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Updated: May 20, 2026

Culture of Murine Embryonic Metatarsals: A Physiological Model of Endochondral Ossification
Published on: December 3, 2016
MEPE is a novel regulator of growth plate cartilage mineralization
K A Staines1, N C W Mackenzie, C E Clarkin
1The Roslin Institute and Royal (Dick) School of Veterinary Studies, The University of Edinburgh, Easter Bush, Midlothian EH25 9RG, UK. katherine.staines@roslin.ed.ac.uk
Abstract:
Matrix extracellular phosphoglycoprotein (MEPE) belongs to the SIBLING protein family which play key roles in biomineralization. Although the growth plates of MEPE-overexpressing mice display severe morphological disruption, the expression and function of MEPE in growth plate matrix mineralization remains largely undefined. Here we show MEPE and its cleavage product, the acidic serine aspartate-rich MEPE-associated motif (ASARM) peptide, to be localised to the hypertrophic zone of the growth plate. We also demonstrate that the phosphorylated (p)ASARM peptide inhibits ATDC5 chondrocyte matrix mineralization. Stable MEPE-overexpressing ATDC5 cells also had significantly reduced matrix mineralization in comparison to the control cells. Interestingly, we show that the addition of the non-phosphorylated (np)ASARM peptide promoted mineralization in the ATDC5 cells. The peptides and the overexpression of MEPE did not affect the differentiation of the ATDC5 cells. For a more physiologically relevant model, we utilized the metatarsal organ culture model. We show the pASARM peptide to inhibit mineralization at two stages of development, as shown by histological and microCT analysis. Like in the ATDC5 cells, the peptides did not affect the differentiation of the metatarsals indicating that the effects seen on mineralization are direct, as is additionally confirmed by no change in alkaline phosphatase activity or mRNA expression. In the metatarsal organ cultures, the pASARM peptide also reduced endothelial cell markers and vascular endothelial growth factor mRNA expression. Taken together these results show MEPE to be an important regulator of growth plate chondrocyte matrix mineralization through its cleavage to an ASARM peptide.
Insights
Matrix extracellular phosphoglycoprotein (MEPE) regulates growth plate mineralization. Its cleavage product, the phosphorylated ASARM peptide, inhibits chondrocyte mineralization, while the non-phosphorylated form promotes it, revealing MEPE
Area of Science:
- Biochemistry
- Cell Biology
- Skeletal Biology
Background:
- Matrix extracellular phosphoglycoprotein (MEPE) is a SIBLING protein family member implicated in biomineralization.
- MEPE's precise role in growth plate mineralization is unclear, despite observed disruptions in MEPE-overexpressing mice.
Purpose of the Study:
- To elucidate the expression and function of MEPE in growth plate matrix mineralization.
- To investigate the role of MEPE's cleavage product, the ASARM peptide, in chondrocyte mineralization.
Main Methods:
- Localization studies of MEPE and ASARM peptide in growth plate hypertrophic zones.
- In vitro studies using ATDC5 chondrocytes to assess the impact of phosphorylated (p)ASARM and non-phosphorylated (np)ASARM peptides on matrix mineralization.
- Analysis of MEPE-overexpressing ATDC5 cells.
- In vivo studies using metatarsal organ cultures to evaluate pASARM peptide effects on mineralization, differentiation, and vascularization.
Main Results:
- MEPE and ASARM peptides are localized to the hypertrophic zone of the growth plate.
- pASARM peptide inhibits ATDC5 chondrocyte matrix mineralization, while npASARM peptide promotes it.
- MEPE overexpression in ATDC5 cells reduces matrix mineralization.
- pASARM peptide inhibits mineralization in metatarsal organ cultures without affecting chondrocyte differentiation or alkaline phosphatase activity.
- pASARM peptide reduces vascular markers and VEGF mRNA expression in metatarsal cultures.
Conclusions:
- MEPE is a key regulator of growth plate chondrocyte matrix mineralization.
- The inhibitory effect of MEPE on mineralization is mediated through its cleavage to the phosphorylated ASARM peptide.
- ASARM peptide directly influences mineralization and angiogenesis in the growth plate.
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