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Published on: November 15, 2013
Glucocorticoid receptor-mediated cis-repression of osteogenic genes requires BRM-SWI/SNF
Michael J Pico1, Sharareh Hashemi1, Fuhua Xu1
1Department of Orthopaedics, New Jersey Medical School, Rutgers, The State University of New, Jersey, Newark, NJ 07103.
Abstract:
Glucocorticoids are an effective therapy for a variety of severe inflammatory and autoimmune disorders; however, the therapeutic use of glucocorticoids is severely limited by their negative side effects, particularly on osteogenesis. Glucocorticoids regulate transcription by binding to the glucocorticoid receptor (GR), which then binds the promoters of target genes to induce either activation or repression. The gene activation effects of nuclear hormone receptors broadly require the cooperation of the chromatin remodeling complex known as SWI/SNF, which is powered by an ATPase core. The well-studied SWI/SNF ATPase, BRG1, is required for gene activation by a spectrum of nuclear hormone receptors including GR. However, glucocorticoid-induced side effects specifically related to impaired osteogenesis are mostly linked with GR-mediated repression. We have considered whether cis-repression of osteogenic genes by GR may be mediated by a distinct subclass of SWI/SNF powered by the alternative ATPase, BRM. BRM does not have an essential role in mammalian development, but plays a repressor role in osteoblast differentiation and favors adipogenic lineage selection over osteoblast commitment, effects that mirror the repressor effects of GR. The studies reported here examine three key GR cis-repression gene targets, and show that GR association with these promoters is sharply reduced in BRM deficient cells. Each of these GR-targeted genes act in a different way. Bglap encodes osteocalcin, which contributes to normal maturation of osteoblasts from committed pre-osteoblasts. The Per3 gene product acts in uncommitted mesenchymal stem cells to influence the osteoblast/adipocyte lineage selection point. Fas ligand, encoded by FasL, is a means by which osteoblasts can modulate bone degradation by osteoclasts. Repression of each of these genes by glucocorticoid favors bone loss. The essential role of BRM in cooperation with GR at each of these control points offers a novel mechanistic understanding of the role of GR in bone loss.
Insights
Glucocorticoids impair bone formation by repressing osteogenic genes. This study reveals the alternative ATPase BRM cooperates with the glucocorticoid receptor (GR) to repress these genes, offering new insights into glucocorticoid-induced bone loss.
Area of Science:
- Molecular Biology
- Endocrinology
- Bone Biology
Background:
- Glucocorticoids are vital anti-inflammatory drugs but cause significant side effects, especially impaired osteogenesis.
- Glucocorticoid receptor (GR) mediates gene regulation, but its role in glucocorticoid-induced bone loss is linked to gene repression.
- The SWI/SNF chromatin remodeling complex, powered by ATPases BRG1 and BRM, is crucial for nuclear hormone receptor function.
Purpose of the Study:
- To investigate whether the alternative SWI/SNF ATPase, BRM, mediates GR-driven repression of osteogenic genes.
- To elucidate the role of BRM in GR-mediated repression and its contribution to glucocorticoid-induced bone loss.
Main Methods:
- Examined three key GR cis-repression gene targets: Bglap, Per3, and FasL.
- Assessed GR association with gene promoters in BRM-deficient cells.
- Analyzed the functional roles of Bglap, Per3, and FasL in osteogenesis and adipogenesis.
Main Results:
- GR association with Bglap, Per3, and FasL promoters was significantly reduced in BRM-deficient cells.
- BRM cooperates with GR to repress these critical osteogenic genes.
- Repression of Bglap (osteocalcin), Per3, and FasL by glucocorticoids contributes to bone loss.
Conclusions:
- BRM plays an essential role in GR-mediated repression of osteogenic genes, providing a novel mechanistic understanding of glucocorticoid-induced bone loss.
- Targeting the BRM-GR interaction may offer therapeutic strategies to mitigate bone loss associated with glucocorticoid therapy.
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