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Published on: September 16, 2020
Increased callus mass and enhanced strength during fracture healing in mice lacking the sclerostin gene
Chaoyang Li1, Michael S Ominsky, Hong-Lin Tan
1Department of Metabolic Disorders, Amgen Inc., Thousand Oaks, CA 91320-1799, USA. chaoyang@amgen.com
Abstract:
Humans with inherited sclerostin deficiency have high bone mass. Targeted deletion of the sclerostin gene in mice (SOST-KO) causes increases in bone formation, bone mass and bone strength. Inhibition of sclerostin by a monoclonal antibody increases bone formation and enhances fracture healing in rodent and primate models. In this study, we describe the temporal progression of femoral fracture healing in SOST-KO mice compared with wild type (WT) control mice to further characterize the role of sclerostin in fracture healing. Sixty-seven male 9-10 week-old SOST-KO (N=37) and WT (N=30) mice underwent a closed femoral fracture. Weekly radiography was used to monitor the progress of healing. Histologic sections were used to characterize callus composition, evaluate callus bridging, and quantify lamellar bone formation on days 14 and 28. Densitometry and biomechanical testing were utilized to characterize bone mass and strength at the fractured and contralateral femurs on day 45. A significant improvement in time to radiographic healing (no discernible fracture line) was observed in SOST-KO mice, which corresponded to an increase in histologic bony bridging at 14 days (38% versus 0% in WT). Both genotypes appeared to be nearly fully bridged at 28 days post-fracture. The increased bridging at 14 days was associated with 97% greater bone area and 40% lower cartilage area in the callus of SOST-KO mice as compared to WT mice. Bone formation-related endpoints were higher in SOST-KO mice at both 14 and 28 days. At 45 days post-fracture, peak load and bone mass were significantly greater in the fractured femurs of SOST-KO mice as compared to WT mice. In conclusion, fractures in mice lacking sclerostin showed accelerated bridging, greater callus maturation, and increased bone formation and strength in the callus.
Insights
Mice lacking sclerostin (SOST-KO) exhibited accelerated bone fracture healing. This resulted in enhanced callus bridging, maturation, and increased bone formation and strength compared to wild-type mice.
Area of Science:
- Orthopedics
- Bone Biology
- Regenerative Medicine
Background:
- Sclerostin deficiency in humans leads to high bone mass.
- Sclerostin gene deletion (SOST-KO) in mice increases bone formation, mass, and strength.
- Sclerostin inhibition enhances fracture healing in preclinical models.
Purpose of the Study:
- To investigate the temporal progression of femoral fracture healing in SOST-KO mice.
- To characterize the role of sclerostin in the fracture healing process.
Main Methods:
- Closed femoral fracture in 67 male 9-10 week-old SOST-KO and WT mice.
- Weekly radiography for healing monitoring.
- Histology, densitometry, and biomechanical testing at specific time points (days 14, 28, 45).
Main Results:
- SOST-KO mice showed significantly faster radiographic healing and increased histologic bony bridging at day 14 (38% vs 0% in WT).
- SOST-KO callus had greater bone area and less cartilage at day 14.
- Increased bone formation, mass, and strength were observed in SOST-KO femurs at day 45.
Conclusions:
- Fractures in SOST-KO mice demonstrate accelerated bridging and enhanced callus maturation.
- Sclerostin deficiency promotes increased bone formation and strength during fracture healing.

