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α5-GABAA receptors negatively regulate MYC-amplified medulloblastoma growth
Soma Sengupta1, Shyamal Dilhan Weeraratne, Hongyu Sun
1Department of Neurology, Boston Children's Hospital, Boston, MA, USA.
Abstract:
Neural tumors often express neurotransmitter receptors as markers of their developmental lineage. Although these receptors have been well characterized in electrophysiological, developmental and pharmacological settings, their importance in the maintenance and progression of brain tumors and, importantly, the effect of their targeting in brain cancers remains obscure. Here, we demonstrate high levels of GABRA5, which encodes the α5-subunit of the GABAA receptor complex, in aggressive MYC-driven, "Group 3" medulloblastomas. We hypothesized that modulation of α5-GABAA receptors alters medulloblastoma cell survival and monitored biological and electrophysiological responses of GABRA5-expressing medulloblastoma cells upon pharmacological targeting of the GABAA receptor. While antagonists, inverse agonists and non-specific positive allosteric modulators had limited effects on medulloblastoma cells, a highly specific and potent α5-GABAA receptor agonist, QHii066, resulted in marked membrane depolarization and a significant decrease in cell survival. This effect was GABRA5 dependent and mediated through the induction of apoptosis as well as accumulation of cells in S and G2 phases of the cell cycle. Chemical genomic profiling of QHii066-treated medulloblastoma cells confirmed inhibition of MYC-related transcriptional activity and revealed an enrichment of HOXA5 target gene expression. siRNA-mediated knockdown of HOXA5 markedly blunted the response of medulloblastoma cells to QHii066. Furthermore, QHii066 sensitized GABRA5 positive medulloblastoma cells to radiation and chemotherapy consistent with the role of HOXA5 in directly regulating p53 expression and inducing apoptosis. Thus, our results provide novel insights into the synthetic lethal nature of α5-GABAA receptor activation in MYC-driven/Group 3 medulloblastomas and propose its targeting as a novel strategy for the management of this highly aggressive tumor.
Insights
Targeting the α5-GABAA receptor with QHii066 agonist shows promise for aggressive medulloblastomas. This approach induces apoptosis and sensitizes cancer cells to standard treatments, offering a new therapeutic strategy.
Area of Science:
- Neuroscience
- Oncology
- Pharmacology
Background:
- Neural tumors express neurotransmitter receptors, but their role in brain cancer progression and therapeutic targeting is unclear.
- GABRA5, encoding the α5-subunit of the GABAA receptor, is highly expressed in aggressive MYC-driven Group 3 medulloblastomas.
Purpose of the Study:
- To investigate the role of α5-GABAA receptors in medulloblastoma survival and therapeutic potential.
- To evaluate the effects of pharmacological modulation of α5-GABAA receptors on medulloblastoma cells.
Main Methods:
- Pharmacological targeting of GABAA receptors in GABRA5-expressing medulloblastoma cells.
- Monitoring biological and electrophysiological responses.
- Chemical genomic profiling and siRNA-mediated knockdown of HOXA5.
Main Results:
- A specific α5-GABAA receptor agonist, QHii066, induced GABRA5-dependent apoptosis and cell cycle arrest.
- QHii066 inhibited MYC transcriptional activity and enriched HOXA5 target gene expression.
- QHii066 sensitized medulloblastoma cells to radiation and chemotherapy.
Conclusions:
- Activation of α5-GABAA receptors presents a synthetic lethal vulnerability in MYC-driven medulloblastomas.
- Targeting α5-GABAA receptors offers a novel therapeutic strategy for aggressive Group 3 medulloblastomas.
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