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首页> 外文期刊>Clinical Orthopaedics and Related Research >The John Charnley award: An accurate and extremely sensitive method to separate, display, and characterize wear debris part 2: Metal and ceramic particles
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The John Charnley award: An accurate and extremely sensitive method to separate, display, and characterize wear debris part 2: Metal and ceramic particles

机译:John Charnley奖:一种分离,显示和表征磨损残渣的准确且极为灵敏的方法:第2部分:金属和陶瓷颗粒

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摘要

Background: Metal-on-metal and ceramic-on-ceramic bearings were introduced as alternatives to conventional polyethylene in hip arthroplasties to reduce wear. Characterization of wear particles has been particularly challenging due to the low amount and small size of wear particles. Current methods of analysis of such particles have shortcomings, including particle loss, clumping, and inaccurate morphologic and chemical characterization. Questions/purposes: We describe a method to recover and characterize metal and ceramic particles that (1) improves particle purification, separation, and display; (2) allows for precise particle shape characterization; (3) allows accurate chemical identification; and (4) minimizes particle loss. Methods: After enzymatic digestion, a single pass of ultracentrifugation cleaned and deposited particles onto silicon wafers or grids for imaging analysis. During centrifugation, particles were passed through multiple layers of denaturants and a metal-selective high-density layer that minimized protein and nucleic acid contamination. The protocol prevented aggregation, providing well-dispersed particles for chemical and morphologic analysis. We evaluated the efficacy and accuracy of this protocol by recovering gold nanobeads and metal and ceramic particles from joint simulator wear tests. Results: The new protocol recovered particles ranging in size from nanometers to micrometers and enabled accurate morphologic and chemical characterization of individual particles. Conclusion: Both polyethylene and metal wear debris can be simultaneously analyzed from the same sample by combining a silicon wafer display protocol for polyethylene and the metal and ceramics silicon wafer display protocol. Clinical Relevance: Accurate analysis of wear debris is essential in understanding the processes that produce debris and a key step in development of more durable and biocompatible implants.
机译:背景:在髋关节置换术中引入金属对金属和陶瓷对陶瓷的轴承作为传统聚乙烯的替代品,以减少磨损。磨损颗粒的表征由于磨损颗粒的数量少且尺寸小而特别具有挑战性。当前分析此类颗粒的方法存在缺点,包括颗粒损失,结块以及不正确的形态和化学表征。问题/目的:我们描述一种回收和表征金属和陶瓷颗粒的方法,该方法(1)改善颗粒的纯化,分离和展示; (2)可以精确表征颗粒形状; (3)可以进行准确的化学识别; (4)使颗粒损失最小化。方法:酶消化后,单次超速离心将颗粒清洗并沉积到硅片或网格上以进行成像分析。在离心过程中,使颗粒穿过多层变性剂和金属选择性高密度层,从而将蛋白质和核酸污染降至最低。该协议防止了聚集,为化学和形态分析提供了分散良好的颗粒。我们通过从联合模拟器磨损测试中回收金纳米珠以及金属和陶瓷颗粒,评估了该协议的有效性和准确性。结果:新协议回收了从纳米到微米大小的颗粒,并能够对单个颗粒进行准确的形态和化学表征。结论:通过结合用于聚乙烯的硅晶片显示协议以及金属和陶瓷硅晶片显示协议,可以从同一样品中同时分析聚乙烯和金属磨损碎片。临床意义:正确分析磨损碎片对于理解产生碎片的过程至关重要,也是开发更耐用和生物相容性植入物的关键步骤。

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