首页> 外文期刊>Journal of proteome research >Quantitative proteomic analysis of membrane proteins involved in astroglial differentiation of neural stem cells by SILAC labeling coupled with LC-MS/MS
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Quantitative proteomic analysis of membrane proteins involved in astroglial differentiation of neural stem cells by SILAC labeling coupled with LC-MS/MS

机译:SILAC标记结合LC-MS / MS对参与神经干细胞星形胶质细胞分化的膜蛋白进行定量蛋白质组学分析

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Membrane proteins play a critical role in the process of neural stem cell self-renewal and differentiation. Here, we apply the SILAC (stable isotope labeling by amino acids in cell culture) approach to quantitatively compare the membrane proteome of the self-renewing and the astroglial differentiating cells. High-resolution analysis on a linear ion trap-Orbitrap instrument (LTQ-Orbitrap) at sub-ppm mass accuracy resulted in confident identification and quantitation of more than 700 distinct membrane proteins during the astroglial differentiation. Of the 735 quantified proteins, seven cell surface proteins display significantly higher expression levels in the undifferentiated state membrane compared to astroglial differentiating membrane. One cell surface protein transferrin receptor protein 1 may serve as a new candidate for NSCs surface markers. Functional clustering of differentially expressed proteins by Ingenuity Pathway Analysis revealed that most of overexpressed membrane proteins in the astroglial differentiation neural stem cells are involved in cellular growth, nervous system development, and energy metabolic pathway. Taken together, this study increases our understanding of the underlying mechanisms that modulate complex biological processes of neural stem cell proliferation and differentiation.
机译:膜蛋白在神经干细胞的自我更新和分化过程中起着至关重要的作用。在这里,我们应用SILAC(细胞培养物中氨基酸的稳定同位素标记)方法来定量比较自我更新细胞和星形胶质细胞的膜蛋白质组。使用线性离子阱Orbitrap仪器(LTQ-Orbitrap)进行亚ppm质量精度的高分辨率分析,可以可靠地鉴定和定量星形胶质细胞分化过程中的700多种不同的膜蛋白。在735种定量蛋白中,与星形胶质细胞分化膜相比,七种细胞表面蛋白在未分化状态膜中的表达水平明显更高。一种细胞表面蛋白转铁蛋白受体蛋白1可以作为NSCs表面标志物的新候选者。通过“机能路径分析”对差异表达的蛋白质进行功能性聚类发现,星形胶质分化神经干细胞中大多数过表达的膜蛋白都参与细胞生长,神经系统发育和能量代谢途径。两者合计,这项研究增加了我们对调节神经干细胞增殖和分化的复杂生物学过程的潜在机制的理解。

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