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BRD2 bromodomain-mediated regulation of cell state plasticity modulates therapy response in glioblastoma
Raghavendra Vadla1, Brett Taylor2,1, Yohei Miyake1
1Division of Regenerative Medicine, Department of Medicine, University of California San Diego, La Jolla, California, USA.
Background:
Glioblastoma (GBM) displays remarkable cell state plasticity, a major contributor to therapeutic resistance and tumor progression. While epigenetic mechanisms play a central role in driving this plasticity, the key regulators remain poorly understood, and developing effective therapeutic strategies targeting them has been challenging.
Methods:
We investigated the role of BRD2, a key regulator of NF-κB-mediated mesenchymal (MES) transition, using GBM patient-derived xenograft cell lines, CRISPR-mediated knock-in/knockout approaches, RNA-seq, and in vitro and in vivo modeling. BET inhibitors were employed to target MES gene expression and sensitize GBM to radiation therapy.
Results:
We found that PTEN loss induces RelA chromatin localization and acetylation-mediated recruitment of BRD2 to the MES gene promoters. BRD2 binding is essential for maintaining MES gene expression and phenotype. Genetic ablation or loss-of-function mutation of BRD2 bromodomains reverses MES transition, enhances radiation sensitivity, and improves survival in orthotopic xenograft models. Additionally, treatment with a brain-penetrant BD2-selective inhibitor suppresses the MES phenotype and increases radiation sensitivity of GBM stem cells in vitro.
Conclusion:
Our study identifies BRD2 as a key mediator of MES transition in GBM, with its bromodomains playing a crucial role in driving cell state plasticity. Targeting BRD2 with BD2-selective inhibitors offers a promising therapeutic strategy to overcome radiation resistance and improve outcomes for GBM patients.
Insights
This study identifies BRD2 as a key regulator of glioblastoma (GBM) cell plasticity and therapeutic resistance. Targeting BRD2 with selective inhibitors shows promise for overcoming radiation resistance and improving GBM patient outcomes.
Area of Science:
- Oncology
- Epigenetics
- Cancer Biology
Background:
- Glioblastoma (GBM) exhibits significant cell state plasticity, contributing to treatment resistance and tumor progression.
- Epigenetic mechanisms are central to GBM plasticity, but key regulators and therapeutic targets remain elusive.
Purpose of the Study:
- To investigate the role of BRD2 in mediating mesenchymal (MES) transition in GBM.
- To evaluate the therapeutic potential of targeting BRD2, particularly its bromodomains, in GBM treatment.
Main Methods:
- Utilized patient-derived GBM xenograft models, CRISPR technology, and RNA-seq.
- Employed in vitro and in vivo models to study BRD2 function and the effects of BET inhibitors.
- Investigated the impact of PTEN loss on BRD2 recruitment and MES gene expression.
Main Results:
- PTEN loss promotes BRD2 recruitment to MES gene promoters, essential for maintaining the MES phenotype.
- Genetic inactivation of BRD2 bromodomains reversed MES transition, enhanced radiation sensitivity, and improved survival in xenograft models.
- A brain-penetrant BRD2-selective inhibitor suppressed MES phenotype and increased GBM stem cell radiation sensitivity.
Conclusions:
- BRD2 is identified as a critical mediator of GBM cell state plasticity via its bromodomains.
- Targeting BRD2 with selective inhibitors presents a promising strategy to enhance radiation therapy efficacy and improve outcomes for GBM patients.
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