Preliminary Validation of a Dynamic Electrochemical Biodegradation Test Bench in Pseudo-Physiological Conditions.

Materials technology (New York, N.Y.) Pub Date : 2018-01-01 Epub Date: 2017-12-21 DOI:10.1080/10667857.2017.1416972
Jessica Gayle, Anil Mahapatro, Hailey Lundin
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引用次数: 2

Abstract

There is a growing interest in the development of next generation stent materials. In vitro tests that accurately predict in vivo conditions, are needed for a full evaluation of a material's corrosion in vivo. In this manuscript a novel approach for the design of a dynamic electrochemical test bench is evaluated in hopes to later characterize and model biodegradable metallic stent materials. This dynamic test bench design allows for real-time corrosion testing with easy variation of temperature, shear stress, and simulated body fluids (SBF), with minimal complications of test sample fabrication. Preliminary tests have shown Tafel generation stable. Further testing of the stability of the test bench were conducted with the incorporation SBF, shear stress, and temperature. Shear stress was applied through variation in fluid velocities at 0 m/s, 0.127 m/s, 0.245 m/s, 0.372 m/s, 0.489 m/s at 37°C. Incorporation of the different SBFs showed no significant difference in corrosion readings; however, variances were observed higher in DMEM and PBS, than in Hanks, respectively. This dynamic test bench showed to be relatively stable under temperature and SBF modification; however, further optimization is needed to decrease variances seen throughout fluid velocity analysis.

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Abstract Image

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模拟生理条件下动态电化学生物降解试验台的初步验证。
人们对新一代支架材料的开发越来越感兴趣。为了全面评估材料在体内的腐蚀情况,需要能够准确预测体内条件的体外试验。在这篇论文中,动态电化学试验台设计的新方法被评估,希望以后表征和模拟可生物降解的金属支架材料。这种动态试验台设计允许实时腐蚀测试,温度、剪切应力和模拟体液(SBF)的变化很容易,测试样品制造的复杂性最小。初步测试表明塔非尔的生成稳定。对试验台的稳定性进行了进一步的试验,试验中加入了SBF、剪切应力和温度。在37°C下,通过0 m/s、0.127 m/s、0.245 m/s、0.372 m/s、0.489 m/s的流体速度变化施加剪切应力。加入不同的SBFs后,腐蚀读数没有显著差异;然而,DMEM和PBS的差异分别高于Hanks。该动态试验台在温度和SBF改性条件下相对稳定;然而,需要进一步优化,以减少在流体速度分析中看到的差异。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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