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Macrophage inflammatory protein-1 delta: a novel osteoclast stimulating factor secreted by renal cell carcinoma bone
Scott L Kominsky1, Samir M Abdelmagid, Michele Doucet
1Department of Orthopaedic Surgery, Johns Hopkins University School of Medicine, Baltimore, MD 21205, USA. kominsc@jhmi.edu
Abstract:
Approximately 30% of patients with renal cell carcinoma (RCC) develop bone metastasis, which is characterized by extensive osteolysis leading to severe bone pain and pathologic fracture. Although the mechanism of RCC-induced osteolysis is unknown, studies of bone metastasis have shown that tumor-induced changes in bone remodeling are likely mediated by alterations in the bone microenvironment. Here, we report the discovery of a novel osteoclast stimulatory factor secreted by RCC bone metastasis (RBM). Through microarray analysis, we found expression of the chemokine, macrophage inflammatory protein-1 delta (MIP-1 delta), to be increased in RBM versus patient-matched primary RCC tissues and confirmed this finding by quantitative reverse transcription-PCR (qRT-PCR) and ELISA (P < 0.05). Furthermore, MIP-1 delta expression in RBM tissues was significantly (P < 0.001) higher than in human bone marrow, suggesting a potential alteration of the bone microenvironment. The receptors for MIP-1 delta, CCR1 and CCR3, were expressed in both osteoclast precursors and mature, bone-resorbing osteoclasts as shown by qRT-PCR and Western analysis. In functional studies, MIP-1 delta stimulated chemotaxis of two osteoclast precursor cell types: murine bone marrow mononuclear cells (BM-MNC) and RAW 264.7 cells. Furthermore, MIP-1 delta treatment of murine calvaria caused increased bone resorption as determined by measurement of released calcium. Correspondingly, MIP-1 delta significantly enhanced osteoclast formation and activity in response to RANKL in both BM-MNC and RAW 264.7 cells. Taken together, these data suggest that MIP-1 delta expression is increased in RBM relative to RCC and bone marrow, and may promote RBM-induced osteolysis by stimulating the recruitment and differentiation of osteoclast precursors into mature osteoclasts.
Insights
Macrophage inflammatory protein-1 delta (MIP-1 delta) is elevated in renal cell carcinoma bone metastasis and promotes osteolysis by stimulating osteoclast activity. This discovery offers new insights into bone metastasis mechanisms in cancer patients.
Area of Science:
- Oncology
- Bone Biology
- Immunology
Background:
- Renal cell carcinoma (RCC) bone metastasis causes osteolysis, pain, and fractures.
- The mechanism of RCC-induced osteolysis and its impact on the bone microenvironment are not fully understood.
Purpose of the Study:
- To identify novel osteoclast stimulatory factors secreted by renal cell carcinoma bone metastasis (RBM).
- To investigate the role of macrophage inflammatory protein-1 delta (MIP-1 delta) in RBM-induced osteolysis.
Main Methods:
- Microarray analysis, qRT-PCR, and ELISA were used to assess MIP-1 delta expression in RBM tissues.
- Receptor expression (CCR1, CCR3) on osteoclast precursors and mature osteoclasts was analyzed.
- Functional studies involved chemotaxis assays, bone resorption measurements, and osteoclast differentiation experiments.
Main Results:
- MIP-1 delta expression was significantly increased in RBM compared to primary RCC and bone marrow.
- MIP-1 delta receptors (CCR1, CCR3) were found on osteoclast precursors and mature osteoclasts.
- MIP-1 delta stimulated osteoclast precursor chemotaxis, bone resorption, and RANKL-induced osteoclast formation and activity.
Conclusions:
- MIP-1 delta is upregulated in RBM and may drive osteolysis by enhancing osteoclast recruitment and differentiation.
- This study identifies MIP-1 delta as a key factor in the bone microenvironment alterations associated with RCC bone metastasis.
- Targeting MIP-1 delta could offer a therapeutic strategy for managing RCC-induced osteolysis.
