Nitinol Release of Nickel under Physiological Conditions: Effects of Surface Oxide, pH, Hydrogen Peroxide, and Sodium Hypochlorite.

Eric M Sussman, Huiyu Shi, Paul A Turner, David M Saylor, Jason D Weaver, David D Simon, Pavel Takmakov, Shiril Sivan, Hainsworth Y Shin, Matthew A Di Prima, Dianne E Godar
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引用次数: 2

Abstract

Nitinol is a nickel-titanium alloy widely used in medical devices for its unique pseudoelastic and shape-memory properties. However, nitinol can release potentially hazardous amounts of nickel, depending on surface manufacturing yielding different oxide thicknesses and compositions. Furthermore, nitinol medical devices can be implanted throughout the body and exposed to extremes in pH and reactive oxygen species (ROS), but few tools exist for evaluating nickel release under such physiological conditions. Even in cardiovascular applications, where nitinol medical devices are relatively common and the blood environment is well understood, there is a lack of information on how local inflammatory conditions after implantation might affect nickel ion release. For this study, nickel release from nitinol wires of different finishes was measured in pH conditions and at ROS concentrations selected to encompass and exceed literature reports of extracellular pH and ROS. Results showed increased nickel release at levels of pH and ROS reported to be physiological, with decreasing pH and increasing concentrations of hydrogen peroxide and NaOCl/HOCl having the greatest effects. The results support the importance of considering the implantation site when designing studies to predict nickel release from nitinol and underscore the value of understanding the chemical milieu at the device-tissue interface.

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生理条件下镍钛诺镍的释放:表面氧化物、pH、过氧化氢和次氯酸钠的影响。
镍钛诺是一种镍钛合金,因其独特的伪弹性和形状记忆性能而广泛应用于医疗器械。然而,镍钛诺可能会释放出潜在的有害数量的镍,这取决于表面制造产生不同的氧化物厚度和成分。此外,镍钛诺医疗设备可以植入全身,暴露在极端的pH值和活性氧(ROS)中,但很少有工具可以评估在这种生理条件下镍的释放。即使在心血管应用中,镍钛诺医疗设备相对常见,血液环境也很好地了解,但关于植入后局部炎症如何影响镍离子释放的信息仍然缺乏。在这项研究中,我们测量了不同表面处理的镍钛诺丝在pH条件下和ROS浓度下的镍释放量,这些浓度被选择为包含并超过文献报道的细胞外pH和ROS。结果表明,在pH和ROS水平下,镍的释放增加是生理的,其中pH降低、过氧化氢和NaOCl/HOCl浓度增加的影响最大。这些结果支持了在设计研究预测镍钛诺镍释放时考虑植入部位的重要性,并强调了了解设备-组织界面化学环境的价值。
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Rotary Bend Fatigue of Nitinol to One Billion Cycles. Nitinol Release of Nickel under Physiological Conditions: Effects of Surface Oxide, pH, Hydrogen Peroxide, and Sodium Hypochlorite. Effect of Applied Potential on Fatigue Life of Electropolished Nitinol Wires.
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