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Cyclooxygenase-2 (COX-2) activity is necessary for bone fracture healing to proceed normally. COX-2 is encoded by Ptgs2 and is expressed by several cell types during fracture healing, suggesting that COX-2 regulates multiple processes to affect fracture healing. Here, the role of COX-2 expression in osteoclasts during mouse femur fracture healing was examined. Mice lacking COX-2 (Ptgs2-cKO) in osteoclasts and other myeloid cells were made using a floxed COX-2 gene (Ptgs2) and cre recombinase expressed from the Lyz2° allele. Fracture healing was assessed by radiology, histology, immunohistochemistry, and mRNA quantification. Targeted loss of COX-2 in osteoclasts was confirmed by immunohistochemistry and led to significant reductions in callus osteoclasts. Comparisons between Ptgs2-cKO and control mice found significant reductions in callus chondrogenesis and bone formation in the Ptgs2-cKO mice. The reductions were accompanied by delayed callus vascularization and reduced MMP-13 expression. Immunohistochemistry showed that osteoclasts along the callus chondro-osseous junction normally express COX-2. In Ptgs2-cKO mice, COX-2 expression was reduced in osteoclasts at the chondro-osseous junction and coincided with reduced MMP-13 expression at the chondro-osseous junction. The results indicate that COX-2 expressed by osteoclasts along the chondro-osseous junction promotes vasculogenesis and regulates chondrocyte hypertrophy during endochondral ossification. The results also indicate that osteoclasts at the callus chondro-osseous junction coordinate multiple cellular processes to promote endochondral ossification.
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http://dx.doi.org/10.1002/jor.70040 | DOI Listing |
J Orthop Res
August 2025
Department of Orthopaedics, Rutgers-New Jersey Medical School, Newark, New Jersey, USA.
Cyclooxygenase-2 (COX-2) activity is necessary for bone fracture healing to proceed normally. COX-2 is encoded by Ptgs2 and is expressed by several cell types during fracture healing, suggesting that COX-2 regulates multiple processes to affect fracture healing. Here, the role of COX-2 expression in osteoclasts during mouse femur fracture healing was examined.
View Article and Find Full Text PDFJ Orthop Res
July 2025
Department of Orthopaedics, University of Maryland School of Medicine, Baltimore, Maryland, United States of America.
Growth plate injury, which may trigger growth plate fusion or arrest, is a common occurrence in pediatric orthopaedics that can lead to angulation of the limb and limb length discrepancy. Growth plate injuries are currently treated palliatively, with surgical intervention when severe limb length discrepancy or angulation is found during follow-up visits. The cellular changes in the chondrocytes in injured growth plate have not been fully elucidated, and understanding these factors will provide important insights for the development of therapies that promote growth plate repair and prevent growth arrest.
View Article and Find Full Text PDFCell Tissue Res
July 2025
Division of Histology, Meikai University School of Dentistry, 1-1 Keyakidai, Sakado, Saitama, 3500283, Japan.
Septoclasts (SCs), which express both fatty acid-binding protein 5 and platelet-derived growth factor beta, are mononuclear cartilage-resorbing cells predominantly located at the chondro-osseous junction of the growth plate (GP). These cells originate from pericytes (PCs). Cathepsin B (CTSB) and matrix metalloproteinase-13 (MMP13), expressed in SCs, participate in the degradation of collagen and other cartilage matrices.
View Article and Find Full Text PDFExp Biol Med (Maywood)
May 2025
Department of Orthopaedics, Rutgers-New Jersey Medical School, Newark, NJ, United States.
Periostin and osteopontin are matricellular proteins abundantly expressed in bone fracture callus. Null mutation of either the periostin () gene or the osteopontin () gene can impair bone fracture healing. However, the cell and molecular pathways affected by loss of POSTN or SPP1 which lead to impaired fracture healing are not well understood.
View Article and Find Full Text PDFJ Oral Biosci
September 2024
Ultrastructure of Hard Tissue, Graduate School of Dental Medicine, Faculty of Dental Medicine, Hokkaido University, Japan. Electronic address: