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Macrophages in bone fracture healing: Their essential role in endochondral ossification
Claudia Schlundt1, Thaqif El Khassawna2, Alessandro Serra3
1Julius Wolff Institute and Center for Muskuloskeletal Surgery, Charité - Universitätsmedizin Berlin, Augustenburger Platz 1, 13353, Berlin, Germany; Berlin Brandenburg Center for Regenerative Therapies (BCRT), Charité - Universitätsmedizin Berlin, Augustenburger Platz 1, 13353, Berlin, Germany.
Abstract:
In fracture healing, skeletal and immune system are closely interacting through common cell precursors and molecular mediators. It is thought that the initial inflammatory reaction, which involves migration of macrophages into the fracture area, has a major impact on the long term outcome of bone repair. Interestingly, macrophages reside during all stages of fracture healing. Thus, we hypothesized a critical role for macrophages in the subsequent phases of bone regeneration. This study examined the impact of in vivo induced macrophage reduction, using clodronate liposomes, on the different healing phases of bone repair in a murine model of a standard closed femoral fracture. A reduction in macrophages had no obvious effect on the early fracture healing phase, but resulted in a delayed hard callus formation, thus severely altering endochondral ossification. Clodronate treated animals clearly showed delayed bony consolidation of cartilage and enhanced periosteal bone formation. Therefore, we decided to backtrack macrophage distribution during fracture healing in non-treated mice, focusing on the identification of the M1 and M2 subsets. We observed that M2 macrophages were clearly prevalent during the ossification phase. Therefore enhancement of M2 phenotype in macrophages was investigated as a way to further bone healing. Induction of M2 macrophages through interleukin 4 and 13 significantly enhanced bone formation during the 3week investigation period. These cumulative data illustrate their so far unreported highly important role in endochondral ossification and the necessity of a fine balance in M1/M2 macrophage function, which appears mandatory to fracture healing and successful regeneration.
Insights
Macrophages play a critical role in fracture healing by influencing bone regeneration. Modulating macrophage subtypes, particularly M2 macrophages, can significantly enhance bone formation and promote successful fracture repair.
Area of Science:
- Immunology
- Orthopedics
- Regenerative Medicine
Background:
- The skeletal and immune systems interact extensively during fracture healing.
- Macrophages are present throughout all fracture healing stages, suggesting a role beyond initial inflammation.
- The specific functions of macrophage subsets during bone regeneration remain incompletely understood.
Purpose of the Study:
- To investigate the impact of macrophage depletion on fracture healing phases.
- To identify the roles of M1 and M2 macrophage subsets in bone repair.
- To explore the potential of enhancing M2 macrophages for improved fracture healing.
Main Methods:
- Utilized a murine model of closed femoral fracture.
- Induced macrophage reduction in vivo using clodronate liposomes.
- Analyzed macrophage subsets (M1/M2) during fracture healing.
- Investigated the effect of interleukin 4 and 13 on M2 macrophage induction and bone formation.
Main Results:
- Macrophage reduction delayed hard callus formation and altered endochondral ossification.
- Delayed bony consolidation of cartilage and enhanced periosteal bone formation were observed after macrophage depletion.
- M2 macrophages were found to be prevalent during the ossification phase.
- Enhancing M2 macrophage phenotype significantly boosted bone formation.
Conclusions:
- Macrophages are crucial for endochondral ossification during fracture healing.
- A balanced M1/M2 macrophage phenotype is essential for successful bone regeneration.
- Targeting M2 macrophage activity presents a promising therapeutic strategy for fracture repair.
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