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Protein Expression Profiling of Giant Cell Tumors of Bone Treated with Denosumab
Kenta Mukaihara1, Yoshiyuki Suehara1, Shinji Kohsaka2
1Department of Orthopedic Surgery, Juntendo University School of Medicine, Tokyo, Japan.
Abstract:
Giant cell tumors of bone (GCTB) are locally aggressive osteolytic bone tumors. Recently, some clinical trials have shown that denosumab is a novel and effective therapeutic option for aggressive and recurrent GCTB. This study was performed to investigate the molecular mechanism underlying the therapeutic effect of denosumab. Comparative proteomic analyses were performed using GCTB samples which were taken before and after denosumab treatment. Each expression profile was analyzed using the software program to further understand the affected biological network. One of identified proteins was further evaluated by gelatin zymography and an immunohistochemical analysis. We identified 13 consistently upregulated proteins and 19 consistently downregulated proteins in the pre- and post-denosumab samples. Using these profiles, the software program identified molecular interactions between the differentially expressed proteins that were indirectly involved in the RANK/RANKL pathway and in several non-canonical subpathways including the Matrix metalloproteinase pathway. The data analysis also suggested that the identified proteins play a critical functional role in the osteolytic process of GCTB. Among the most downregulated proteins, the activity of MMP-9 was significantly decreased in the denosumab-treated samples, although the residual stromal cells were found to express MMP-9 by an immunohistochemical analysis. The expression level of MMP-9 in the primary GCTB samples was not correlated with any clinicopathological factors, including patient outcomes. Although the replacement of tumors by fibro-osseous tissue or the diminishment of osteoclast-like giant cells have been shown as therapeutic effects of denosumab, the residual tumor after denosumab treatment, which is composed of only stromal cells, might be capable of causing bone destruction; thus the therapeutic application of denosumab would be still necessary for these lesions. We believe that the protein expression patterns and the results of the network analysis will provide a better understanding of the effects of denosumab administration in patients with GCTB.
Insights
Denosumab treatment for giant cell tumors of bone (GCTB) affects protein expression, including reduced MMP-9 activity, offering insights into its therapeutic mechanism. Continued denosumab use is necessary due to residual stromal cells potentially causing bone destruction.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Giant cell tumors of bone (GCTB) are aggressive osteolytic bone tumors.
- Denosumab has emerged as an effective treatment for aggressive and recurrent GCTB.
- The precise molecular mechanisms behind denosumab's efficacy require further elucidation.
Purpose of the Study:
- To investigate the molecular mechanisms underlying denosumab's therapeutic effects in GCTB.
- To identify key proteins and pathways modulated by denosumab treatment.
- To understand the role of these molecular changes in GCTB osteolysis.
Main Methods:
- Comparative proteomic analysis of GCTB samples before and after denosumab treatment.
- Bioinformatic analysis of protein expression profiles to identify affected biological networks.
- Gelatin zymography and immunohistochemical analysis of specific proteins, including MMP-9.
- Correlation analysis of MMP-9 expression with clinicopathological factors.
Main Results:
- Identified 13 upregulated and 19 downregulated proteins post-denosumab treatment.
- Network analysis revealed involvement in RANK/RANKL and Matrix metalloproteinase (MMP) pathways.
- MMP-9 activity was significantly decreased, though residual stromal cells expressed MMP-9.
- MMP-9 expression did not correlate with clinicopathological factors or patient outcomes.
Conclusions:
- Denosumab modulates key protein networks involved in GCTB pathogenesis and osteolysis.
- Reduced MMP-9 activity is a significant effect of denosumab, but residual stromal cells may persist.
- Understanding these molecular changes supports the continued therapeutic application of denosumab for GCTB.
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