Novel target genes of RUNX2 transcription factor and 1,25-dihydroxyvitamin D3
Alexandre S Stephens1, Nigel A Morrison
1School of Medical Science, Griffith University Gold Coast Campus, Southport, Queensland 4215, Australia.
Abstract:
The RUNX2 transcription factor is indispensable for skeletal development and controls bone formation by acting as a signaling hub and transcriptional regulator to coordinate target gene expression. A signaling partner of RUNX2 is the nuclear vitamin D receptor (VDR) that becomes active when bound by its ligand 1,25-dihydroxyvitamin D3 (VD3). RUNX2 and VDR unite to cooperatively regulate the expression of numerous genes. In this study, we overexpressed RUNX2 in NIH3T3 fibroblasts concomitantly treated with VD3 and show that RUNX2 alone, or in combination with VD3, failed to promote an osteoblastic phenotype in NIH3T3 cells. However, the expression of numerous osteoblast-related genes was up-regulated by RUNX2 and large-scale gene expression profiling using microarrays identified over 800 transcripts that displayed a twofold of greater change in expression in response to RUNX2 overexpression or VD3 treatment. Functional analysis using gene ontology (GO) revealed GO terms for ossification, cellular motility, biological adhesion, and chromosome organization were enriched in the pool of genes regulated by RUNX2. For the set of genes whose expression was modulated by VD3, the GO terms response to hormone stimulus, chemotaxis, and metalloendopeptidase activity where overrepresented. Our study provides a functional insight into the consequences of RUNX2 overexpression and VD3 treatment in NIH3T3 cells in addition to identifying candidate genes whose expression is controlled by either factor individually or through their functional cooperation.
Insights
RUNX2 transcription factor and vitamin D receptor (VDR) regulate osteoblast genes but do not induce an osteoblastic phenotype in NIH3T3 cells. Gene expression profiling identified over 800 transcripts affected by RUNX2 or VDR.
Area of Science:
- Molecular biology
- Cell biology
- Genetics
Background:
- RUNX2 is essential for skeletal development and bone formation.
- Vitamin D receptor (VDR) is activated by 1,25-dihydroxyvitamin D3 (VD3) and cooperates with RUNX2.
- RUNX2 and VDR signaling pathways are crucial for regulating gene expression.
Purpose of the Study:
- To investigate the effects of RUNX2 overexpression and VD3 treatment on NIH3T3 fibroblasts.
- To identify genes regulated by RUNX2 and/or VD3.
- To understand the functional cooperation between RUNX2 and VDR.
Main Methods:
- Overexpression of RUNX2 in NIH3T3 fibroblasts.
- Treatment of cells with VD3.
- Gene expression profiling using microarrays.
- Functional analysis using Gene Ontology (GO).
Main Results:
- RUNX2 overexpression and VD3 treatment did not induce an osteoblastic phenotype in NIH3T3 cells.
- Over 800 transcripts showed altered expression in response to RUNX2 or VD3.
- GO analysis revealed enrichment of terms related to ossification, cellular motility, and hormone response.
Conclusions:
- RUNX2 and VD3 individually regulate numerous genes involved in various cellular processes.
- While not inducing a full osteoblastic phenotype, RUNX2 and VD3 significantly impact gene expression in NIH3T3 cells.
- This study identifies candidate genes regulated by RUNX2 and VDR, providing insights into their cooperative functions.
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