血栓形成
血小板活化
血小板
材料科学
单层
生物医学工程
内皮干细胞
生物物理学
体外
纳米技术
化学
医学
内科学
生物化学
生物
作者
Zümray Vuslat Parlak,Norina Labude,Stephan Rütten,Christian Preisinger,Jonas Nießen,Anke Aretz,Rafał Zybała,Rainer Telle,Sabine Neuß,Karolina Schickle
出处
期刊:ACS Biomaterials Science & Engineering
[American Chemical Society]
日期:2020-11-04
卷期号:6 (12): 6726-6736
被引量:7
标识
DOI:10.1021/acsbiomaterials.0c00609
摘要
The anticoagulation treatment of cardiovascular patients, which is mandatory after implantation of heart valves or stents, has significantly adverse effects on life quality. This treatment can be reduced or even circumvented by developing novel antithrombogenic surfaces of blood-contacting implants. Thus, we aim to discover materials exhibiting outstanding hemocompatibility compared to other available synthetic materials. We present promising surficial characteristics of single crystalline alumina in terms of platelet activation inhibition. In order to elucidate the relation between its crystallographic properties including the plane orientation and blood cell behavior, we examined endothelialization, cytocompatibility, and platelet activation at the blood-alumina interfaces in a controlled experimental setup. We observed that the cell response is highly sensitive to the plane orientation and differs significantly for (0001) and (11–20) planes of Al2O3. Our results reveal for the first time the dependence of platelet activation on crystallographic orientation, which is assumed to be a critical condition controlling the thrombogenicity. Additionally, we used an endothelial cell monolayer as an internal control since endothelial cells have an impact on vessel integrity and implant acceptance. We successfully demonstrate that Al2O3(11–20) exhibits enhanced hemocompatibility in contrast to Al2O3(0001) and is comparable to the physiological endothelial monolayer in vitro.
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