Mousavi Ali, Vahdat Sadaf, Baheiraei Nafiseh, Razavi Mehdi, Norahan Mohammad Hadi, Baharvand Hossein
Department of Chemical and Petroleum Engineering, Sharif University of Technology, Tehran, Iran.
Tissue Engineering and Applied Cell Sciences Division, Department of Hematology, Faculty of Medical Sciences, Tarbiat Modares University, 14117-13116 Tehran, Iran.
ACS Biomater Sci Eng. 2021 Jan 11;7(1):55-82. doi: 10.1021/acsbiomaterials.0c01422. Epub 2020 Dec 14.
Adult cardiomyocytes are terminally differentiated cells that result in minimal intrinsic potential for the heart to self-regenerate. The introduction of novel approaches in cardiac tissue engineering aims to repair damages from cardiovascular diseases. Recently, conductive biomaterials such as carbon- and gold-based nanomaterials, conductive polymers, and ceramics that have outstanding electrical conductivity, acceptable mechanical properties, and promoted cell-cell signaling transduction have attracted attention for use in cardiac tissue engineering. Nevertheless, comprehensive classification of conductive biomaterials from the perspective of cardiac cell function is a subject for discussion. In the present review, we classify and summarize the unique properties of conductive biomaterials considered beneficial for cardiac tissue engineering. We attempt to cover recent advances in conductive biomaterials with a particular focus on their effects on cardiac cell functions and proposed mechanisms of action. Finally, current problems, limitations, challenges, and suggested solutions for applications of these biomaterials are presented.
成年心肌细胞是终末分化细胞,心脏自我再生的内在潜力极小。心脏组织工程中引入的新方法旨在修复心血管疾病造成的损伤。最近,具有出色导电性、可接受的机械性能并能促进细胞间信号转导的导电生物材料,如碳基和金基纳米材料、导电聚合物和陶瓷,已引起心脏组织工程领域的关注。然而,从心脏细胞功能的角度对导电生物材料进行全面分类仍是一个有待探讨的问题。在本综述中,我们对被认为有利于心脏组织工程的导电生物材料的独特特性进行了分类和总结。我们试图涵盖导电生物材料的最新进展,特别关注它们对心脏细胞功能的影响及其作用机制。最后,介绍了这些生物材料应用中当前存在的问题、局限性、挑战及建议的解决方案。