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Published on: March 15, 2018
Reduced osteoblast activity in the mice lacking TR4 nuclear receptor leads to osteoporosis
Shin-Jen Lin1, Hsin-Chiu Ho, Yi-Fen Lee
1George Whipple Lab for Cancer Research, Department of Pathology, The Wilmot Cancer center, University of Rochester Medical Center, Rochester, NY 14642, USA.
Background:
Early studies suggested that TR4 nuclear receptor might play important roles in the skeletal development, yet its detailed mechanism remains unclear.
Methods:
We generated TR4 knockout mice and compared skeletal development with their wild type littermates. Primary bone marrow cells were cultured and we assayed bone differentiation by alkaline phosphatase and alizarin red staining. Primary calvaria were cultured and osteoblastic marker genes were detected by quantitative PCR. Luciferase reporter assays, chromatin immunoprecipitation (ChIP) assays, and electrophoretic mobility shift assays (EMSA) were performed to demonstrate TR4 can directly regulate bone differentiation marker osteocalcin.
Results:
We first found mice lacking TR4 might develop osteoporosis. We then found that osteoblast progenitor cells isolated from bone marrow of TR4 knockout mice displayed reduced osteoblast differentiation capacity and calcification. Osteoblast primary cultures from TR4 knockout mice calvaria also showed higher proliferation rates indicating lower osteoblast differentiation ability in mice after loss of TR4. Mechanism dissection found the expression of osteoblast markers genes, such as ALP, type I collagen alpha 1, osteocalcin, PTH, and PTHR was dramatically reduced in osteoblasts from TR4 knockout mice as compared to those from TR4 wild type mice. In vitro cell line studies with luciferase reporter assay, ChIP assay, and EMSA further demonstrated TR4 could bind directly to the promoter region of osteocalcin gene and induce its gene expression at the transcriptional level in a dose dependent manner.
Conclusions:
Together, these results demonstrate TR4 may function as a novel transcriptional factor to play pathophysiological roles in maintaining normal osteoblast activity during the bone development and remodeling, and disruption of TR4 function may result in multiple skeletal abnormalities.
Insights
The TR4 nuclear receptor is crucial for normal bone development. Loss of TR4 impairs osteoblast differentiation and function, potentially leading to skeletal abnormalities and osteoporosis.
Area of Science:
- Molecular Biology
- Endocrinology
- Skeletal Biology
Background:
- Early research suggested the TR4 nuclear receptor's involvement in skeletal development.
- The precise mechanisms underlying TR4's role in bone biology remained largely unknown.
Purpose of the Study:
- To investigate the function of the TR4 nuclear receptor in skeletal development.
- To elucidate the molecular mechanisms by which TR4 influences osteoblast differentiation and bone formation.
Main Methods:
- Generated and analyzed TR4 knockout mice to assess skeletal phenotypes.
- Cultured primary bone marrow cells and calvarial osteoblasts to evaluate differentiation capacity.
- Utilized molecular techniques including quantitative PCR, luciferase reporter assays, ChIP, and EMSA to determine TR4's transcriptional activity on target genes.
Main Results:
- TR4 knockout mice exhibited signs of osteoporosis and impaired osteoblast differentiation.
- Loss of TR4 led to reduced expression of key osteoblast marker genes (e.g., ALP, osteocalcin).
- TR4 was demonstrated to directly bind to the osteocalcin promoter, regulating its expression transcriptionally.
Conclusions:
- TR4 acts as a novel transcriptional factor essential for maintaining osteoblast activity.
- Disruption of TR4 function contributes to skeletal abnormalities and may play a role in osteoporosis pathogenesis.
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