完全置换髋关节的相容性。非晶金刚石涂层减少磨损。

Seppo Santavirta
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引用次数: 15

摘要

完全置换髋关节内的颗粒磨损碎片会引起局部宿主的不良反应。这种反应的极端形式,侵袭性肉芽肿病,被发现是一个独特的条件,不同于简单的无菌性松动。全置换髋关节周围的反应性和适应性组织由局部成纤维细胞样细胞和活化的巨噬细胞增殖形成。甲基丙烯酸甲酯和高分子量聚乙烯被证明基本上是免疫惰性的植入材料,但在小颗粒形式下,作为细胞刺激物启动局部生物反应,导致植入物松动。铬钴钼是最常用的金属植入材料;它坚硬而坚韧,这种金属的轴承部分是自抛光的。在全髋关节植入物中,置换髋关节寿命的先决条件是材料具有良好的生物相容性和轴承具有足够的摩擦学性能。第三个关键问题是,轴承必须最小化假体骨-种植体界面的摩擦剪切,以适应长期生存。满足这些要求的一些方法是铝对氧化铝和金属对金属的设计,以及使用高交联聚乙烯作为髋臼组件。为了避免传统全髋关节假体材料或涂层的磨损性,本文对非晶态金刚石进行了生物学和摩擦学测试。先前的实验表明,可以通过混合层或中间层来实现四面体非晶碳涂层与基体的高粘附性。非晶态金刚石具有生物惰性,模拟试验表明,在常规全髋关节假体中,无论是球体表面还是两侧承载表面涂覆无氢的四面体非晶态金刚石膜,都具有良好的磨损性能。这种全髋关节假体的模拟器测试显示,经过15年临床使用的1500万次测试循环后,没有可测量的磨损或可检测到的分层。目前的研究清楚地表明,磨损是全髋关节置换术的基本问题之一。金刚石涂层的轴承表面似乎是一个有吸引力的解决方案,以提高寿命的完全更换髋关节。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Compatibility of the totally replaced hip. Reduction of wear by amorphous diamond coating.

Particulate wear debris in totally replaced hips causes adverse local host reactions. The extreme form of such a reaction, aggressive granulomatosis, was found to be a distinct condition and different from simple aseptic loosening. Reactive and adaptive tissues around the totally replaced hip were made of proliferation of local fibroblast like cells and activated macrophages. Methylmethacrylate and high-molecular-weight polyethylene were shown to be essentially immunologically inert implant materials, but in small particulate form functioned as cellular irritants initiating local biological reactions leading to loosening of the implants. Chromium-cobalt-molybdenum is the most popular metallic implant material; it is hard and tough, and the bearings of this metal are partially self-polishing. In total hip implants, prerequisites for longevity of the replaced hip are good biocompatibility of the materials and sufficient tribological properties of the bearings. The third key issue is that the bearing must minimize frictional shear at the prosthetic bone-implant interface to be compatible with long-term survival. Some of the approaches to meet these demands are alumina-on-alumina and metal-on-metal designs, as well as the use of highly crosslinked polyethylene for the acetabular component. In order to avoid the wear-based deleterious properties of the conventional total hip prosthesis materials or coatings, the present work included biological and tribological testing of amorphous diamond. Previous experiments had demonstrated that a high adhesion of tetrahedral amorphous carbon coatings to a substrate can be achieved by using mixing layers or interlayers. Amorphous diamond was found to be biologically inert, and simulator testing indicated excellent wear properties for conventional total hip prostheses, in which either the ball or both bearing surfaces were coated with hydrogen-free tetrahedral amorphous diamond films. Simulator testing with such total hip prostheses showed no measurable wear or detectable delamination after 15,000,000 test cycles corresponding to 15 years of clinical use. The present work clearly shows that wear is one of the basic problems with totally replaced hips. Diamond coating of the bearing surfaces appears to be an attractive solution to improve longevity of the totally replaced hip.

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