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Published on: October 20, 2016
Smac mimetic promotes glioblastoma cancer stem-like cell differentiation by activating NF-κB
A Tchoghandjian1, C Jennewein1, I Eckhardt1
1Institute for Experimental Cancer Research in Pediatrics, Goethe-University, Komturstrasse 3a, Frankfurt, Germany.
Abstract:
Recently, a broader role of inhibitor of apoptosis (IAP) proteins besides their antiapoptotic functions has been described. Therefore, we investigated the effect of non-toxic concentrations of the small-molecule Smac mimetic BV6, which antagonizes IAP proteins, on differentiation of cancer stem-like cells (CSLCs) derived from primary glioblastoma (GBM) specimens. Here, we identify a novel function of BV6 in regulating differentiation of GBM CSLCs by activating NF-κB. BV6 at non-lethal doses stimulates morphological changes associated with the differentiation of GBM CSLCs. BV6 increases transcriptional activity, mRNA and protein levels of the astrocytic marker GFAP without altering expression of the neuronal marker β-III-tubulin, indicating that BV6 induces astrocytic differentiation of GBM CSLCs. Molecular studies reveal that BV6 triggers processing of the NF-κB subunit p100 to p52, nuclear translocation of p52 and p50 and increased NF-κB DNA-binding. Intriguingly, inhibition of NF-κB by overexpression of dominant-negative IκBα super-repressor (IκBα-SR) blocks the BV6-stimulated increase in GFAP and differentiation. Interestingly, this BV6-stimulated differentiation is associated with reduced expression of stemness markers such as CD133, Nanog and Sox2 in GBM CSLCs. In contrast, BV6 does not alter cell morphology, differentiation and expression of stemness markers in non-malignant neural stem cells. Importantly, BV6 treatment reduces clonogenicity of GBM CSLCs in vitro and in vivo, suppresses their tumorigenicity in orthotopic and subcutaneous mouse models and significantly increases the survival of mice. By identifying a novel role of BV6 in promoting differentiation of GBM CSLCs, these findings provide new insights into Smac mimetic-regulated non-apoptotic functions with important implications for targeting GBM CSLCs.
Insights
The small-molecule Smac mimetic BV6 promotes differentiation of glioblastoma cancer stem-like cells (CSLCs) by activating NF-κB. This BV6-induced differentiation reduces tumor growth and improves survival in mouse models.
Area of Science:
- Oncology
- Cell Biology
- Neuroscience
Background:
- Inhibitor of apoptosis (IAP) proteins have functions beyond anti-apoptosis.
- Cancer stem-like cells (CSLCs) drive glioblastoma (GBM) tumor growth.
- Smac mimetics antagonize IAP proteins.
Purpose of the Study:
- Investigate the effect of Smac mimetic BV6 on GBM CSLC differentiation.
- Determine the molecular mechanisms underlying BV6's action.
- Evaluate BV6's therapeutic potential against GBM.
Main Methods:
- Treatment of GBM CSLCs with BV6 at non-toxic concentrations.
- Assessment of cell morphology and differentiation markers (GFAP, β-III-tubulin).
- Analysis of NF-κB pathway activation (p100 processing, p52/p50 translocation, DNA-binding).
- Inhibition of NF-κB using dominant-negative IκBα-SR.
- Evaluation of stemness markers (CD133, Nanog, Sox2).
- In vitro and in vivo assays for clonogenicity and tumorigenicity.
- Assessment of mouse survival.
Main Results:
- BV6 induces morphological differentiation of GBM CSLCs towards an astrocytic lineage (increased GFAP, unchanged β-III-tubulin).
- BV6 activates the NF-κB pathway, evidenced by p100 to p52 processing and nuclear translocation of p52/p50.
- NF-κB inhibition blocks BV6-induced differentiation.
- BV6 reduces stemness markers (CD133, Nanog, Sox2) in GBM CSLCs but not in normal neural stem cells.
- BV6 treatment decreases GBM CSLC clonogenicity and tumorigenicity in vivo.
- BV6 significantly improves mouse survival.
Conclusions:
- BV6 promotes differentiation of GBM CSLCs via NF-κB activation.
- BV6 effectively targets GBM CSLCs, reducing their stemness and tumorigenic potential.
- BV6 demonstrates therapeutic efficacy in preclinical GBM models, offering a promising strategy for GBM treatment.
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