Ansari Farzana, Chang Jennifer, Huddleston James, Van Citters Douglas, Ries Michael, Pruitt Lisa
University of California, Berkeley, Berkeley, California, 2521 Hearst Avenue, Etcheverry Hall Rm#2121, Berkeley, CA 94709, United States.
Knee. 2013 Dec;20(6):609-13. doi: 10.1016/j.knee.2013.04.004. Epub 2013 Apr 28.
Highly crosslinked ultra-high molecular weight polyethylene (UHMWPE) has shown success in reducing wear in hip arthroplasty but there remains skepticism about its use in Total Knee Replacement (TKR) inserts that are known to experience fatigue loading and higher local cyclic contact stresses.
Two Legacy Posterior-Stabilized (LPS) Zimmer NexGen tibial implants sterilized by gamma irradiation in an inert environment with posts that fractured in vivo were analyzed. Failure mechanisms were determined using optical and scanning electron microscopy along with oxidative analysis via Fourier Transform Infra-Red (FTIR) spectroscopy.
Micrographs of one retrieval revealed fatigue crack initiation on opposite sides of the post and quasi-brittle micromechanisms of crack propagation. FTIR of this retrieval revealed no oxidation. The fracture surface image of the second retrieval indicated a brittle fracture process and FTIR revealed oxidation in the explant.
These two cases suggest that crosslinking of UHMWPE as a manufacturing process or sterilization method in conjunction with designs that incorporate high stress concentrations, such as the tibial post, may reduce material strength. Moreover, free radicals generated from ionizing radiation can render the polymer susceptible to oxidative embrittlement.
Our findings suggest that tibial post fractures may be the results of in vivo oxidation and low level crosslinking. These and previous reports of fractured crosslinked UHMWPE devices implores caution when used with high stress concentrations, particularly when considering the potential for in vivo oxidation in TKR.
高度交联的超高分子量聚乙烯(UHMWPE)已成功减少髋关节置换术中的磨损,但对于其在全膝关节置换(TKR)假体中的应用仍存在疑虑,因为已知TKR假体承受疲劳载荷和更高的局部循环接触应力。
分析了两个通过在惰性环境中γ射线辐照灭菌的Zimmer NexGen Legacy后稳定型(LPS)胫骨植入物,这些植入物在体内发生了柱体断裂。使用光学显微镜和扫描电子显微镜确定失效机制,并通过傅里叶变换红外(FTIR)光谱进行氧化分析。
一个取出样本的显微照片显示柱体相对两侧出现疲劳裂纹萌生以及裂纹扩展的准脆性微观机制。该取出样本的FTIR分析未显示氧化现象。另一个取出样本的断口表面图像显示为脆性断裂过程,FTIR分析显示植入物存在氧化现象。
这两个案例表明,将UHMWPE交联作为一种制造工艺或灭菌方法,再结合包含高应力集中的设计(如胫骨柱),可能会降低材料强度。此外,电离辐射产生的自由基会使聚合物易受氧化脆化影响。
我们的研究结果表明,胫骨柱骨折可能是体内氧化和低水平交联的结果。这些以及先前关于交联UHMWPE装置骨折的报告提醒,在高应力集中情况下使用时要谨慎,特别是在考虑TKR中体内氧化的可能性时。