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Biological Compatibility Profile on Biomaterials for Bone Regeneration
Published on: November 16, 2018
In vitro reaction to orthopaedic biomaterials by macrophages and lymphocytes isolated from patients undergoing
1Orthopaedic Research Laboratory, Stanford University School of Medicine, CA 94305-5341, USA.
Abstract:
Periprosthetic tissues observed at sites of loose total joint implants exhibit abundant macrophages, lymphocytes, fibroblasts and particulate debris. Macrophages phagocytose orthopaedic debris and release proinflammatory cytokines, chemokines, matrix metalloproteinases and other substances. In addition, other cell types present in tissues harvested from the bone-implant interface are thought to influence periprosthetic bone resorption. The present study examined the effects of polymethylmethacrylate (PMMA), cobalt chrome molybdenum alloy (CoCr), and titanium-alloy particle challenge on macrophages co-cultured with lymphocytes in vitro. Potential synergistic effects of lymphocytes on macrophage activation were determined by measuring interleukin-6 and tumor necrosis factor-alpha release following exposure to orthopaedic biomaterial particles. Exposure of macrophages or macrophages co-cultured with lymphocytes to all three types of particles resulted in increased release of interleukin-6 and tumor necrosis factor-alpha at 48 h, when compared to macrophages or macrophages co-cultured with lymphocytes, respectively, cultured in the absence of particles. Lymphocytes isolated from periprosthetic tissues secreted increased basal levels of cytokines relative to peripheral blood lymphocytes. Higher doses of PMMA and titanium-alloy particles stimulated increased levels of cytokine release in the macrophage and macrophage/lymphocyte groups. In contrast, a higher dose of CoCr particles (0.075% v/v) was not as effective as the 0.015% v/v dose, indicating probable CoCr toxicity. The macrophage/lymphocyte co-culture did not show synergism between the two types of cells with respect to cytokine release. T-cells at the bone-implant interface may alter the biological response to particulate debris.
Insights
Orthopaedic implant debris, including polymethylmethacrylate (PMMA), cobalt chrome (CoCr), and titanium alloy particles, activates macrophages and lymphocytes. Lymphocytes from implant sites show higher cytokine release, but no synergistic effect was observed in co-cultures.
Area of Science:
- Biomaterials Science
- Immunology
- Orthopaedic Surgery
Background:
- Periprosthetic tissues around loose joint implants contain macrophages, lymphocytes, and debris.
- Macrophages phagocytose debris, releasing inflammatory mediators that may affect bone resorption.
- The role of lymphocytes in the cellular response to biomaterial particles is not fully understood.
Purpose of the Study:
- To investigate the effects of polymethylmethacrylate (PMMA), cobalt chrome molybdenum alloy (CoCr), and titanium alloy particles on macrophages.
- To determine if lymphocytes synergistically enhance macrophage activation in response to orthopaedic debris.
- To compare the inflammatory response of lymphocytes from periprosthetic tissues versus peripheral blood.
Main Methods:
- Co-culture of macrophages with lymphocytes in vitro.
- Exposure to particles of PMMA, CoCr, and titanium alloy at different concentrations.
- Measurement of interleukin-6 (IL-6) and tumor necrosis factor-alpha (TNF-α) release at 48 hours.
Main Results:
- All three particle types increased IL-6 and TNF-α release from macrophages and co-cultures.
- Periprosthetic lymphocytes exhibited higher basal cytokine secretion than peripheral blood lymphocytes.
- Higher doses of PMMA and titanium particles increased cytokine release; higher CoCr dose showed reduced effect, suggesting toxicity.
Conclusions:
- Biomaterial particles stimulate inflammatory cytokine release from macrophages and lymphocytes.
- Lymphocytes from periprosthetic tissues are more activated basally but do not synergize with macrophages in this model.
- T-cells at the bone-implant interface may modulate the biological response to particulate debris.
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