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Published on: May 15, 2019
BRD9 Degradation Disrupts Ribosome Biogenesis in Multiple Myeloma
Keiji Kurata1, Mehmet K Samur2, Priscilla Liow3
1Jerome Lipper Multiple Myeloma Center, LeBow Institute for Myeloma Therapeutics, Dana-Farber Cancer Institute, Harvard Medical School, Boston, Massachusetts.
Purpose:
BRD9 is a defining component of the noncanonical SWI/SNF complex, which regulates gene expression by controlling chromatin dynamics. Although recent studies have found an oncogenic role for BRD9 in multiple cancer types including multiple myeloma, its clinical significance and oncogenic mechanism have not yet been elucidated. Here, we sought to identify the clinical and biological impact of BRD9 in multiple myeloma, which may contribute to the development of novel therapeutic strategies.
Experimental Design:
We performed integrated analyses of BRD9 in vitro and in vivo using multiple myeloma cell lines and primary multiple myeloma cells in established preclinical models, which identified the molecular functions of BRD9 contributing to multiple myeloma cell survival.
Results:
We found that high BRD9 expression was a poor prognostic factor in multiple myeloma. Depleting BRD9 by genetic (shRNA) and pharmacologic (dBRD9-A; proteolysis-targeting chimera; BRD9 degrader) approaches downregulated ribosome biogenesis genes, decreased the expression of the master regulator MYC, and disrupted the protein-synthesis maintenance machinery, thereby inhibiting multiple myeloma cell growth in vitro and in vivo in preclinical models. Importantly, we identified that the expression of ribosome biogenesis genes was associated with the disease progression and prognosis of patients with multiple myeloma. Our results suggest that BRD9 promotes gene expression by predominantly occupying the promoter regions of ribosome biogenesis genes and cooperating with BRD4 to enhance the transcriptional function of MYC.
Conclusions:
Our study identifies and validates BRD9 as a novel therapeutic target in preclinical models of multiple myeloma, which provides the framework for the clinical evaluation of BRD9 degraders to improve patient outcome.
Insights
Bromodomain-containing protein 9 (BRD9) drives multiple myeloma cell growth by regulating ribosome biogenesis and MYC expression. Targeting BRD9 offers a promising therapeutic strategy for multiple myeloma patients.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Bromodomain-containing protein 9 (BRD9) is part of the SWI/SNF complex, influencing gene expression via chromatin dynamics.
- BRD9 has an identified oncogenic role in various cancers, including multiple myeloma, but its specific mechanisms and clinical significance remain unclear.
Purpose of the Study:
- To investigate the clinical impact and oncogenic mechanisms of BRD9 in multiple myeloma.
- To explore BRD9 as a potential therapeutic target for novel treatment strategies.
Main Methods:
- Integrated in vitro and in vivo analyses using multiple myeloma cell lines and primary cells.
- Genetic (shRNA) and pharmacologic (BRD9 degrader) depletion of BRD9.
- Analysis of gene expression, focusing on ribosome biogenesis and MYC.
- Correlation of BRD9 and ribosome biogenesis gene expression with patient prognosis.
Main Results:
- High BRD9 expression is a poor prognostic factor in multiple myeloma.
- BRD9 depletion downregulated ribosome biogenesis genes and MYC expression, inhibiting cancer cell growth.
- BRD9 targets ribosome biogenesis gene promoters and collaborates with BRD4 to enhance MYC transcription.
Conclusions:
- BRD9 is a validated therapeutic target in preclinical multiple myeloma models.
- BRD9 inhibition disrupts essential cellular machinery, offering a novel treatment avenue.
- Clinical evaluation of BRD9 degraders is warranted to improve patient outcomes.
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