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Downregulation of Krüppel-like factor 15 expression delays endochondral bone ossification during fracture healing
Shotaro Tachibana1, Shinya Hayashi1, Kemmei Ikuta1
1Department of Orthopaedic Surgery, Kobe University Graduate School of Medicine, Kobe, Japan.
Objective:
The role of Krüppel-like zinc finger transcription factor 15 (KLF15) in endochondral ossification during fracture healing remains unexplored. In this study, we aimed to elucidate the impact of KLF15 in a mouse model of tibial transverse fracture.
Methods:
We created tamoxifen-inducible, cartilage-specific KLF15 knockout mice (KLF15 KO). KLF15 fl/fl Col2-CreERT mice from the same litters as the KLF15 KO mice, but not treated with 4-hydroxytamoxifen, were used as controls (CT). At 10 weeks, male KLF15 KO and CT mice underwent tibial fracture followed by intramedullary nailing. Both groups were administered tamoxifen at days 0, 3, and 7 after surgery. The tibiae were harvested on post-surgery days 7, 10, and 14 for radiological assessment using micro-computed tomography. Histological staining (Safranin-O) and immunohistochemistry for KLF15, SOX9, Indian hedgehog (IHH), RUNX2, and Osterix were performed. Additionally, cartilage from mouse fetus was cultured for qRT-PCR and western blot analyses of KLF15, SOX9, IHH, Col2, RUNX2, Osterix, TGF-β, SMAD3, and phosphor-SMAD3.
Results:
The radiological assessment revealed that immature callus formation was delayed in KLF15 KO, compared with that in CT, peaking on day 14 compared with that on day 10 in CT. KLF15 KO mice exhibited delayed fracture healing and reduced Safranin-O staining at days 7 and 10 post-surgery. The ratio of cells positive for KLF15 and SOX9 was significantly lower in KLF15 KO than in CT, whereas the ratios for IHH, RUNX2, and Osterix showed no significant difference. RT-PCR revealed reduced expression of KLF15, SOX9, and COL2, with no significant changes in IHH, Osterix, RUNX2, TGF-β, and SMAD3. Western blot analysis indicated decreased SMAD3 phosphorylation in KLF15 KO mice.
Conclusion:
KLF15 regulates SOX9 via the TGF-β-SMAD3-SOX9 pathway, independent of IHH, in endochondral ossification. The KLF15 deficiency decreases SOX9 expression through reduced SMAD3 phosphorylation, subsequently delaying fracture healing.
Insights
Krüppel-like factor 15 (KLF15) is crucial for fracture healing, regulating SOX9 expression via the TGF-β-SMAD3 pathway. KLF15 deficiency delays healing by reducing SOX9 and SMAD3 phosphorylation.
Area of Science:
- Skeletal Biology
- Molecular Biology
- Regenerative Medicine
Background:
- Endochondral ossification is critical for bone fracture healing.
- The precise role of Krüppel-like factor 15 (KLF15) in this process is not well understood.
- Investigating KLF15's function can reveal novel therapeutic targets for enhancing bone repair.
Purpose of the Study:
- To investigate the function of KLF15 in endochondral ossification during fracture healing.
- To elucidate the molecular mechanisms by which KLF15 influences fracture repair.
- To determine the impact of KLF15 deficiency on callus formation and maturation.
Main Methods:
- Generated tamoxifen-inducible, cartilage-specific KLF15 knockout (KLF15 KO) mice.
- Induced tibial transverse fractures and assessed healing via micro-computed tomography and histology (Safranin-O).
- Analyzed protein and gene expression of key regulators (KLF15, SOX9, IHH, RUNX2, Osterix, TGF-β, SMAD3) using immunohistochemistry, qRT-PCR, and Western blot.
Main Results:
- KLF15 deficiency delayed immature callus formation and fracture healing, with reduced Safranin-O staining.
- KLF15 KO mice showed significantly lower KLF15 and SOX9 expression.
- Reduced SMAD3 phosphorylation and SOX9 expression were observed in KLF15 KO mice, independent of IHH signaling.
Conclusions:
- KLF15 plays a vital role in endochondral ossification during fracture healing.
- KLF15 regulates SOX9 expression through the TGF-β-SMAD3 pathway.
- KLF15 deficiency impairs fracture healing by downregulating SOX9 via reduced SMAD3 phosphorylation.
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