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Analysis of regulator of G-protein signaling-2 (RGS-2) expression and function in osteoblastic cells
Kannan Thirunavukkarasu1, David L Halladay, Rebecca R Miles
1Gene Regulation, Bone and Inflammation Research, Lilly Research Labs, Eli Lilly and Company, Indianapolis, Indiana 46285, USA.
Abstract:
Regulator of G-protein signaling-2 (RGS-2) belongs to a novel family of GTPase-activating proteins that rapidly turn-off G-protein coupled receptor signaling. RGS proteins contain a characteristic RGS domain by which they interact with the alpha-subunit of G-proteins and drive them into their inactive GDP-bound forms. Previously, we have reported that RGS-2 mRNA is rapidly and transiently increased by PTH in rat bone and in osteoblast cultures in vitro. In this study, we further explored the molecular basis for the regulation of RGS-2 by cloning and functionally characterizing the RGS-2 gene promoter. We cloned 2.3- and 2.8-kb fragments of the 5'-flanking regions of the rat and mouse RGS-2 genes, respectively, and generated a stable clone of UMR106 osteoblastic cells containing the rat RGS-2 promoter driving the beta-gal reporter gene (p2.3RGS-2-beta-gal). Treatment of the stable clone with PTH resulted in a maximal 2.2- to 3.6-fold increase in promoter activity at 8 h, reminiscent of the early response observed with endogenous RGS-2 mRNA regulation. Further, PTH (1-38), (1-31), PTHrP (1-34), and forskolin, which elevate cAMP levels, stimulated the promoter, while PTH (3-34) and (7-34), which do not readily stimulate cAMP accumulation, and PMA that directly activates protein kinase C, had no effect on promoter activity. Taken together, these results implicate the involvement of the Galpha(s)-adenylate cyclase-protein kinase A pathway in stimulating RGS-2 expression. Maintenance of a hyperphosphorylated state via the inhibition of type 2A protein phosphatases by okadaic acid, resulted in a strong dose-dependent increase in transcriptional activity of the RGS-2 promoter as well as that of the endogenous RGS-2 gene. Furthermore, overexpression of the osteoblast-specific transcription factor Runx2 also led to a stimulation of RGS-2 promoter activity. Functional analysis using RGS-2 overexpression suggests the potential negative regulatory effects of RGS-2 on PTH- and forskolin-induced cAMP production in osteoblastic cells. In summary, our data suggest that PTH treatment results in a direct transcriptional stimulation of RGS-2 that in turn may play a role in modulating the duration/intensity of PTH receptor signaling.
Insights
Regulator of G-protein signaling-2 (RGS-2) expression in osteoblasts is transcriptionally stimulated by parathyroid hormone (PTH) via the cAMP pathway. RGS-2 may regulate the duration and intensity of PTH receptor signaling.
Area of Science:
- Molecular Biology
- Cell Biology
- Endocrinology
Background:
- Regulator of G-protein signaling-2 (RGS-2) is a GTPase-activating protein that terminates G-protein coupled receptor signaling.
- RGS-2 mRNA levels increase rapidly in response to parathyroid hormone (PTH) in bone cells.
Purpose of the Study:
- To investigate the molecular mechanisms regulating RGS-2 gene expression in osteoblasts.
- To characterize the promoter activity of the RGS-2 gene in response to various stimuli.
Main Methods:
- Cloning and functional characterization of rat and mouse RGS-2 gene promoter regions.
- Generation of a stable osteoblastic cell line expressing the RGS-2 promoter linked to a reporter gene.
- Treatment of cells with PTH, PTH fragments, PTH-related peptide (PTHrP), forskolin, okadaic acid, and PMA to assess promoter activity and endogenous gene expression.
Main Results:
- PTH and cAMP-elevating agents (forskolin, PTHrP) stimulated RGS-2 promoter activity.
- Inhibition of protein phosphatase 2A (PP2A) by okadaic acid increased RGS-2 promoter and gene activity.
- Overexpression of Runx2 transcription factor enhanced RGS-2 promoter activity.
- RGS-2 overexpression showed negative regulatory effects on cAMP production.
Conclusions:
- PTH directly stimulates RGS-2 transcription in osteoblasts through the Galpha(s)-adenylate cyclase-protein kinase A pathway.
- RGS-2 plays a role in modulating the duration and intensity of PTH receptor signaling in osteoblastic cells.