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Regulation of bone morphogenetic protein signalling and cranial osteogenesis by Gpc1 and Gpc3
Prem P Dwivedi1, Randall H Grose, Jorge Filmus
1Women's and Children's Health Research Institute, North Adelaide, South Australia 5006, Australia.
Insights
Glypican-1 (GPC1) and Glypican-3 (GPC3) inhibit bone growth signaling pathways. Downregulation of these glypicans may cause craniosynostosis, a condition of premature skull fusion in infants.
Area of Science:
- Craniofacial development
- Molecular biology
- Biochemistry
Background:
- Skull growth relies on osteoblastic activity at sutures.
- Craniosynostosis results from premature suture fusion, affecting 1 in 2500 children.
- Glypican-1 (GPC1) and Glypican-3 (GPC3) are expressed in cranial sutures and decrease during premature fusion.
Purpose of the Study:
- Investigate the mechanistic link between GPC1, GPC3, bone morphogenetic proteins (BMPs), and osteogenesis.
- Determine how GPC1 and GPC3 regulate BMP signaling in cranial suture cells.
Main Methods:
- Co-expression analysis of GPC1 and GPC3 in human primary suture mesenchymal cells.
- Assessing the impact of GPC1 and GPC3 on BMP2, BMP4, and BMP7 activity.
- Investigating BMP signaling pathways (SMAD-dependent and independent).
- Evaluating the role of GPC1 and GPC3 in BMP2-mediated osteogenesis.
Main Results:
- Human primary suture mesenchymal cells coexpress and release GPC1 and GPC3.
- GPC1 and GPC3 inhibit BMP2, BMP4, and BMP7 activities and physically interact with BMP2.
- Immunoblockade of endogenous GPC1 and GPC3 enhances BMP2 activity.
- Overexpression or addition of GPC1/GPC3 inhibits BMP2 signaling and osteogenesis.
- GPC1 and GPC3 inhibit both SMAD-dependent and independent BMP pathways.
Conclusions:
- GPC1 and GPC3 regulate BMP2-mediated osteogenesis in cranial suture cells.
- Downregulation of GPC1 and GPC3 expression may lead to the premature bony suture fusion observed in craniosynostosis.
- Targeting GPC1 and GPC3 could offer therapeutic potential for craniosynostosis.
Abstract:
From birth, the vault of the skull grows at a prodigious rate, driven by the activity of osteoblastic cells at the fibrous joints (sutures) that separate the bony calvarial plates. One in 2500 children is born with a medical condition known as craniosynostosis because of premature bony fusion of the calvarial plates and a cessation of bone growth at the sutures. Bone morphogenetic proteins (BMPs) are potent growth factors that promote bone formation. Previously, we found that Glypican-1 (GPC1) and Glypican-3 (GPC3) are expressed in cranial sutures and are decreased during premature suture fusion in children. Although glypicans are known to regulate BMP signalling, a mechanistic link between GPC1, GPC3 and BMPs and osteogenesis has not yet been investigated. We now report that human primary suture mesenchymal cells coexpress GPC1 and GPC3 on the cell surface and release them into the media. We show that they inhibit BMP2, BMP4 and BMP7 activities, which both physically interact with BMP2 and that immunoblockade of endogenous GPC1 and GPC3 potentiates BMP2 activity. In contrast, increased levels of GPC1 and GPC3 as a result of overexpression or the addition of recombinant protein, inhibit BMP2 signalling and BMP2-mediated osteogenesis. We demonstrate that BMP signalling in suture mesenchymal cells is mediated by both SMAD-dependent and SMAD-independent pathways and that GPC1 and GPC3 inhibit both pathways. GPC3 inhibition of BMP2 activity is independent of attachment of the glypican on the cell surface and post-translational glycanation, and thus appears to be mediated by the core glypican protein. The discovery that GPC1 and GPC3 regulate BMP2-mediated osteogenesis, and that inhibition of endogenous GPC1 and GPC3 potentiates BMP2 responsiveness of human suture mesenchymal cells, indicates how downregulation of glypican expression could lead to the bony suture fusion that characterizes craniosynostosis.
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