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血流剪切力下的血液相容性薄膜评估。

Hemocompatibile Thin Films Assessed under Blood Flow Shear Forces.

机构信息

Institute of Metallurgy and Materials Science, Polish Academy of Sciences, 25 Reymonta St., 30-059 Cracow, Poland.

Institute of Biology, Biotechnology and Environmental Protection, University of Silesia, Bankowa St. 9, 40-007 Katowice, Poland.

出版信息

Molecules. 2022 Sep 4;27(17):5696. doi: 10.3390/molecules27175696.

Abstract

The aim of this study was to minimize the risk of life-threatening thromboembolism in the ventricle through the use of a new biomimetic heart valve based on metal-polymer composites. Finite volume element simulations of blood adhesion to the material were carried out, encompassing radial flow and the cone and plane test together with determination of the effect of boundary conditions. Both tilt-disc and bicuspid valves do not have optimized blood flow due to their design based on rigid valve materials (leaflet made of pyrolytic carbon). The main objective was the development of materials with specific properties dedicated to contact with blood. Materials were evaluated by dynamic tests using blood, concentrates, and whole human blood. Hemostability tests under hydrodynamic conditions were related to the mechanical properties of thin-film materials obtained from tribological tests. The quality of the coatings was high enough to avoid damage to the coating even as they were exposed up to maximum loading. Analysis towards blood concentrates of the hydrogenated carbon sample and the nitrogen-doped hydrogenated carbon sample revealed that the interaction of the coating with erythrocytes was the strongest. Hemocompatibility evaluation under hydrodynamic conditions confirmed very good properties of the developed coatings.

摘要

本研究旨在通过使用基于金属-聚合物复合材料的新型仿生心脏瓣膜,最大限度地降低心室致命性血栓栓塞的风险。对血液与材料的粘附进行了有限体积元模拟,涵盖了径向流动和锥板和平板试验,以及边界条件的影响的确定。由于基于刚性瓣膜材料(热解碳制成的瓣叶)的设计,倾斜碟阀和双叶瓣都没有优化的血流。主要目标是开发具有特定性能的材料,专门用于与血液接触。使用血液、浓缩物和全血对材料进行了动态测试。在流体动力学条件下的止血稳定性测试与从摩擦学测试获得的薄膜材料的机械性能相关。涂层的质量足够高,即使在最大负载下暴露,也能避免损坏涂层。对氢化碳样品和氮掺杂氢化碳样品的血液浓缩物的分析表明,涂层与红细胞的相互作用最强。在流体动力学条件下的血液相容性评估证实了所开发涂层的非常好的性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/30c6/9458224/66591cb6fd9f/molecules-27-05696-g001.jpg

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