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Construction and Evaluation of a Murine Calvarial Osteolysis Model by Exposure to CoCrMo Particles in Aseptic Loosening
Published on: February 17, 2018
Polycan suppresses osteoclast differentiation and titanium particle-induced osteolysis in mice
Young-Eun Lee1, Kwang-Soo Park2, Eui-Kyun Park3
1Department of Dental Hygiene, Daegu Health College, 15 Youngsong-Ro, Buk-Gu, 702-722, Daegu, Republic of Korea.
Abstract:
Particle-induced osteolysis is a major issue, and it is most likely the result of enhanced osteoclast activation in the pathogenesis of various skeletal diseases. This study investigated whether the inhibitory effect that Polycan has on osteoclast differentiation can be used to treat osteolysis induced by titanium (Ti) particles. To this end, the effects of Polycan were examined in terms of the cytotoxicity, osteoclast differentiation, cytokine expression, and Ti-induced calvarial osteolysis. Polycan had no significant cytotoxic effects on bone marrow macrophages (BMMs) but instead increased BMM proliferation. High levels of interleukin (IL)-6, IL-12, and macrophage colony-stimulating factor (M-CSF) were expressed in BMM cells in the presence of Polycan, suggesting that Polycan drives the differentiation of BMMs into M1 macrophages. Polycan significantly inhibited osteoclast differentiation induced by M-CSF and the receptor activator of nuclear factor kappa-B ligand (RANKL). The expression levels of the osteoclast marker genes significantly decreased, and Polycan induced and maintained the expression of IL-12, which suppressed osteoclast differentiation. In contrast, the RANKL signaling pathway was not inhibited by Polycan. An in vivo calvarial osteolysis model revealed that Polycan significantly decreased the osteoclast numbers and suppressed osteolysis. Our results suggest that the natural compound Polycan is a good candidate for therapeutic intervention against enhanced osteoclast differentiation and Ti particle-induced osteolysis. © 2015 Wiley Periodicals, Inc. J Biomed Mater Res Part B: Appl Biomater, 104B: 1170-1175, 2016.
Insights
Polycan, a natural compound, effectively inhibits osteoclast differentiation and reduces titanium particle-induced osteolysis without significant cytotoxicity. This suggests Polycan
Area of Science:
- Biomaterials Science
- Immunology
- Orthopedics
Background:
- Particle-induced osteolysis is a significant clinical problem linked to enhanced osteoclast activation.
- Titanium (Ti) particles, commonly used in orthopedic implants, can trigger osteolysis.
Purpose of the Study:
- To investigate the potential of Polycan, a natural compound, in treating osteolysis induced by Ti particles.
- To evaluate Polycan's effects on osteoclast differentiation, cytokine expression, and Ti-induced calvarial osteolysis.
Main Methods:
- Assessed Polycan's cytotoxicity and effects on bone marrow macrophage (BMM) proliferation.
- Examined cytokine expression (IL-6, IL-12, M-CSF) in BMMs treated with Polycan.
- Investigated Polycan's impact on osteoclast differentiation induced by M-CSF and RANKL.
- Utilized an in vivo calvarial osteolysis model to assess Polycan's therapeutic efficacy.
Main Results:
- Polycan demonstrated no significant cytotoxicity to BMMs and enhanced their proliferation.
- Polycan modulated cytokine expression, promoting M1 macrophage differentiation.
- Polycan significantly inhibited M-CSF and RANKL-induced osteoclast differentiation, decreasing osteoclast marker gene expression.
- In vivo studies showed Polycan significantly reduced osteoclast numbers and suppressed calvarial osteolysis.
Conclusions:
- Polycan effectively suppresses osteoclast differentiation and osteolysis induced by Ti particles.
- Polycan's mechanism involves modulating cytokine expression and potentially M1 macrophage differentiation.
- Polycan is a promising therapeutic candidate for managing particle-induced osteolysis.
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