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Bioluminescence Imaging of an Immunocompetent Animal Model for Glioblastoma
Published on: January 15, 2016
BH3-mimetics and BET-inhibitors elicit enhanced lethality in malignant glioma
Chiaki Tsuge Ishida1, Elena Bianchetti1, Chang Shu1
1Department of Pathology & Cell Biology, Columbia University Medical Center, New York, New York, USA.
Abstract:
Drug combination therapies remain pivotal for the treatment of heterogeneous malignancies, such as glioblastomas. Here, we show a novel lethal interaction between Bcl-xL and c-myc inhibition accomplished by bromodomain protein inhibitors. Established, patient-derived xenograft and stem cell-like glioma cells were treated with the novel bromodomain protein inhibitors, JQ1 and OTX015, along with BH3-mimetics, ABT263 or Obatoclax. Synergy was assessed by calculation of CI values. Small interfering RNAs (siRNAs) were used for gene silencing and mechanistic studies. In vivo experiments were performed in a glioblastoma xenograft model. Single treatments with JQ1 and OTX015 had only moderate effects on the reduction of cellular viability. However, the combination treatment of BH3-mimetics along with JQ1 or OTX015 resulted in a highly synergistic reduction of cellular viability in a broad range of different model systems of malignant glioma. Similarly, knockdown of c-myc sensitized glioma cells for ABT263 mediated cell death. The enhanced loss of cellular viability in the combination treatment was mediated by activation of apoptosis with dissipation of mitochondrial membrane potential and caspase cleavage. The combination treatment led to a modulation of anti- and pro-apoptotic Bcl-2 family members with an increase in pro-apoptotic Noxa mediated by ATF4. Small interfering RNA mediated knockdown of Bak and Noxa protected glioma cells from ABT263/JQ1 mediated apoptosis. Finally, the combination treatment of ABT263 and OTX015 resulted in a regression of tumors and a significantly smaller tumor size as compared to single or vehicle treated tumors. Thus, these results warrant clinical testing for the drug combination of BH3-mimetics along with bromodain protein inhibitors.
Insights
Combining bromodomain inhibitors with BH3-mimetics offers a potent new strategy against glioblastoma. This drug combination therapy synergistically reduces cancer cell viability and tumor size by inducing apoptosis.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Drug combination therapies are crucial for treating aggressive cancers like glioblastoma.
- Targeting both Bcl-xL and c-myc presents a potential therapeutic strategy.
Purpose of the Study:
- To investigate the synergistic effect of bromodomain inhibitors (JQ1, OTX015) and BH3-mimetics (ABT263, Obatoclax) in glioblastoma treatment.
- To elucidate the underlying molecular mechanisms of this drug combination.
Main Methods:
- Treatment of various glioma cell lines and patient-derived xenografts with single agents and combinations.
- Assessment of synergy using Combination Index (CI) values.
- Gene silencing using small interfering RNAs (siRNAs) for mechanistic studies.
- In vivo efficacy evaluation in a glioblastoma xenograft model.
Main Results:
- Single agent treatments showed moderate effects; however, combinations of BH3-mimetics with JQ1 or OTX015 resulted in highly synergistic reduction of cell viability.
- c-myc knockdown sensitized glioma cells to ABT263-induced apoptosis.
- Combination treatment activated apoptosis, dissipated mitochondrial membrane potential, and cleaved caspases.
- Increased pro-apoptotic Noxa expression mediated by ATF4 was observed.
- Knockdown of Bak and Noxa partially protected cells from apoptosis.
- In vivo, the combination of ABT263 and OTX015 led to tumor regression and reduced tumor size.
Conclusions:
- The combination of BH3-mimetics and bromodomain inhibitors demonstrates significant synergistic anti-cancer activity against malignant glioma.
- This novel therapeutic approach warrants clinical investigation for glioblastoma treatment.

