Department of Biomedical Engineering, Texas A&M University, College Station, TX, 77843, USA.
Department of Biomedical Engineering, University of Texas, 107 W. Dean Keaton, BME 3.503D, 1 University Station, C0800, Austin, TX, 78712, USA.
Ann Biomed Eng. 2019 Feb;47(2):366-380. doi: 10.1007/s10439-018-02171-3. Epub 2018 Nov 28.
Sustained biomaterial thromboresistance has long been a goal and challenge in blood-contacting device design. Endothelialization is one of the most successful strategies to achieve long-term thromboresistance of blood-contacting devices, with the endothelial cell layer providing dynamic hemostatic regulation. It is well established that endothelial cell behavior is influenced by interactions with the underlying extracellular matrix (ECM). Numerous researchers have sought to exploit these interactions to generate improved blood-contacting devices by investigating the expression of hemostatic regulators in endothelial cells on various ECM coatings. The ability to select substrates that promote endothelial cell-mediated thromboresistance is crucial to advancing material design strategies to improve cardiovascular device outcomes. This review provides an overview of endothelial cell regulation of hemostasis, the major components found within the cardiovascular basal lamina, and the interactions of endothelial cells with prominent ECM components of the basement membrane. A summary of ECM-mimetic strategies used in cardiovascular devices is provided with a focus on the effects of key adhesion modalities on endothelial cell regulators of hemostasis.
长期以来,生物材料的抗血栓性一直是接触血液的器械设计的目标和挑战。内皮化是实现接触血液的器械长期抗血栓性的最成功策略之一,内皮细胞层提供了动态止血调节。众所周知,内皮细胞的行为受到与基底膜(ECM)的相互作用的影响。许多研究人员试图通过研究各种 ECM 涂层上内皮细胞中止血调节剂的表达来利用这些相互作用,从而生成改进的接触血液的器械。选择能够促进内皮细胞介导的抗血栓性的基底的能力对于推进材料设计策略以改善心血管器械的结果至关重要。这篇综述概述了内皮细胞对止血的调节、心血管基底膜中发现的主要成分以及内皮细胞与基底膜主要 ECM 成分的相互作用。提供了心血管器械中使用的 ECM 模拟策略的摘要,重点介绍了关键粘附方式对内皮细胞止血调节剂的影响。