Notch1 is a prognostic factor that is distinctly activated in the classical and proneural subtype of glioblastoma and that promotes glioma cell survival via the NF-κB(p65) pathway

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作者
Long Hai
Chen Zhang
Tao Li
Xingchen Zhou
Bo Liu
Shuai Li
Meng Zhu
Yu Lin
Shengping Yu
Kai Zhang
Bingcheng Ren
Haolang Ming
Yubao Huang
Lei Chen
Pengfei Zhao
Hua Zhou
Tao Jiang
Xuejun Yang
机构
[1] Tianjin Medical University General Hospital,Department of Neurosurgery
[2] Tianjin Neurological Institute,Laboratory of Neuro
[3] Ministry of Education,Oncology
[4] Variations and Regeneration of Nervous System,Key Laboratory of Post
[5] Chinese Glioma Cooperative Group (CGCG),Trauma Neuro
[6] The University of Texas MD Anderson Cancer Center,Repair and Regeneration in Central Nervous System
[7] The Affliated Hospital of Qingdao University,Tianjin Key Laboratory of Injuries
[8] Capital Medical University,Department of Neuro
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摘要
Glioblastomas (GBMs) are the most prevalent and devastating primary intracranial malignancies and have extensive heterogeneity. Notch1 signaling is a more complex process in the development of numerous cell and tissue types, including gliomagenesis and progression, and is upregulated in glioma-initiating cells. However, the contradictory expression of Notch1 among lower grade gliomas and GBMs confounds our understanding of GBM biology and has made identifying effective therapies difficult. In this study, we validated that Notch1 and NF-κB(p65) are highly expressed in the classical and proneural subtypes of GBM using the data set from The Cancer Genome Atlas (TCGA) and the Chinese Glioma Genome Atlas (CGGA). DAPT and shRNA targeting Notch1 decreased NF-κB(p65) expression, suppressed cell proliferation, and induced apoptosis of GBM cells in vitro and in vivo. Furthermore, we illustrated that the intracellular Notch could bind with NF-κB(p65) in GBM cells. These findings suggest that the cross-talk between Notch1 signaling and NF-κB(p65) could contribute to the proliferation and apoptosis of glioma, and this discovery could help drive the design of more effective therapies in Notch1-targeted clinical trials.
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