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通过诱导 NOTCH 信号通路,可增强由 PiggyBac 转座子诱导的多能干细胞向明确神经干细胞的生成。

The generation of definitive neural stem cells from PiggyBac transposon-induced pluripotent stem cells can be enhanced by induction of the NOTCH signaling pathway.

机构信息

Division of Genetics and Development, Toronto Western Research Institute, Toronto, Canada.

出版信息

Stem Cells Dev. 2013 Feb 1;22(3):383-96. doi: 10.1089/scd.2012.0218. Epub 2012 Sep 17.

Abstract

Cell-based therapies using neural stem cells (NSCs) have shown positive outcomes in various models of neurological injury and disease. Induced pluripotent stem cells (iPSCs) address many problems associated with NSCs from various sources, including the immune response and cell availability. However, due to inherent differences between embryonic stem cells (ESCs) and iPSCs, detailed characterization of the iPS-derived NSCs will be required before translational experiments can be performed. Murine piggyBac transposon iPSCs were clonally expanded in floating sphere colonies to generate primitive NSCs initially with serum-free media (SFM) containing the leukemia inhibitory factor and followed by SFM with the fibroblast growth factor-2 (FGF2) to form colonies of definitive NSCs (dNSCs). Primitive and definitive clonally derived neurospheres were successfully generated using the default conditions from iPSCs and ESCs. However, the iPSC-dNSCs expressed significantly higher levels of pluripotency and nonectoderm lineage genes compared to equivalent ESC-dNSCs. The addition of the bone morphogenetic proteins antagonist, Noggin, to the media significantly increased primary neurosphere generation from the iPSC lines, but did not affect the dNSC sphere colonies generated. The induction of the NOTCH pathway by the Delta-like ligand 4 (DLL4) improved the generation and quality of dNSCs, as demonstrated by a reduction in pluripotency and nonectodermal markers, while maintaining NSC-specific gene expression. The iPS-dNSCs (+DLL4) showed functional neural differentiation by immuncytochemical staining and electrophysiology. This study suggests the intrinsic differences between ESCs and iPSCs in their ability to acquire a dNSC fate that can be overcome by inducing the NOTCH pathway.

摘要

基于神经干细胞(NSCs)的细胞疗法在多种神经损伤和疾病模型中显示出积极的结果。诱导多能干细胞(iPSCs)解决了来自不同来源的 NSCs 相关的许多问题,包括免疫反应和细胞可用性。然而,由于胚胎干细胞(ESCs)和 iPSCs 之间存在固有差异,在进行转化实验之前,需要对 iPS 衍生的 NSCs 进行详细的特征描述。使用无血清培养基(SFM)中的白血病抑制因子和随后的成纤维细胞生长因子-2(FGF2)在悬浮球培养物中对鼠源 piggyBac 转座子 iPSCs 进行克隆扩增,最初生成原始 NSCs(PSCs),随后生成明确的 NSCs(dNSCs)。使用 iPSCs 和 ESCs 的默认条件成功生成了原始和明确的克隆衍生神经球。然而,与等效的 ESC-dNSCs 相比,iPSC-dNSCs 表达了更高水平的多能性和非外胚层谱系基因。将骨形态发生蛋白拮抗剂 Noggin 添加到培养基中可显著增加 iPSC 系的初级神经球生成,但不影响生成的 dNSC 球集落。Delta 样配体 4(DLL4)诱导 NOTCH 通路可改善 dNSC 的生成和质量,如减少多能性和非外胚层标志物所示,同时维持 NSC 特异性基因表达。通过免疫细胞化学染色和电生理学证实,iPS-dNSCs(+DLL4)显示出功能性神经分化。这项研究表明 ESCs 和 iPSCs 之间在获得 dNSC 命运的能力方面存在内在差异,这种差异可以通过诱导 NOTCH 通路来克服。

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