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Foreign body giant cell induction in the CSF-1-deficient osteopetrotic (op/op) mouse
1Department of Oral Pathobiological Science, Hokkaido University Graduate School of Dental Medicine, Kita 13 Nishi 7 Kita-ku, Sapporo 060-8586, Japan. iz@den.hokudai.ac.jp
Abstract:
The osteopetrosis (op) mutation in mice is characterized by generalized skeletal sclerosis; reduced numbers of osteoclasts, macrophages, and monocytes; and failure to be cured by bone marrow transplantation. This mutation has been shown to result from an absence of colony-stimulating factor-1 (CSF-1) and reported to be cured by treatment with CSF-1. Macrophage polykaryons are known to be formed by fusion of mononuclear precursors and the presence of subcutaneous implants can elicit the formation of macrophage polykaryons. In order to determine if recruitment of foreign body giant cells is also impaired in osteopetrotic mice, tissue reactions to subcutaneously implanted polyvinyl sponges were studied and compared with normal mice. Our result showed that, in the op mouse, recruitment of macrophages and foreign body giant cells in response to the implants was quantitatively not different from that of normal mice. However, these cells were smaller and did not migrate as deeply into the implant as those seen in normal littermates. In contrast, resident macrophages obtained by peritoneal lavage were significantly reduced in op mice. These data indicate that there is a deficiency in the ability of op mice to mount a foreign body giant cell response to an implanted sponge characterized by a deficiency in the recruitment of precursor cells that are capable of either full development and spreading or migration into the implanted sponge. These data add to the emerging appreciation of the regional differences among macrophage populations in their dependence on CSF-1 for differentiation and survival.
Insights
Osteopetrotic (op) mice show normal recruitment but impaired function of macrophages and foreign body giant cells in response to implants. This suggests a colony-stimulating factor-1 (CSF-1) deficiency impacting macrophage precursor cell development.
Area of Science:
- Immunology
- Cell Biology
- Skeletal Biology
Background:
- Osteopetrosis (op) mutation in mice causes skeletal sclerosis and reduced myeloid cells.
- The op mutation is linked to a deficiency in colony-stimulating factor-1 (CSF-1).
- Macrophage polykaryons form via precursor fusion; subcutaneous implants can induce this response.
Purpose of the Study:
- To investigate if osteopetrotic mice exhibit impaired foreign body giant cell recruitment.
- To compare tissue reactions to implanted polyvinyl sponges in op mice versus normal mice.
Main Methods:
- Subcutaneous polyvinyl sponges were implanted in osteopetrotic and normal mice.
- Tissue reactions, including macrophage and giant cell recruitment and morphology, were analyzed.
- Resident peritoneal macrophages were quantified via lavage.
Main Results:
- Macrophage and foreign body giant cell recruitment to sponges was quantitatively similar in op and normal mice.
- However, cells in op mice were smaller and showed reduced migration into the sponge.
- Resident peritoneal macrophages were significantly reduced in op mice.
Conclusions:
- Osteopetrotic mice have a deficient foreign body giant cell response due to impaired precursor cell recruitment, development, or migration.
- This deficiency is linked to colony-stimulating factor-1 (CSF-1) absence.
- Data highlight regional differences in macrophage populations' dependence on CSF-1 for differentiation and survival.
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