Exarchos Vasileios, Zacharova Ema, Neuber Sebastian, Giampietro Costanza, Motta Sarah E, Hinkov Hristian, Emmert Maximilian Y, Nazari-Shafti Timo Z
Cardiosurgical Research Group, Department of Cardiothoracic and Vascular Surgery, German Heart Center Berlin, Berlin, Germany.
Translational Cardiovascular Regenerative Technologies Group, Berlin Institute of Health at Charité - Universitätsmedizin Berlin, BIH Center for Regenerative Therapies, Berlin, Germany.
Front Cardiovasc Med. 2022 Sep 14;9:971028. doi: 10.3389/fcvm.2022.971028. eCollection 2022.
Cardiovascular (CV) implants are still associated with thrombogenicity due to insufficient hemocompatibility. Endothelialization of their luminal surface is a promising strategy to increase their hemocompatibility. In this review, we provide a collection of research studies and review articles aiming to summarize the recent efforts on surface modifications of CV implants, including stents, grafts, valves, and ventricular assist devises. We focus in particular on the implementation of micrometer or nanoscale surface modifications, physical characteristics of known biomaterials (such as wetness and stiffness), and surface morphological features (such as gratings, fibers, pores, and pits). We also review how biomechanical signals originating from the endothelial cell for surface interaction can be directed by topography engineering approaches toward the survival of the endothelium and its long-term adaptation. Finally, we summarize the regulatory and economic challenges that may prevent clinical implementation of endothelialized CV implants.
由于血液相容性不足,心血管(CV)植入物仍与血栓形成有关。其管腔表面的内皮化是提高血液相容性的一种有前景的策略。在这篇综述中,我们收集了一系列研究和综述文章,旨在总结近期在心血管植入物表面改性方面所做的努力,这些植入物包括支架、移植物、瓣膜和心室辅助装置。我们特别关注微米或纳米级表面改性的实施、已知生物材料的物理特性(如湿润度和硬度)以及表面形态特征(如光栅、纤维、孔隙和凹坑)。我们还回顾了如何通过形貌工程方法将源自内皮细胞用于表面相互作用的生物力学信号导向内皮细胞的存活及其长期适应性。最后,我们总结了可能阻碍内皮化心血管植入物临床应用的监管和经济挑战。