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Updated: Jan 30, 2026

Detection of Small GTPase Prenylation and GTP Binding Using Membrane Fractionation and GTPase-linked Immunosorbent Assay
Published on: November 11, 2018
Functional Blockade of Small GTPase RAN Inhibits Glioblastoma Cell Viability
Kevin L Sheng1, Kevin J Pridham1, Zhi Sheng1,2,3,4,5
1Fralin Biomedical Research Institute at VTC, Roanoke, VA, United States.
Abstract:
Glioblastoma, the most common malignant tumor in the brain, lacks effective treatments and is currently incurable. To identify novel drug targets for this deadly cancer, the publicly available results of RNA interference screens from the Project Achilles database were analyzed. Ten candidate genes were identified as survival genes in 15 glioblastoma cell lines. RAN, member RAS oncogene family (RAN) was expressed in glioblastoma at the highest level among all candidates based upon cDNA microarray data. However, Kaplan-Meier survival analysis did not show any correlation between RAN mRNA levels and patient survival. Because RAN is a small GTPase that regulates nuclear transport controlled by karyopherin subunit beta 1 (KPNB1), RAN was further analyzed together with KPNB1. Indeed, GBM patients with high levels of RAN also had more KPNB1 and levels of KPNB1 alone did not relate to patient prognosis. Through a Cox multivariate analysis, GBM patients with high levels of RAN and KPNB1 showed significantly shorter life expectancy when temozolomide and promoter methylation of O6-methylguanine DNA methyltransferase were used as covariates. These results indicate that RAN and KPNB1 together are associated with drug resistance and GBM poor prognosis. Furthermore, the functional blockade of RAN and KPNB1 by importazole remarkably suppressed cell viability and activated apoptosis in GBM cells expressing high levels of RAN, while having a limited effect on astrocytes and GBM cells with undetectable RAN. Together, our results demonstrate that RAN activity is important for GBM survival and the functional blockade of RAN/KPNB1 is an appealing therapeutic approach.
Insights
Novel drug targets for glioblastoma (GBM) were identified. High levels of RAN and KPNB1 indicate poor prognosis and drug resistance, suggesting importazole as a potential GBM therapeutic approach.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Glioblastoma (GBM) is an aggressive brain cancer with limited treatment options.
- Identifying novel therapeutic targets is crucial for improving patient outcomes.
- RNA interference screens can uncover genes critical for cancer cell survival.
Purpose of the Study:
- To identify novel drug targets for glioblastoma.
- To investigate the role of RAN and KPNB1 in GBM progression and drug resistance.
Main Methods:
- Analysis of RNA interference screening data from Project Achilles.
- Expression analysis using cDNA microarray and Kaplan-Meier survival analysis.
- Cox multivariate analysis and functional blockade experiments with importazole.
Main Results:
- Ten candidate survival genes were identified in GBM cell lines, with RAN showing the highest expression.
- High RAN and KPNB1 levels correlated with shorter patient survival and drug resistance.
- Importazole suppressed GBM cell viability and induced apoptosis in cells with high RAN expression.
Conclusions:
- RAN and KPNB1 are associated with poor prognosis and drug resistance in glioblastoma.
- Targeting the RAN/KPNB1 interaction with importazole presents a promising therapeutic strategy for GBM.
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