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A multi-directional in vitro investigation into friction, damage and wear of innovative chondroplasty materials against articular cartilage.

机译:对创新性软骨弹性材料对关节软骨的摩擦,损伤和磨损进行的多方向体外研究。

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BACKGROUND: The wear of the biomaterial/cartilage interface is vital for the development of innovative chondroplasty therapies. The aim of this study was to investigate potential chondroplasty biomaterials when sliding against natural articular cartilage under uniaxial reciprocating and multi-directional rotation/reciprocating motions. METHOD: Three biphasic hydrogels were compared to articular cartilage (negative control) and stainless steel (positive control). Friction was measured by means of a simple geometry friction and wear simulator. All tests were completed in 25% bovine serum at 20 degrees C. Mechanical alterations to the surface structure were quantified using surface topography. FINDINGS: Articular cartilage produced a constant friction value of 0.05 (confidence interval=0.015) with and without rotation. Stainless steel against articular cartilage produced an increase in friction over time resulting in a peak value of 0.7 (confidence interval=0.02) without rotation, increasing to 0.88 (confidence interval=0.03) with rotation. All biphasic hydrogels produced peak friction values lower than the positive control and demonstrated no difference between uni- and multi-directional motion. Degradation of the opposing cartilage surface showed a significant difference between the positive and negative controls, with the greater cartilage damage when sliding against stainless steel under uni-directional motion. INTERPRETATION: The lower friction and reduction of opposing cartilage surface degradation with the potential chondroplasty biomaterials can be attributed to their biphasic properties. This study illustrated the importance of biphasic properties within the tribology of cartilage substitution materials and future work will focus on the optimisation of biphasic properties such that materials more closely mimic natural cartilage.
机译:背景:生物材料/支架界面的磨损对于开发创新的软骨弹性疗法至关重要。这项研究的目的是研究在单轴往复运动和多向旋转/往复运动下与天然关节软骨滑动时潜在的软骨弹性生物材料。方法:将三种双相水凝胶与关节软骨(阴性对照)和不锈钢(阳性对照)进行比较。借助于简单的几何摩擦磨损模拟器来测量摩擦。所有测试均在20°C的25%牛血清中完成。使用表面形貌量化表面结构的机械变化。结果:在有和没有旋转的情况下,关节软骨的摩擦力恒定值为0.05(置信区间= 0.015)。不锈钢抵抗关节软骨的摩擦力随着时间的推移而增加,导致不旋转的峰值为0.7(置信区间= 0.02),旋转时的峰值为0.88(置信区间= 0.03)。所有双相水凝胶的峰值摩擦值均低于阳性对照,并且单向和多向运动之间没有差异。相对的软骨表面降解显示阳性对照和阴性对照之间存在显着差异,当在单向运动下与不锈钢滑动时,软骨损伤更大。解释:潜在的软骨基质生物材料具有较低的摩擦力,并能减少相对的软骨表面降解,这归因于它们的双相特性。这项研究表明,在软骨替代材料的摩擦学中,双相性质的重要性,未来的工作将集中在优化双相性质上,以使材料更紧密地模仿天然软骨。

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