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Peptides from Phage Display Library Modulate Gene Expression in Mesenchymal Cells and Potentiate Osteogenesis in Unicortical Bone Defects
Published on: December 10, 2010
PPARgamma2 nuclear receptor controls multiple regulatory pathways of osteoblast differentiation from marrow
Keith R Shockley1, Oxana P Lazarenko, Piotr J Czernik
1The Jackson Laboratory, 600 Main Street, Bar Harbor, Maine 04609, USA.
Abstract:
Rosiglitazone (Rosi), a member of the thiazolidinedione class of drugs used to treat type 2 diabetes, activates the adipocyte-specific transcription factor peroxisome proliferator-activated receptor gamma (PPARgamma). This activation causes bone loss in animals and humans, at least in part due to suppression of osteoblast differentiation from marrow mesenchymal stem cells (MSC). In order to identify mechanisms by which PPARgamma2 suppresses osteoblastogenesis and promotes adipogenesis in MSC, we have analyzed the PPARgamma2 transcriptome in response to Rosi. A total of 4,252 transcriptional changes resulted when Rosi (1 microM) was applied to the U-33 marrow stromal cell line stably transfected with PPARgamma2 (U-33/gamma2) as compared to non-induced U-33/gamma2 cells. Differences between U-33/gamma2 and U-33 cells stably transfected with empty vector (U-33/c) comprised 7,928 transcriptional changes, independent of Rosi. Cell type-, time- and treatment-specific gene clustering uncovered distinct patterns of PPARgamma2 transcriptional control of MSC lineage commitment. The earliest changes accompanying Rosi activation of PPARgamma2 included effects on Wnt, TGFbeta/BMP and G-protein signaling activities, as well as sustained induction of adipocyte-specific gene expression and lipid metabolism. While suppression of osteoblast phenotype is initiated by a diminished expression of osteoblast-specific signaling pathways, induction of the adipocyte phenotype is initiated by adipocyte-specific transcriptional regulators. This indicates that distinct mechanisms govern the repression of osteogenesis and the stimulation of adipogenesis. The co-expression patterns found here indicate that PPARgamma2 has a dominant role in controlling osteoblast differentiation and suggests numerous gene-gene interactions that could lead to the identification of a "master" regulatory scheme directing this process.
Insights
Rosiglitazone, a diabetes drug, suppresses bone formation by altering gene expression in mesenchymal stem cells. Distinct mechanisms inhibit bone cell development while promoting fat cell development, revealing PPARgamma2
Area of Science:
- Molecular Biology
- Endocrinology
- Stem Cell Biology
Background:
- Rosiglitazone (Rosi) activates peroxisome proliferator-activated receptor gamma (PPARgamma), a transcription factor.
- PPARgamma activation is linked to bone loss by suppressing osteoblast differentiation from mesenchymal stem cells (MSCs).
Purpose of the Study:
- To investigate the molecular mechanisms by which PPARgamma2 activation by Rosi suppresses osteoblastogenesis and promotes adipogenesis in MSCs.
- To analyze the PPARgamma2-dependent transcriptome in response to Rosi treatment.
Main Methods:
- Transcriptome analysis of U-33 marrow stromal cells stably transfected with PPARgamma2 (U-33/gamma2) after Rosi treatment.
- Comparison of gene expression changes between Rosi-treated and untreated U-33/gamma2 cells.
- Analysis of transcriptional changes independent of Rosi in U-33/gamma2 versus control U-33/c cells.
Main Results:
- Rosiglitazone induced 4,252 transcriptional changes in U-33/gamma2 cells.
- Distinct gene expression patterns revealed PPARgamma2's control over MSC lineage commitment.
- Early changes involved Wnt, TGFbeta/BMP, and G-protein signaling, alongside sustained adipocyte gene expression and lipid metabolism.
- Osteoblast suppression involved diminished osteoblast signaling, while adipogenesis stimulation relied on adipocyte-specific regulators.
Conclusions:
- Distinct molecular mechanisms regulate the repression of osteogenesis and stimulation of adipogenesis by PPARgamma2.
- PPARgamma2 plays a dominant role in controlling osteoblast differentiation.
- The study suggests potential gene-gene interactions that could identify a master regulatory network for MSC lineage commitment.
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