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Skeletal Phenotype Analysis of a Conditional Stat3 Deletion Mouse Model
Published on: July 3, 2020
SP7 inhibits osteoblast differentiation at a late stage in mice
Carolina A Yoshida1, Hisato Komori, Zenjiro Maruyama
1Department of Cell Biology, Nagasaki University Graduate School of Biomedical Sciences, Nagasaki, Japan.
Abstract:
RUNX2 and SP7 are essential transcription factors for osteoblast differentiation at an early stage. Although RUNX2 inhibits osteoblast differentiation at a late stage, the function of SP7 at the late stage of osteoblast differentiation is not fully elucidated. Thus, we pursued the function of SP7 in osteoblast differentiation. RUNX2 induced Sp7 expression in Runx2(-/-) calvarial cells. Adenoviral transfer of sh-Sp7 into primary osteoblasts reduced the expression of Alpl, Col1a1, and Bglap2 and mineralization, whereas that of Sp7 reduced Bglap2 expression and mineralization at a late stage of osteoblast differentiation. Sp7 transgenic mice under the control of 2.3 kb Col1a1 promoter showed osteopenia and woven-bone like structure in the cortical bone, which was thin and less mineralized, in a dose-dependent manner. Further, the number of processes in the osteoblasts and osteocytes was reduced. Although the osteoblast density was increased, the bone formation was reduced. The frequency of BrdU incorporation was increased in the osteoblastic cells, while the expression of Col1a1, Spp1, Ibsp, and Bglap2 was reduced. Further, the osteopenia in Sp7 or Runx2 transgenic mice was worsened in Sp7/Runx2 double transgenic mice and the expression of Col1a1 and Bglap2 was reduced. The expression of Sp7 and Runx2 was not increased in Runx2 and Sp7 transgenic mice, respectively. The expression of endogenous Sp7 was increased in Sp7 transgenic mice and Sp7-transduced cells; the introduction of Sp7 activated and sh-Sp7 inhibited Sp7 promoter; and ChIP assay showed the binding of endogenous SP7 in the proximal region of Sp7 promoter. These findings suggest that SP7 and RUNX2 inhibit osteoblast differentiation at a late stage in a manner independent of RUNX2 and SP7, respectively, and SP7 positively regulates its own promoter.
Insights
Transcription factors SP7 and RUNX2 inhibit late-stage osteoblast differentiation independently. SP7 also positively regulates its own gene expression, impacting bone formation and mineralization.
Area of Science:
- Molecular Biology
- Developmental Biology
- Bone Biology
Background:
- RUNX2 and SP7 are key transcription factors in early osteoblast differentiation.
- The role of SP7 in late-stage osteoblast differentiation remains unclear.
- RUNX2 is known to inhibit late-stage osteoblast differentiation.
Purpose of the Study:
- To investigate the function of SP7 in late-stage osteoblast differentiation.
- To elucidate the relationship between SP7, RUNX2, and bone formation.
- To determine if SP7 auto-regulates its own expression.
Main Methods:
- Adenoviral transfer of SP7 and shSP7 in primary osteoblasts.
- Generation and analysis of SP7 and RUNX2 transgenic mice.
- Analysis of bone structure, mineralization, and gene expression.
- Chromatin immunoprecipitation (ChIP) assay to study SP7 promoter binding.
Main Results:
- SP7 inhibition reduced osteoblast marker expression and mineralization.
- SP7 overexpression in transgenic mice led to osteopenia, reduced bone mineralization, and altered osteoblast/osteocyte morphology.
- SP7 and RUNX2 independently inhibit late-stage osteoblast differentiation.
- SP7 positively regulates its own promoter activity.
Conclusions:
- SP7, similar to RUNX2, inhibits osteoblast differentiation at a late stage.
- SP7 exerts its function independently of RUNX2 at this stage.
- SP7 exhibits positive auto-regulation, suggesting a feedback mechanism in osteoblast regulation.
