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Cannabidiol converts NF-κB into a tumor suppressor in glioblastoma with defined antioxidative properties
Marie N M Volmar1, Jiying Cheng1, Haitham Alenezi1
1Neurosurgical Research, Department of Neurosurgery, University Hospital, LMU Munich, Munich, Germany.
Background:
The transcription factor NF-κB drives neoplastic progression of many cancers including primary brain tumors (glioblastoma [GBM]). Precise therapeutic modulation of NF-κB activity can suppress central oncogenic signaling pathways in GBM, but clinically applicable compounds to achieve this goal have remained elusive.
Methods:
In a pharmacogenomics study with a panel of transgenic glioma cells, we observed that NF-κB can be converted into a tumor suppressor by the non-psychotropic cannabinoid cannabidiol (CBD). Subsequently, we investigated the anti-tumor effects of CBD, which is used as an anticonvulsive drug (Epidiolex) in pediatric neurology, in a larger set of human primary GBM stem-like cells (hGSC). For this study, we performed pharmacological assays, gene expression profiling, biochemical, and cell-biological experiments. We validated our findings using orthotopic in vivo models and bioinformatics analysis of human GBM datasets.
Results:
We found that CBD promotes DNA binding of the NF-κB subunit RELA and simultaneously prevents RELA phosphorylation on serine-311, a key residue that permits genetic transactivation. Strikingly, sustained DNA binding by RELA-lacking phospho-serine 311 was found to mediate hGSC cytotoxicity. Widespread sensitivity to CBD was observed in a cohort of hGSC defined by low levels of reactive oxygen species (ROS), while high ROS content in other tumors blocked CBD-induced hGSC death. Consequently, ROS levels served as a predictive biomarker for CBD-sensitive tumors.
Conclusions:
This evidence demonstrates how a clinically approved drug can convert NF-κB into a tumor suppressor and suggests a promising repurposing option for GBM therapy.
Insights
Cannabidiol (CBD) converts the NF-κB protein into a tumor suppressor in glioblastoma (GBM). This repurposed drug shows promise for GBM therapy, with reactive oxygen species levels predicting patient response.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Nuclear factor kappa B (NF-κB) signaling drives glioblastoma (GBM) progression.
- Targeting NF-κB is crucial for GBM therapy, but effective clinical compounds are lacking.
Purpose of the Study:
- To investigate the anti-tumor effects of cannabidiol (CBD) on human primary GBM stem-like cells (hGSC).
- To explore CBD's mechanism of action in modulating NF-κB activity in GBM.
Main Methods:
- Pharmacogenomics screening, pharmacological assays, gene expression profiling, and biochemical experiments.
- In vivo orthotopic models and bioinformatics analysis of human GBM datasets.
- Investigated CBD's effects on NF-κB subunit RELA DNA binding and phosphorylation.
Main Results:
- CBD promotes NF-κB RELA DNA binding while preventing inhibitory phosphorylation.
- Sustained DNA binding of non-phosphorylated RELA induces hGSC cytotoxicity.
- Tumor sensitivity to CBD correlates with low reactive oxygen species (ROS) levels, identifying ROS as a predictive biomarker.
Conclusions:
- Cannabidiol (CBD) can functionally convert NF-κB into a tumor suppressor in glioblastoma.
- CBD represents a promising therapeutic repurposing strategy for GBM treatment.
- Reactive oxygen species (ROS) levels can predict patient response to CBD therapy.
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