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Published on: February 16, 2015
Reactive oxygen species-mediated therapeutic response and resistance in glioblastoma
E Singer1, J Judkins1, N Salomonis2
1California Pacific Medical Center Research Institute, San Francisco, CA, USA.
Abstract:
Glioblastoma (GBM) resistance to therapy is the most common cause of tumor recurrence, which is ultimately fatal in 90% of the patients 5 years after initial diagnosis. A sub-population of tumor cells with stem-like properties, glioma stem cells (GSCs), is specifically endowed to resist or adapt to the standard therapies, leading to therapeutic resistance. Several anticancer agents, collectively termed redox therapeutics, act by increasing intracellular levels of reactive oxygen species (ROS). In this study, we investigated mechanisms underlying GSC response and resistance to cannabidiol (CBD), a non-toxic, non-psychoactive cannabinoid and redox modulator. Using primary GSCs, we showed that CBD induced a robust increase in ROS, which led to the inhibition of cell survival, phosphorylated (p)-AKT, self-renewal and a significant increase in the survival of GSC-bearing mice. Inhibition of self-renewal was mediated by the activation of the p-p38 pathway and downregulation of key stem cell regulators Sox2, Id1 and p-STAT3. Following CBD treatment, a subset of GSC successfully adapted, leading to tumor regrowth. Microarray, Taqman and functional assays revealed that therapeutic resistance was mediated by enhanced expression of the antioxidant response system Xc catalytic subunit xCT (SLC7A11 (solute carrier family 7 (anionic amino-acid transporter light chain), member 11)) and ROS-dependent upregulation of mesenchymal (MES) markers with concomitant downregulation of proneural (PN) markers, also known as PN-MES transition. This 'reprogramming' of GSCs occurred in culture and in vivo and was partially due to activation of the NFE2L2 (NRF2 (nuclear factor, erythroid 2-like)) transcriptional network. Using genetic knockdown and pharmacological inhibitors of SLC7A11, we demonstrated that combining CBD treatment with the inhibition of system Xc resulted in synergistic ROS increase leading to robust antitumor effects, that is, decreased GSC survival, self-renewal, and invasion. Our investigation provides novel mechanistic insights into the antitumor activity of redox therapeutics and suggests that combinatorial approaches using small molecule modulators of ROS offer therapeutic benefits in GBM.
Insights
Cannabidiol (CBD) increases reactive oxygen species (ROS) in glioma stem cells (GSCs), inhibiting their survival and self-renewal. Combining CBD with SLC7A11 inhibition enhances this effect, offering a potential therapeutic strategy for glioblastoma.
Area of Science:
- Oncology
- Neuroscience
- Pharmacology
Background:
- Glioblastoma (GBM) recurrence is driven by therapy-resistant glioma stem cells (GSCs).
- Redox therapeutics increase reactive oxygen species (ROS) to combat cancer.
- Cannabidiol (CBD) is a non-psychoactive cannabinoid with redox-modulating properties.
Purpose of the Study:
- To investigate the mechanisms of GSC response and resistance to cannabidiol (CBD).
- To explore the potential of CBD as a redox therapeutic agent against glioblastoma.
Main Methods:
- Utilized primary GSCs to assess CBD's effects on cell survival, self-renewal, and signaling pathways.
- Employed microarray, Taqman, and functional assays to identify mechanisms of resistance.
- Investigated the role of solute carrier family 7 member 11 (SLC7A11) and the NFE2L2 (NRF2) network in CBD resistance.
Main Results:
- CBD induced significant ROS increase, inhibiting GSC survival, self-renewal, and activating the p-p38 pathway.
- Therapeutic resistance in GSCs was mediated by enhanced SLC7A11 expression and a proneural-to-mesenchymal (PN-MES) transition, partly via the NFE2L2 (NRF2) network.
- Combined CBD and SLC7A11 inhibition demonstrated synergistic ROS increase and robust antitumor effects, reducing GSC survival, self-renewal, and invasion.
Conclusions:
- CBD exhibits potent antitumor activity against GSCs by modulating ROS levels and key stem cell regulators.
- Enhanced SLC7A11 expression and PN-MES transition contribute to GSC resistance to CBD.
- Combinatorial therapy targeting both CBD-induced ROS and SLC7A11 offers a promising strategy for glioblastoma treatment.
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