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Updated: Feb 14, 2026

Sequential In vivo Imaging of Osteogenic Stem/Progenitor Cells During Fracture Repair
Published on: May 23, 2014
Site-1 protease regulates skeletal stem cell population and osteogenic differentiation in mice
Debabrata Patra1, Elizabeth DeLassus2, Jennifer Mueller3
1Department of Orthopaedic Surgery, Washington University School of Medicine, St. Louis, MO 63110, USA debabratapatra@wustl.edu.
Abstract:
Site-1 protease (S1P) is a proprotein convertase with essential functions in the conversion of precursor proteins to their active form. In earlier studies, we demonstrated that S1P ablation in the chondrocyte lineage results in a drastic reduction in endochondral bone formation. To investigate the mechanistic contribution of S1P to bone development we ablated S1P in the osterix lineage in mice. S1P ablation in this lineage results in osteochondrodysplasia and variable degrees of early postnatal scoliosis. Embryonically, even though Runx2 and osterix expression are normal, S1P ablation results in a delay in vascular invasion and endochondral bone development. Mice appear normal when born, but by day 7 display pronounced dwarfism with fragile bones that exhibit significantly reduced mineral density, mineral apposition rate, bone formation rate and reduced osteoblasts indicating severe osteopenia. Mice suffer from a drastic reduction in bone marrow mesenchymal progenitors as analyzed by colony-forming unit-fibroblast assay. Fluorescence-activated cell sorting analysis of the skeletal mesenchyme harvested from bone marrow and collagenase-digested bone show a drastic reduction in hematopoietic lineage-negative, endothelial-negative, CD105 skeletal stem cells. Bone marrow mesenchymal progenitors are unable to differentiate into osteoblasts in vitro, with no effect on adipogenic differentiation. Postnatal mice have smaller growth plates with reduced hypertrophic zone. Thus, S1P controls bone development directly by regulating the skeletal progenitor population and their differentiation into osteoblasts.This article has an associated First Person interview with the first author of the paper.
Insights
Site-1 protease (S1P) is crucial for bone development. Ablating S1P in osteoprogenitors causes severe osteopenia and impaired skeletal stem cell differentiation, highlighting its direct role in bone formation.
Area of Science:
- Skeletal Biology
- Developmental Biology
- Biochemistry
Background:
- Site-1 protease (S1P) is a proprotein convertase essential for precursor protein activation.
- Previous studies linked S1P to chondrocyte function and endochondral bone formation.
Purpose of the Study:
- To investigate the mechanistic role of S1P in bone development by ablating it in the osterix lineage.
- To elucidate S1P's contribution to skeletal progenitor cell regulation and osteoblast differentiation.
Main Methods:
- Genetic ablation of S1P in the osterix lineage of mice.
- Analysis of skeletal morphology, bone mineral density, and cellularity.
- In vitro differentiation assays and flow cytometry of skeletal stem cells.
Main Results:
- S1P ablation led to osteochondrodysplasia, dwarfism, fragile bones, and severe osteopenia by postnatal day 7.
- A significant reduction in bone marrow mesenchymal progenitors and skeletal stem cells was observed.
- Impaired osteoblast differentiation of mesenchymal progenitors was noted, while adipogenesis remained unaffected.
Conclusions:
- S1P plays a direct and critical role in regulating skeletal progenitor populations.
- S1P is essential for normal osteoblast differentiation and overall bone development.
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