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Apoptosis in giant cell tumors of bone
1Department of Orthopaedic Surgery, Kurume University School of Medicine, Japan.
Abstract:
Although giant cell tumor of bone (GCT) is characterized by the extensive multinucleated giant cells among mononuclear stromal cells, proliferation of these cells and multinucleation are not without limit in certain cases. Few studies on oncogenesis of GCT have focused on the negative growth control, including growth arrest and apoptosis. The purpose of this study was to investigate the mechanism of cell death in multinucleated giant cells and stromal cells of GCT. In this study, we have demonstrated that GCT cells can undergo apoptosis. The cells in surgical specimen were positively stained in situ nick end labeling methods, and electron micrographs showed the morphological changes associated with apoptosis in some of stromal cells and multinucleated giant cells. A candidate responsible for this apoptosis was then examined using cultured GCT cells. We focused on Fas that is a major trigger of apoptosis. Cultured GCT cells expressed detectable amount of Fas on their surface. Although GCT cells did a little undergo apoptosis following treatment with anti-Fas alone, combination treatment with cyclohexamide led to an increase in apoptosis of the GCT cells. These data suggested that the sensitizing activity of cyclohexamide on anti-Fas mediated cytotoxicity could happen in vitro.
Insights
Giant cell tumor of bone (GCT) cells can undergo apoptosis, a form of programmed cell death. This study investigated the mechanisms of cell death in GCT, revealing potential therapeutic targets.
Area of Science:
- Oncology
- Cell Biology
- Pathology
Background:
- Giant cell tumor of bone (GCT) is characterized by multinucleated giant cells and mononuclear stromal cells.
- Limited research exists on negative growth control mechanisms like apoptosis in GCT oncogenesis.
Purpose of the Study:
- To investigate the mechanisms of cell death, specifically apoptosis, in both multinucleated giant cells and stromal cells of GCT.
- To identify potential molecular triggers for apoptosis in GCT cells.
Main Methods:
- In situ nick end labeling (TUNEL) assay on surgical specimens to detect apoptosis.
- Electron microscopy to identify morphological changes indicative of apoptosis.
- In vitro studies using cultured GCT cells treated with anti-Fas antibody and cyclohexamide.
Main Results:
- Apoptosis was confirmed in GCT stromal cells and multinucleated giant cells via TUNEL staining and electron microscopy.
- Cultured GCT cells express Fas on their surface.
- Combination treatment with anti-Fas and cyclohexamide significantly increased apoptosis in cultured GCT cells.
Conclusions:
- GCT cells are capable of undergoing apoptosis.
- Fas signaling, in conjunction with cyclohexamide, can induce apoptosis in GCT cells, suggesting a potential therapeutic strategy.