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A Macrophage Reporter Cell Assay to Examine Toll-Like Receptor-Mediated NF-kB/AP-1 Signaling on Adsorbed Protein Layers on Polymeric Surfaces
Published on: January 7, 2020
Polyubiquitination events mediate polymethylmethacrylate (PMMA) particle activation of NF-kappaB pathway
Yasuhiro Yamanaka1, Kannan Karuppaiah, Yousef Abu-Amer
1Department of Orthopedic Surgery, Asahikawa Medical College, Asahikawa 078-8510, Japan.
Abstract:
The pathologic response to implant wear-debris constitutes a major component of inflammatory osteolysis and remains under intense investigation. Polymethylmethacrylate (PMMA) particles, which are released during implant wear and loosening, constitute a major culprit by virtue of inducing inflammatory and osteolytic responses by macrophages and osteoclasts, respectively. Recent work by several groups has identified important cellular entities and secreted factors that contribute to inflammatory osteolysis. In previous work, we have shown that PMMA particles contribute to inflammatory osteolysis through stimulation of major pathways in monocytes/macrophages, primarily NF-κB and MAP kinases. The former pathway requires assembly of large IKK complex encompassing IKK1, IKK2, and IKKγ/NEMO. We have shown recently that interfering with the NF-κB and MAPK activation pathways, through introduction of inhibitors and decoy molecules, impedes PMMA-induced inflammation and osteolysis in mouse models of experimental calvarial osteolysis and inflammatory arthritis. In this study, we report that PMMA particles activate the upstream transforming growth factor β-activated kinase-1 (TAK1), which is a key regulator of signal transduction cascades leading to activation of NF-κB and AP-1 factors. More importantly, we found that PMMA particles induce TAK1 binding to NEMO and UBC13. In addition, we show that PMMA particles induce TRAF6 and UBC13 binding to NEMO and that lack of TRAF6 significantly attenuates NEMO ubiquitination. Altogether, these observations suggest that PMMA particles induce ubiquitination of NEMO, an event likely mediated by TRAF6, TAK1, and UBC13. Our findings provide important information for better understanding of the mechanisms underlying PMMA particle-induced inflammatory responses.
Insights
Polymethylmethacrylate (PMMA) particles trigger inflammatory osteolysis by activating TAK1, which binds to NEMO and UBC13. This interaction leads to NEMO ubiquitination, mediated by TRAF6, TAK1, and UBC13, driving inflammatory responses.
Area of Science:
- Biomaterials Science
- Immunology
- Orthopedic Research
Background:
- Implant wear debris, particularly Polymethylmethacrylate (PMMA) particles, is a primary driver of inflammatory osteolysis.
- Understanding the molecular mechanisms of PMMA-induced inflammation is crucial for developing effective treatments for implant loosening and associated bone loss.
- Previous research implicated NF-κB and MAPK pathways in PMMA-mediated osteolysis.
Purpose of the Study:
- To investigate the upstream signaling events involved in PMMA particle-induced inflammatory osteolysis.
- To elucidate the role of transforming growth factor β-activated kinase-1 (TAK1) and its interaction with NEMO in the inflammatory cascade.
- To identify key molecular mediators of PMMA-induced inflammatory responses.
Main Methods:
- Investigated the activation of TAK1 by PMMA particles in relevant cell types.
- Analyzed the binding interactions between PMMA particles, TAK1, NEMO, UBC13, and TRAF6 using co-immunoprecipitation assays.
- Assessed the impact of TRAF6 deficiency on NEMO ubiquitination in response to PMMA particles.
Main Results:
- PMMA particles were found to activate TAK1, a key regulator of NF-κB and AP-1 signaling.
- PMMA particles induced the binding of TAK1 and UBC13 to NEMO.
- PMMA particles promoted TRAF6 and UBC13 binding to NEMO, and TRAF6 deficiency significantly reduced NEMO ubiquitination.
Conclusions:
- PMMA particles initiate inflammatory osteolysis through the activation of TAK1 and subsequent ubiquitination of NEMO.
- The interaction between TAK1, TRAF6, and UBC13 is critical for mediating PMMA-induced inflammatory responses.
- These findings offer novel insights into the molecular pathogenesis of implant wear-induced osteolysis, identifying potential therapeutic targets.
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