NG2 and Olig2 Expression Provides Evidence for Phenotypic Deregulation of Cultured Central Nervous System and Peripheral Nervous System Neural Precursor Cells

奥利格2 生物 神经球 神经干细胞 细胞生物学 胚胎干细胞 再髓鞘化 中枢神经系统 前体细胞 谱系标记 表皮生长因子 少突胶质细胞 免疫学 干细胞 神经科学 细胞培养 细胞 祖细胞 成体干细胞 髓鞘 遗传学 基因
作者
Cécile Dromard,Sylvain Bartolami,Loic P. Deleyrolle,Hirohide Takebayashi,Chantal Ripoll,Lionel Simonneau,Sylvie Prome,Sylvie Puech,Christophe Tran Van Ba,Christophe Duperray,Jean Valmier,Alain Privat,Jean‐Philippe Hugnot
出处
期刊:Stem Cells [Oxford University Press]
卷期号:25 (2): 340-353 被引量:48
标识
DOI:10.1634/stemcells.2005-0556
摘要

Abstract Neural stem cells cultured with fibroblast growth factor 2 (FGF2)/epidermal growth factor (EGF) generate clonal expansions called neurospheres (NS), which are widely used for therapy in animal models. However, their cellular composition is still poorly defined. Here, we report that NS derived from several embryonic and adult central nervous system (CNS) regions are composed mainly of remarkable cells coexpressing radial glia markers (BLBP, RC2, GLAST), oligodendrogenic/neurogenic factors (Mash1, Olig2, Nkx2.2), and markers that in vivo are typical of the oligodendrocyte lineage (NG2, A2B5, PDGFR-α). On NS differentiation, the latter remain mostly expressed in neurons, together with Olig2 and Mash1. Using cytometry, we show that in growing NS the small population of multipotential self-renewing NS-forming cells are A2B5+ and NG2+. Additionally, we demonstrate that these NS-forming cells in the embryonic spinal cord were initially NG2− and rapidly acquired NG2 in vitro. NG2 and Olig2 were found to be rapidly induced by cell culture conditions in spinal cord neural precursor cells. Olig2 expression was also induced in astrocytes and embryonic peripheral nervous system (PNS) cells in culture after EGF/FGF treatment. These data provide new evidence for profound phenotypic modifications in CNS and PNS neural precursor cells induced by culture conditions.

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