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Influence of third-body particles originating from bone void fillers on the wear of ultra-high-molecular-weight polyethylene

机译:源自骨空隙填充物的第三体颗粒对超高分子量聚乙烯磨损的影响

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摘要

Calcium sulfate bone void fillers are increasingly being used for dead space management in infected arthroplasty revision surgery. The presence of these materials as loose beads close to the bearing surfaces of joint replacements gives the potential for them to enter the joint becoming trapped between the articulating surfaces; the resulting damage to cobalt chrome counterfaces and the subsequent wear of ultra-high-molecular-weight polyethylene is unknown. In this study, third-body damage to cobalt chrome counterfaces was simulated using particles of the calcium sulfate bone void fillers Stimulan® (Biocomposites Ltd., Keele, UK) and Osteoset® (Wright Medical Technology, TN, USA) using a bespoke rig. Scratches on the cobalt chrome plates were quantified in terms of their density and mean lip height, and the damage caused by the bone void fillers was compared to that caused by particles of SmartSet GMV PMMA bone cement (DePuy Synthes, IN, USA). The surface damage from Stimulan® was below the resolution of the analysis technique used; SmartSet GMV caused 0.19 scratches/mm with a mean lip height of 0.03 µm; Osteoset® led to a significantly higher number (1.62 scratches/mm) of scratches with a higher mean lip height (0.04 µm). Wear tests of ultra-high-molecular-weight polyethylene were carried out in a six-station multi-axial pin on plate reciprocating rig against the damaged plates and compared to negative (highly polished) and positive control plates damaged with a diamond stylus (2 µm lip height). The wear of ultra-high-molecular-weight polyethylene was shown to be similar against the negative control plates and those damaged with third-body particles; there was a significantly higher (p < 0.001) rate of ultra-high-molecular-weight polyethylene wear against the positive control plates. This study showed that bone void fillers of similar composition can cause varying damage to cobalt chrome counterfaces. However, the lip heights of the scratches were not of sufficient magnitude to increase the wear of ultra-high-molecular-weight polyethylene above that of the negative controls.
机译:硫酸钙骨空隙填充剂越来越多地用于感染性关节置换术修复手术中的死腔管理。这些材料的存在是松散的小珠靠近关节置换物的支撑表面,这使它们有可能进入关节而陷入关节表面之间。钴铬对接面的损坏以及随后超高分子量聚乙烯的磨损尚不清楚。在这项研究中,使用硫酸钙骨空隙填充物Stimulan ®(英国基尔市Biocomposites Ltd.)和Osteoset ®(美国田纳西州莱特医疗技术)使用定制钻机。用密度和平均唇高对钴铬板上的划痕进行定量,并将由骨空隙填充物引起的损伤与由SmartSet GMV PMMA骨水泥颗粒引起的损伤进行比较(DePuy Synthes,IN,美国)。 Stimulan ®造成的表面损伤低于所用分析技术的分辨率; SmartSet GMV造成0.19划痕/毫米,平均唇缘高度为0.03微米。 Osteoset ®导致明显更多的划痕(1.62 scratches / mm)和更高的平均唇缘高度(0.04 µm)。超高分子量聚乙烯的磨损试验是在往复式钻机的六工位多轴销上对损坏的板进行的,并将其与用金刚石笔针损坏的阴性(高度抛光)和阳性对照板进行比较(2唇高µm)。结果表明,超高分子量聚乙烯的磨损与阴性对照板和被第三体颗粒损坏的板相似。相对于阳性对照板,超高分子量聚乙烯的磨损率显着更高(p <)0.001)。这项研究表明,类似成分的骨空隙填充剂可对钴铬合金对接面造成不同程度的损害。但是,划痕的唇高不足以使超高分子量聚乙烯的磨损增加到高于阴性对照的水平。

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