State and Local Joint Engineering Laboratory for Novel Functional Polymeric Materials, College of Chemistry, Chemical Engineering and Materials Science, Soochow University, Suzhou 215123, P. R. China.
ACS Appl Mater Interfaces. 2024 Oct 9;16(40):53343-53371. doi: 10.1021/acsami.4c12117. Epub 2024 Sep 29.
The advancement of antithrombotic materials has significantly mitigated the thrombosis issue in clinical applications involving various medical implants. Extensive research has been dedicated over the past few decades to developing blood-contacting materials with complete resistance to thrombosis. However, despite these advancements, the risk of thrombosis and other complications persists when these materials are implanted in the human body. Consequently, the modification and enhancement of antithrombotic materials remain pivotal in 21st-century hemocompatibility studies. Previous research indicates that the healthy endothelial cells (ECs) layer is uniquely compatible with blood. Inspired by bionics, scientists have initiated the development of materials that emulate the hemocompatible properties of ECs by replicating their diverse antithrombotic mechanisms. This review elucidates the antithrombotic mechanisms of ECs and examines the endothelium-mimicking materials developed through single, dual-functional and multifunctional strategies, focusing on nitric oxide release, fibrinolytic function, glycosaminoglycan modification, and surface topography modification. These materials have demonstrated outstanding antithrombotic performance. Finally, the review outlines potential future research directions in this dynamic field, aiming to advance the development of antithrombotic materials.
抗血栓材料的进步极大地缓解了涉及各种医疗植入物的临床应用中的血栓问题。在过去的几十年里,人们致力于开发完全抗血栓的与血液接触的材料。然而,尽管有了这些进步,当这些材料被植入人体时,仍然存在血栓和其他并发症的风险。因此,在 21 世纪的血液相容性研究中,对抗血栓材料的改性和增强仍然至关重要。以前的研究表明,健康的内皮细胞(ECs)层与血液完全兼容。受仿生学的启发,科学家们开始开发通过复制其多种抗血栓机制来模拟 ECs 的血液相容性特性的材料。本综述阐明了 ECs 的抗血栓机制,并研究了通过单一、双重功能和多功能策略开发的模拟内皮的材料,重点关注一氧化氮释放、纤维蛋白溶解功能、糖胺聚糖修饰和表面形貌修饰。这些材料表现出了优异的抗血栓性能。最后,本综述概述了该动态领域的潜在未来研究方向,旨在推进抗血栓材料的发展。