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Soluble Sema4D cleaved from osteoclast precursors by TACE suppresses osteoblastogenesis
Takenobu Ishii1, Montserrat Ruiz-Torruella2, Jae Young Kim3
1Department of Orthodontics, Tokyo Dental College, Chiba, Japan.
Abstract:
Bone remodelling is mediated by orchestrated communication between osteoclasts and osteoblasts which, in part, is regulated by coupling and anti-coupling factors. Amongst formally known anti-coupling factors, Semaphorin 4D (Sema4D), produced by osteoclasts, plays a key role in downmodulating osteoblastogenesis. Sema4D is produced in both membrane-bound and soluble forms; however, the mechanism responsible for producing sSema4D from osteoclasts is unknown. Sema4D, TACE and MT1-MMP are all expressed on the surface of RANKL-primed osteoclast precursors. However, only Sema4D and TACE were colocalized, not Sema4D and MT1-MMP. When TACE and MT1-MMP were either chemically inhibited or suppressed by siRNA, TACE was found to be more engaged in shedding Sema4D. Anti-TACE-mAb inhibited sSema4D release from osteoclast precursors by ~90%. Supernatant collected from osteoclast precursors (OC-sup) suppressed osteoblastogenesis from MC3T3-E1 cells, as measured by alkaline phosphatase activity, but OC-sup harvested from the osteoclast precursors treated with anti-TACE-mAb restored osteoblastogenesis activity in a manner that compensates for diminished sSema4D. Finally, systemic administration of anti-TACE-mAb downregulated the generation of sSema4D in the mouse model of critical-sized bone defect, whereas local injection of recombinant sSema4D to anti-TACE-mAb-treated defect upregulated local osteoblastogenesis. Therefore, a novel pathway is proposed whereby TACE-mediated shedding of Sema4D expressed on the osteoclast precursors generates functionally active sSema4D to suppress osteoblastogenesis.
Insights
Tumor necrosis factor-alpha-converting enzyme (TACE) sheds Semaphorin 4D (Sema4D) from osteoclasts, generating soluble Sema4D that inhibits bone formation. Inhibiting TACE reduces soluble Sema4D and promotes osteoblastogenesis.
Area of Science:
- Cell Biology
- Biochemistry
- Orthopedics
Background:
- Bone remodeling involves osteoclast and osteoblast communication, regulated by coupling and anti-coupling factors.
- Osteoclast-derived Semaphorin 4D (Sema4D) is a known anti-coupling factor that inhibits osteoblastogenesis.
- The mechanism generating soluble Sema4D (sSema4D) from osteoclasts remains unclear.
Purpose of the Study:
- To elucidate the mechanism of sSema4D production by osteoclasts.
- To investigate the role of TACE and MT1-MMP in Sema4D shedding.
- To evaluate the therapeutic potential of targeting TACE for bone defect repair.
Main Methods:
- Co-localization studies of Sema4D, TACE, and MT1-MMP on osteoclast precursors.
- Chemical inhibition and siRNA suppression of TACE and MT1-MMP.
- Measurement of sSema4D release and osteoblastogenesis.
- In vivo studies using a mouse model of critical-sized bone defect.
Main Results:
- TACE, but not MT1-MMP, co-localizes with Sema4D on osteoclast precursors.
- TACE inhibition significantly reduced sSema4D release (~90%).
- Osteoclast-conditioned medium suppressed osteoblastogenesis, an effect reversed by anti-TACE treatment.
- Systemic anti-TACE administration reduced sSema4D and enhanced bone defect healing in mice.
Conclusions:
- A novel pathway involving TACE-mediated shedding of Sema4D generates functionally active sSema4D.
- This pathway suppresses osteoblastogenesis and impairs bone healing.
- Targeting TACE represents a potential therapeutic strategy for promoting bone regeneration.
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