In Vitro Macrophage Response to Nanometer-size Particles from Materials Used in Hip Implants
Wear particle-induced inflammation leading to periprosthetic osteolysis remains a major cause of hip implant failure. As polyethylene particles from conventional metal-on-polyethylene implants have been associated with these failures, an interest in lower wear metal-on-metal (MM) bearings has emerg...
Main Author: | |
---|---|
Language: | en |
Published: |
2011
|
Subjects: | |
Online Access: | http://hdl.handle.net/10393/20138 |
id |
ndltd-LACETR-oai-collectionscanada.gc.ca-OOU-OLD.-20138 |
---|---|
record_format |
oai_dc |
spelling |
ndltd-LACETR-oai-collectionscanada.gc.ca-OOU-OLD.-201382013-04-05T03:20:43ZIn Vitro Macrophage Response to Nanometer-size Particles from Materials Used in Hip ImplantsVanos, Robilynwear particlesimplantarthroplastymacrophagesinflammatory responseperiprosthetic osteolysisWear particle-induced inflammation leading to periprosthetic osteolysis remains a major cause of hip implant failure. As polyethylene particles from conventional metal-on-polyethylene implants have been associated with these failures, an interest in lower wear metal-on-metal (MM) bearings has emerged. However, the biological effects of nanometer-size chromium oxide particles, predominant type of wear particles produced by MM implants, remain mostly unknown. Therefore, this study aimed to determine the cytotoxicity of nanometer-size Cr2O3 particles on macrophages in vitro, by analyzing their effects on cell mortality and cytokine release and comparing them with those of similarly-sized alumina (Al2O3) particles (known to be relatively bioinert). Results showed that at high concentrations, nanometer-size Cr2O3 particles can be cytotoxic to macrophages, inducing significant decreases in total cell numbers and increases in necrosis. Results also showed that, at high concentrations, the cytotoxicity of Cr2O3 particles was overall higher than that of Al2O3 particles, even though Cr2O3 and Al2O3 are both stable forms of ceramic materials. However, it appeared to be lower than that of previously reported conventional polyethylene and CoCrMo particles. Therefore, chromium oxide particles may not be the main culprit in initiating the inflammatory reaction in MM periprosthetic tissues.2011-08-09T12:53:07Z2011-08-09T12:53:07Z20112011-08-09Thèse / Thesishttp://hdl.handle.net/10393/20138en |
collection |
NDLTD |
language |
en |
sources |
NDLTD |
topic |
wear particles implant arthroplasty macrophages inflammatory response periprosthetic osteolysis |
spellingShingle |
wear particles implant arthroplasty macrophages inflammatory response periprosthetic osteolysis Vanos, Robilyn In Vitro Macrophage Response to Nanometer-size Particles from Materials Used in Hip Implants |
description |
Wear particle-induced inflammation leading to periprosthetic osteolysis remains a major cause of hip implant failure. As polyethylene particles from conventional metal-on-polyethylene implants have been associated with these failures, an interest in lower wear metal-on-metal (MM) bearings has emerged. However, the biological effects of nanometer-size chromium oxide particles, predominant type of wear particles produced by MM implants, remain mostly unknown. Therefore, this study aimed to determine the cytotoxicity of nanometer-size Cr2O3 particles on macrophages in vitro, by analyzing their effects on cell mortality and cytokine release and comparing them with those of similarly-sized alumina (Al2O3) particles (known to be relatively bioinert). Results showed that at high concentrations, nanometer-size Cr2O3 particles can be cytotoxic to macrophages, inducing significant decreases in total cell numbers and increases in necrosis. Results also showed that, at high concentrations, the cytotoxicity of Cr2O3 particles was overall higher than that of Al2O3 particles, even though Cr2O3 and Al2O3 are both stable forms of ceramic materials. However, it appeared to be lower than that of previously reported conventional polyethylene and CoCrMo particles. Therefore, chromium oxide particles may not be the main culprit in initiating the inflammatory reaction in MM periprosthetic tissues. |
author |
Vanos, Robilyn |
author_facet |
Vanos, Robilyn |
author_sort |
Vanos, Robilyn |
title |
In Vitro Macrophage Response to Nanometer-size Particles from Materials Used in Hip Implants |
title_short |
In Vitro Macrophage Response to Nanometer-size Particles from Materials Used in Hip Implants |
title_full |
In Vitro Macrophage Response to Nanometer-size Particles from Materials Used in Hip Implants |
title_fullStr |
In Vitro Macrophage Response to Nanometer-size Particles from Materials Used in Hip Implants |
title_full_unstemmed |
In Vitro Macrophage Response to Nanometer-size Particles from Materials Used in Hip Implants |
title_sort |
in vitro macrophage response to nanometer-size particles from materials used in hip implants |
publishDate |
2011 |
url |
http://hdl.handle.net/10393/20138 |
work_keys_str_mv |
AT vanosrobilyn invitromacrophageresponsetonanometersizeparticlesfrommaterialsusedinhipimplants |
_version_ |
1716579400505360384 |