Identification of therapeutic targets for glioblastoma by network analysis

被引:0
|
作者
D Friedmann-Morvinski
V Bhargava
S Gupta
I M Verma
S Subramaniam
机构
[1] Laboratory of Genetics,Department of Biochemistry and Molecular Biology
[2] The Salk Institute for Biological Studies,Department of Bioengineering
[3] George S. Wise Faculty of Life Sciences,Department of Cellular and Molecular Medicine and Department of Chemistry and Biochemistry
[4] Tel Aviv University,undefined
[5] Bioinformatics and Systems Biology Graduate Program,undefined
[6] University of California at San Diego,undefined
[7] University of California at San Diego,undefined
[8] University of California San Diego,undefined
来源
Oncogene | 2016年 / 35卷
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摘要
Glioblastoma can originate from terminally differentiated astrocytes and neurons, which can dedifferentiate to a stem cell-like state upon transformation. In this study, we confirmed that transformed dedifferentiated astrocytes and neurons acquired a stem/progenitor cell state, although they still retained gene expression memory from their parental cell. Transcriptional network analysis on these cells identified upregulated genes in three main pathways: Wnt signaling, cell cycle and focal adhesion with the gene Spp1, also known as osteopontin (OPN) serving as a key common node connecting these three pathways. Inhibition of OPN blocked the formation of neurospheres, affected the proliferative capacity of transformed neurons and reduced the expression levels of neural stem cell markers. Specific inhibition of OPN in both murine and human glioma tumors prolonged mice survival. We conclude that OPN is an important player in dedifferentiation of cells during tumor formation, hence its inhibition can be a therapeutic target for glioblastoma.
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页码:608 / 620
页数:12
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