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可溶性锯齿蛋白1减弱侧向抑制,从而允许神经嵴干细胞进行克隆性扩增。

Soluble Jagged1 attenuates lateral inhibition, allowing for the clonal expansion of neural crest stem cells.

作者信息

Nikopoulos George N, Duarte Maria, Kubu Chris J, Bellum Stephen, Friesel Robert, Maciag Thomas, Prudovsky Igor, Verdi Joseph M

机构信息

Interdisciplinary Program in Molecular Genetics and Cell Biology, University of Maine, Orono, Maine, USA.

出版信息

Stem Cells. 2007 Dec;25(12):3133-42. doi: 10.1634/stemcells.2007-0327. Epub 2007 Aug 30.

Abstract

The activation of Notch signaling in neural crest stem cells (NCSCs) results in the rapid loss of neurogenic potential and differentiation into glia. We now show that the attenuation of endogenous Notch signaling within expanding NCSC clones by the Notch ligand soluble Jagged1 (sJ1), maintains NCSCs in a clonal self-renewing state in vitro without affecting their sensitivity to instructive differentiation signals observed previously during NCSC self-renewal. sJ1 functions as a competitive inhibitor of Notch signaling to modulate endogenous cell-cell communication to levels sufficient to inhibit neural differentiation but insufficient to instruct gliogenic differentiation. Attenuated Notch signaling promotes the induction and nonclassic release of fibroblast growth factor 1 (FGF1). The functions of sJ1 and FGF1 signaling are complementary, as abrogation of FGF signaling diminishes the ability of sJ1 to promote NCSC expansion, yet the secondary NCSCs maintain the dosage sensitivity of the founder. These results validate and build upon previous studies on the role of Notch signaling in stem cell self-renewal and suggest that the differentiation bias or self-renewal potential of NCSCs is intrinsically linked to the level of endogenous Notch signaling. This should provide a unique opportunity for the expansion of NCSCs ex vivo without altering their differentiation bias for clinical cell replacement or transplant strategies in tissue repair. Disclosure of potential conflicts of interest is found at the end of this article.

摘要

神经嵴干细胞(NCSCs)中Notch信号的激活会导致神经发生潜能迅速丧失并分化为神经胶质细胞。我们现在表明,通过Notch配体可溶性Jagged1(sJ1)减弱正在扩增的NCSC克隆内的内源性Notch信号,可使NCSCs在体外维持克隆性自我更新状态,而不会影响它们对先前在NCSC自我更新过程中观察到的诱导性分化信号的敏感性。sJ1作为Notch信号的竞争性抑制剂,将内源性细胞间通讯调节到足以抑制神经分化但不足以诱导胶质细胞分化的水平。减弱的Notch信号促进成纤维细胞生长因子1(FGF1)的诱导和非经典释放。sJ1和FGF1信号的功能是互补的,因为FGF信号的消除会削弱sJ1促进NCSC扩增的能力,但第二代NCSCs保持了原始细胞的剂量敏感性。这些结果验证并拓展了先前关于Notch信号在干细胞自我更新中作用的研究,并表明NCSCs的分化偏向或自我更新潜能与内源性Notch信号水平内在相关。这应该为在体外扩增NCSCs提供一个独特的机会,而不会改变它们在临床细胞替代或组织修复移植策略中的分化偏向。潜在利益冲突的披露见本文末尾。

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