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Published on: July 3, 2020
Sclerostin Antibody Augments the Anabolic Bone Formation Response in a Mouse Model of Mechanical Tibial Loading
Alyson Morse1,2, Aaron Schindeler1,2, Michelle M McDonald3
1Orthopaedic Research & Biotechnology Unit, The Children's Hospital at Westmead, Westmead, Australia.
Abstract:
Decreased activity or expression of sclerostin, an endogenous inhibitor of Wnt/β-catenin signaling, results in increased bone formation and mass. Antibodies targeting and neutralizing sclerostin (Scl-Ab) have been shown to increase bone mass and reduce fracture risk. Sclerostin is also important in modulating the response of bone to changes in its biomechanical environment. However, the effects of Scl-Ab on mechanotransduction are unclear, and it was speculated that the loading response may be altered for individuals receiving Scl-Ab therapy. To address this, we carried out a 2-week study of tibial cyclic compressive loading on C57Bl/6 mice treated with vehicle or 100 mg/kg/wk Scl-Ab. Increases in bone volume, density, and dynamic bone formation were found with loading, and the anabolic response was further increased by the combination of load and Scl-Ab. To investigate the underlying mechanism, gene profiling by RNA sequencing (RNAseq) was performed on tibias isolated from mice from all four experimental groups. Major alterations in Wnt/β-catenin gene expression were found with tibial loading, however not with Scl-Ab treatment alone. Notably, the combination of load and Scl-Ab elicited a synergistic response from a number of specific Wnt-related and mechanotransduction factors. An unexpected finding was significant upregulation of factors in the Rho GTPase signaling pathway with combination treatment. In summary, combination therapy had a more profound anabolic response than either Scl-Ab or loading treatment alone. The Wnt/β-catenin and Rho GTPase pathways were implicated within bone mechanotransduction and support the concept that bone mechanotransduction is likely to encompass a number of interconnected signaling pathways. © 2017 American Society for Bone and Mineral Research.
Insights
Sclerostin antibodies (Scl-Ab) combined with mechanical loading significantly boost bone formation more than either treatment alone. This combination therapy enhances Wnt/β-catenin and Rho GTPase signaling pathways, improving bone mechanotransduction.
Area of Science:
- Bone biology and mechanobiology
- Pharmacological interventions for bone diseases
Background:
- Sclerostin inhibits Wnt/β-catenin signaling, thus decreasing bone formation.
- Sclerostin antibodies (Scl-Ab) increase bone mass and reduce fracture risk.
- The effect of Scl-Ab on bone mechanotransduction remains unclear.
Purpose of the Study:
- To investigate the effects of Scl-Ab on bone mechanotransduction.
- To determine if Scl-Ab alters the response of bone to mechanical loading.
- To explore the underlying molecular mechanisms of combined Scl-Ab and loading therapy.
Main Methods:
- A 2-week study involving tibial cyclic compressive loading in C57Bl/6 mice.
- Mice were treated with either vehicle or 100 mg/kg/wk Scl-Ab.
- Gene expression analysis using RNA sequencing (RNAseq) was performed on tibias.
Main Results:
- Tibial loading increased bone volume, density, and formation.
- The combination of loading and Scl-Ab resulted in a further enhanced anabolic response.
- Combination therapy synergistically upregulated Wnt-related factors, mechanotransduction factors, and unexpectedly, Rho GTPase signaling pathway factors.
Conclusions:
- Combination therapy of Scl-Ab and mechanical loading yields a more profound anabolic response than either treatment alone.
- Bone mechanotransduction involves interconnected signaling pathways, including Wnt/β-catenin and Rho GTPase.
- This study implicates both pathways in the enhanced bone response to combined therapy.

