支架材料的生物反应性:新型孪晶诱导塑性钢对血小板活化的体外影响

C. Verhaegen, S. Lepropre, M. Octave, D. Brusa, L. Bertrand, C. Beauloye, P. Jacques, J. Kefer, S. Horman
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引用次数: 4

摘要

目前的挑战是开发新的生物可吸收支架,将最佳机械性能和生物降解率与有限的血栓性结合起来。在这种情况下,孪生诱导塑性(TWIP)钢是很好的候选材料。在这项工作中,通过溶血和血小板活化评估,研究了一种新的TWIP钢的体外血液相容性。对钴铬(CoCr) L605合金、纯铁(Fe)和镁(Mg) WE43合金进行了类似的比较研究。TWIP钢、纯铁和L605合金均未引起溶血。此外,L605合金不影响CD62P暴露,αIIbβ3在血小板表面的活化,或蛋白激酶C (PKC)底物在凝血酶刺激下的磷酸化。相比之下,TWIP钢和纯铁显著降低血小板对激动剂的反应。考虑到在使用TWIP钢的条件培养基时获得了类似的抑制效果,我们假设TWIP钢的腐蚀可能会释放出对抗血小板活化的成分。结果表明,条件介质中存在的主要离子形式是Fe3+。总之,TWIP钢可吸收支架在体外表现出抗血栓形成的特性,这表明它可能是下一代支架技术的一个有前途的平台。
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Bioreactivity of Stent Material: In Vitro Impact of New Twinning-Induced Plasticity Steel on Platelet Activation
A current challenge concerns developing new bioresorbable stents that combine optimal mechanical properties and biodegradation rates with limited thrombogenicity. In this context, twinning-induced plasticity (TWIP) steels are good material candidates. In this work, the hemocompatibility of a new TWIP steel was studied in vitro via hemolysis and platelet activation assessments. Cobalt chromium (CoCr) L605 alloy, pure iron (Fe), and magnesium (Mg) WE43 alloy were similarly studied for comparison. No hemolysis was induced by TWIP steel, pure Fe, or L605 alloy. Moreover, L605 alloy did not affect CD62P exposure, αIIbβ3 activation at the platelet surface, or phosphorylation of protein kinase C (PKC) substrates upon thrombin stimulation. In contrast, TWIP steel and pure Fe significantly decreased platelet response to the agonist. Given that similar inhibitory effects were obtained when using a conditioned medium previously incubated with TWIP steel, we postulated TWIP steel corrosion to be likely to release components counteracting platelet activation. We showed that the main ion form present in the conditioned medium is Fe3+. In conclusion, TWIP steel resorbable scaffold displays anti-thrombogenic properties in vitro, which suggests that it could be a promising platform for next-generation stent technologies.
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