Graduate School of Pharmaceutical Sciences, Nagoya City University, 3-1 Tanabe-dori, Nagoya 467-8603, Japan.
J Biol Chem. 2012 Jul 13;287(29):24356-64. doi: 10.1074/jbc.M112.365643. Epub 2012 May 29.
Neural stem cells (NSCs) possess high proliferative potential and the capacity for self-renewal with retention of multipotency to differentiate into brain-forming cells. Several signaling pathways have been shown to be involved in the fate determination process of NSCs, but the molecular mechanisms underlying the maintenance of neural cell stemness remain largely unknown. Our previous study showed that human natural killer carbohydrate epitopes expressed specifically by mouse NSCs modulate the Ras-MAPK pathway, raising the possibility of regulatory roles of glycoprotein glycans in the specific signaling pathways involved in NSC fate determination. To address this issue, we performed comparative N-glycosylation profiling of NSCs before and after differentiation in a comprehensive and quantitative manner. We found that Lewis X-carrying N-glycans were specifically displayed on undifferentiated cells, whereas pauci-mannose-type N-glycans were predominantly expressed on differentiated cells. Furthermore, by knocking down a fucosyltransferase 9 with short interfering RNA, we demonstrated that the Lewis X-carrying N-glycans were actively involved in the proliferation of NSCs via modulation of the expression level of Musashi-1, which is an activator of the Notch signaling pathway. Our findings suggest that Lewis X carbohydrates, which have so far been characterized as undifferentiation markers, actually operate as activators of the Notch signaling pathway for the maintenance of NSC stemness during brain development.
神经干细胞(NSCs)具有高增殖潜能和自我更新能力,并且保持多能性,能够分化为脑形成细胞。已经有几种信号通路被证明参与了 NSCs 的命运决定过程,但维持神经细胞干性的分子机制在很大程度上仍然未知。我们之前的研究表明,小鼠 NSCs 特异性表达的人类自然杀伤细胞碳水化合物表位调节 Ras-MAPK 通路,这使得糖蛋白聚糖在参与 NSCs 命运决定的特定信号通路中可能具有调节作用。为了解决这个问题,我们以全面和定量的方式对分化前后的 NSCs 进行了比较 N-糖基化谱分析。我们发现,Lewis X 携带的 N-聚糖特异性地表现在未分化的细胞上,而低甘露糖型 N-聚糖主要表达在分化的细胞上。此外,通过用短发夹 RNA 敲低岩藻糖基转移酶 9,我们证明了 Lewis X 携带的 N-聚糖通过调节 Notch 信号通路的激活剂 Musashi-1 的表达水平,积极参与 NSCs 的增殖。我们的研究结果表明,Lewis X 碳水化合物迄今为止被认为是未分化标志物,实际上作为 Notch 信号通路的激活剂,在大脑发育过程中维持 NSCs 的干性。