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Culturing and Measuring Fetal and Newborn Murine Long Bones
Published on: April 26, 2019
Sprouty2 regulates endochondral bone formation by modulation of RTK and BMP signaling
Adriane Joo1, Roger Long2, Zhiqiang Cheng3
1Department of Orofacial Sciences, University of California, San Francisco, San Francisco, CA, United States; Program in Craniofacial Biology, University of California, San Francisco, San Francisco, CA, United States.
Abstract:
Skeletal development is regulated by the coordinated activity of signaling molecules that are both produced locally by cartilage and bone cells and also circulate systemically. During embryonic development and postnatal bone remodeling, receptor tyrosine kinase (RTK) superfamily members play critical roles in the proliferation, survival, and differentiation of chondrocytes, osteoblasts, osteoclasts, and other bone cells. Recently, several molecules that regulate RTK signaling have been identified, including the four members of the Sprouty (Spry) family (Spry1-4). We report that Spry2 plays an important role in regulation of endochondral bone formation. Mice in which the Spry2 gene has been deleted have defective chondrogenesis and endochondral bone formation, with a postnatal decrease in skeletal size and trabecular bone mass. In these constitutive Spry2 mutants, both chondrocytes and osteoblasts undergo increased cell proliferation and impaired terminal differentiation. Tissue-specific Spry2 deletion by either osteoblast- (Col1-Cre) or chondrocyte- (Col2-Cre) specific drivers led to decreased relative bone mass, demonstrating the critical role of Spry2 in both cell types. Molecular analyses of signaling pathways in Spry2(-/-) mice revealed an unexpected upregulation of BMP signaling and decrease in RTK signaling. These results identify Spry2 as a critical regulator of endochondral bone formation that modulates signaling in both osteoblast and chondrocyte lineages.
Insights
Sprouty 2 (Spry2) is crucial for skeletal development. Deleting Spry2 impairs bone formation and cell differentiation, highlighting its role in regulating bone cell signaling.
Area of Science:
- Skeletal Biology
- Molecular Signaling
- Developmental Biology
Background:
- Skeletal development relies on local and systemic signaling molecules.
- Receptor tyrosine kinases (RTKs) are vital for bone cell proliferation, survival, and differentiation.
- Sprouty (Spry) proteins regulate RTK signaling.
Purpose of the Study:
- To investigate the role of Spry2 in endochondral bone formation.
- To determine the impact of Spry2 deficiency on chondrogenesis and osteogenesis.
Main Methods:
- Generation and analysis of Spry2-deficient mice (constitutive and tissue-specific knockouts).
- Assessment of chondrogenesis and endochondral bone formation.
- Molecular analysis of signaling pathways (RTK and BMP).
Main Results:
- Spry2 deletion leads to defective chondrogenesis and endochondral bone formation.
- Spry2-deficient mice exhibit reduced skeletal size and trabecular bone mass.
- Loss of Spry2 causes increased chondrocyte and osteoblast proliferation but impaired differentiation.
- Spry2 deficiency upregulates BMP signaling and downregulates RTK signaling.
Conclusions:
- Spry2 is a critical regulator of endochondral bone formation.
- Spry2 plays essential roles in both chondrocyte and osteoblast lineages.
- Spry2 modulates both BMP and RTK signaling pathways during skeletal development.
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