Institute of Metallurgy and Materials Science, Polish Academy of Sciences, 25 Reymonta Street, 30-059 Krakow, Poland.
Joanneum Research Forschungsges, Institute for Surface Technologies and Photonics, Functional Surfaces, 94 Leobner Street, A-8712 Niklasdorf, Austria.
ACS Biomater Sci Eng. 2020 Feb 10;6(2):898-911. doi: 10.1021/acsbiomaterials.9b01074. Epub 2020 Jan 23.
The process of modern cardiovascular device fabrication should always be associated with an investigation of how surface properties modulate its hemocompatibility through plasma protein adsorption as well as blood morphotic element activation and adhesion. In this work, a package of novel assays was used to correlate the physicochemical properties of thin ceramic coatings with hemocompatibility under dynamic conditions. Different variants of carbon-based films were prepared on polymer substrates using the magnetron sputtering method. The microstructural, mechanical, and surface physicochemical tests were performed to characterize the coatings, followed by investigation of whole human blood quality changes under blood flow conditions using the "Impact R" test, tubes' tester, and radial flow chamber assay. The applied methodology allowed us to determine that aggregate formation on hydrophobic and hydrophilic carbon-based coatings may follow one of the two different mechanisms dependent on the type and conformational changes of adsorbed blood plasma proteins.
在现代心血管设备制造过程中,始终应研究表面特性如何通过等离子体蛋白吸附以及血液形态元素的激活和黏附来调节其血液相容性。在这项工作中,使用了一整套新的分析方法来将薄膜陶瓷涂层的物理化学性质与动态条件下的血液相容性相关联。使用磁控溅射法在聚合物基底上制备了不同变体的碳基薄膜。进行了微观结构、力学和表面物理化学测试以对涂层进行表征,随后使用“Impact R”测试、管测试和径向流室分析在血流条件下研究全血质量的变化。所采用的方法使我们能够确定在疏水性和亲水性碳基涂层上的聚集形成可能遵循两种不同的机制之一,具体取决于吸附的血浆蛋白的类型和构象变化。