiation of NS/PCs towards a neuronal phenotype, while its inhibition led to suppressed neurogenesis and increased counts of cells of glial phenotype. Moreover, Wnt signaling hyper-activation resulted in an increased incidence of cells expressing outwardly rectifying K+ currents, together with inwardly rectifying Na+ currents, a typical current pattern of immature neurons, while blocking the pathway led to the opposite effect. Taken together, our data indicate that the Wnt signaling pathway orchestrates neonatal NS/PCs differentiation towards cells with neuronal characteristics, which might be important for nervous tissue regeneration during central nervous system disorders. Furthermore, the transgenic mouse strains used in this study may serve as a convenient tool to manipulate beta-catenin-dependent signaling in neural progenitors in the neonatal brain. (C) 2016 Elsevier B.V. All rights reserved.
机译:规范WNT信号传导途径在胚胎发生中起重要作用,并建立了神经源性的核心。它涉及神经祖细胞的增殖和分化,因为升高的Wnt /β-连环蛋白信号传导促进神经茎/祖细胞(Ns / PCS1)朝向神经细胞的分化。然而,它仍然难以捉摸神经祖细胞引发器的分化计划受到WNT信号输出的影响。使用转基因小鼠模型,我们发现WNT信号传导的体外激活导致β-连环蛋白蛋白和Wnt /β-连环蛋白靶基因的表达更高,而Wnt信号传导抑制导致逆转效果。在分化的细胞内,我们鉴定了三种电生理学和免疫细胞化学上明显的细胞类型,其发病率明显受到WNT信号传导输出的影响。途径的激活抑制了胶质发生,并促进了NS / PC朝向神经元表型的分化,而其抑制导致抑制神经发生和胶质表型细胞的增加。此外,WNT信号传导超激活导致细胞的发生率增加,所述细胞的发病率增加,与向内整流Na +电流,典型的未固化神经元的典型电流模式,同时阻挡路径导致相反的效果。我们的数据结合在一起,表明WNT信号通路核对具有神经元特征的细胞对新生儿NS / PC的分化,这对于中枢神经系统疾病期间的神经组织再生可能是重要的。此外,本研究中使用的转基因小鼠菌株可以作为操纵新生儿脑中的神经祖细胞中的β-连环蛋白依赖性信号传导的方便工具。 (c)2016年Elsevier B.v.保留所有权利。

著录项

  • 来源
    《Brain research 》 |2016年第null期| 共15页
  • 作者单位

    Acad Sci Czech Republic Inst Expt Med Videnska 1083 Prague 14220 4 Czech Republic;

    Acad Sci Czech Republic Inst Expt Med Videnska 1083 Prague 14220 4 Czech Republic;

    Acad Sci Czech Republic Inst Expt Med Videnska 1083 Prague 14220 4 Czech Republic;

    Acad Sci Czech Republic Inst Expt Med Videnska 1083 Prague 14220 4 Czech Republic;

    Acad Sci Czech Republic Inst Expt Med Videnska 1083 Prague 14220 4 Czech Republic;

    Acad Sci Czech Republic Inst Expt Med Videnska 1083 Prague 14220 4 Czech Republic;

    Acad Sci Czech Republic Inst Mol Genet Videnska 1083 Prague 14220 4 Czech Republic;

    Acad Sci Czech Republic Inst Mol Genet Videnska 1083 Prague 14220 4 Czech Republic;

    Acad Sci Czech Republic Inst Mol Genet Videnska 1083 Prague 14220 4 Czech Republic;

    Kyoto Univ Grad Sch Med Dept Pharmacol Sakyo Ku Yoshida Konoe Cho Kyoto 6068501 Japan;

    Acad Sci Czech Republic Inst Expt Med Videnska 1083 Prague 14220 4 Czech Republic;

    Acad Sci Czech Republic Inst Expt Med Videnska 1083 Prague 14220 4 Czech Republic;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 神经病学 ;
  • 关键词

    beta-catenin signaling; Neonatal mouse; Neurogenesis; Gliogenesis; Patch-clamp technique; Ion channel;

    机译:β-catenin信号传导;新生儿小鼠;神经发生;胶质发生;贴片技术;离子通道;

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