首页> 外文期刊>Current rheumatology reports. >Anti-oxidation treatment of ultra high molecular weight polyethylene components to decrease periprosthetic osteolysis: Evaluation of osteolytic and osteogenic properties of wear debris particles in a murine calvaria model
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Anti-oxidation treatment of ultra high molecular weight polyethylene components to decrease periprosthetic osteolysis: Evaluation of osteolytic and osteogenic properties of wear debris particles in a murine calvaria model

机译:超高分子量聚乙烯组分的抗氧化处理以减少假体周围的骨溶解:在鼠颅盖模型中评估磨损碎片颗粒的溶骨和成骨特性

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摘要

Wear debris-induced osteolysis remains the greatest limitation of long-term success for total joint replacements with ultra-high molecular weight polyethylene (UHMWPE) bearings. To address oxidative degradation post-gamma irradiation, manufacturers are investigating the incorporation of antioxidants into PE resins. Similarly, larger molecular weight monomers have been developed to increase crosslinking and decrease wear debris, and ultimately osteolysis. However, the effects of modifying monomer size, crosslink density, and antioxidant incorporation on UHMWPE particle-induced osteoclastic bone resorption and coupled osteoblastic bone formation have never been tested. Here, we review the field of antioxidant-containing UHMWPE, and present an illustrative pilot study evaluating the osteolytic and osteogenic potential of wear debris generated from three chemically distinct particles (MARATHON?, XLK, and AOX?) as determined by a novel 3D micro-CT algorithm designed for the murine calvaria model. The results demonstrate an approach by which the potential osteoprotective effects of antioxidants in UHMWPE can be evaluated.
机译:磨损碎片引起的骨溶解仍然是超高分子量聚乙烯(UHMWPE)轴承全关节置换长期成功的最大限制。为了解决伽玛射线辐照后的氧化降解问题,制造商正在研究将抗氧化剂掺入PE树脂中的方法。类似地,已经开发出较大分子量的单体以增加交联并减少磨损碎屑,并最终减少骨溶解。但是,从未测试过改变单体尺寸,交联密度和抗氧化剂掺入对UHMWPE颗粒诱导的破骨细胞吸收和成骨细胞形成的影响。在这里,我们回顾了含抗氧化剂的UHMWPE的领域,并提供了一项说明性的初步研究,该研究评估了由新型3D显微技术测定的三种化学性质不同的颗粒(MARATHON?,XLK和AOX?)产生的磨损碎片的溶骨和成骨潜能。 -CT算法为鼠颅模型设计。结果表明,可以通过这种方法评估UHMWPE中抗氧化剂的潜在骨保护作用。

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