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Updated: May 18, 2026

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Published on: April 1, 2022
Discoidin domain receptor 2 (DDR2) regulates proliferation of endochondral cells in mice
Ikuma Kawai1, Tomoka Hisaki, Koji Sugiura
1Laboratory of Applied Genetics, Graduate School of Agricultural and Life Science, University of Tokyo, Tokyo 113-8657, Japan.
Abstract:
Discoidin domain receptor 2 (DDR2) is a receptor tyrosine kinase that is activated by fibrillar collagens. DDR2 regulates cell proliferation, cell adhesion, migration, and extracellular matrix remodeling. The decrement of endogenous DDR2 represses osteoblastic marker gene expression and osteogenic differentiation in murine preosteoblastic cells, but the functions of DDR2 in chondrogenic cellular proliferation remain unclear. To better understand the role of DDR2 signaling in cellular proliferation in endochondral ossification, we inhibited Ddr2 expression via the inhibitory effect of miRNA on Ddr2 mRNA (miDdr2) and analyzed the cellular proliferation and differentiation in the prechondrocyte ATDC5 cell lines. To investigate DDR2's molecular role in endochondral cellular proliferation in vivo, we also produced transgenic mice in which the expression of truncated, kinase dead (KD) DDR2 protein is induced, and evaluated the DDR2 function in cellular proliferation in chondrocytes. Although the miDdr2-transfected ATDC5 cell lines retained normal differentiation ability, DDR2 reduction finally promoted cellular proliferation in proportion to the decreasing ratio of Ddr2 expression, and it also promoted earlier differentiation to cartilage cells by insulin induction. The layer of hypertrophic chondrocytes in KD Ddr2 transgenic mice was not significantly thicker than that of normal littermates, but the layer of proliferative chondrocytes in KD-Ddr2 transgenic mice was significantly thicker than that of normal littermates. Taken together, our data demonstrated that DDR2 might play a local and essential role in the proliferation of chondrocytes.
Insights
Discoidin domain receptor 2 (DDR2) signaling is crucial for chondrocyte proliferation during endochondral ossification. Reduced DDR2 expression promotes chondrocyte proliferation and earlier differentiation, highlighting its essential role.
Area of Science:
- Cell Biology
- Molecular Biology
- Developmental Biology
Background:
- Discoidin domain receptor 2 (DDR2) is a tyrosine kinase receptor activated by collagens.
- DDR2 influences cell proliferation, adhesion, migration, and extracellular matrix remodeling.
- DDR2's role in chondrogenic cellular proliferation during endochondral ossification is not well understood.
Purpose of the Study:
- To investigate the function of DDR2 signaling in chondrocyte proliferation within endochondral ossification.
- To elucidate the molecular mechanisms underlying DDR2's role in chondrogenesis.
Main Methods:
- Inhibition of Ddr2 expression using miRNA (miDdr2) in ATDC5 prechondrocyte cell lines.
- Generation of transgenic mice expressing a kinase-dead (KD) DDR2 mutant to assess in vivo function.
- Analysis of cellular proliferation and differentiation in both in vitro and in vivo models.
Main Results:
- Reduced DDR2 expression in ATDC5 cells promoted cellular proliferation and accelerated differentiation into cartilage cells.
- Transgenic mice with KD-Ddr2 exhibited a significantly thicker layer of proliferative chondrocytes compared to controls.
- DDR2 reduction did not significantly alter the layer of hypertrophic chondrocytes.
Conclusions:
- DDR2 plays a significant role in regulating chondrocyte proliferation during endochondral ossification.
- DDR2 acts locally to control chondrocyte proliferation, impacting skeletal development.
- Targeting DDR2 signaling may offer therapeutic potential for bone development disorders.
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