Zhao Guoxu, Zhang Xu, Li Bingcheng, Huang Guoyou, Xu Feng, Zhang Xiaohui
The Key Laboratory of Biomedical Information Engineering of Ministry of Education, School of Life Science and Technology, Xi'an Jiaotong University, No.28, Xianning West Road, Xi'an 710049, P.R. China.
Bioinspired Engineering and Biomechanics Center (BEBC), Xi'an Jiaotong University, No.28, Xianning West Road, Xi'an 710049, P.R. China.
ACS Biomater Sci Eng. 2020 Mar 9;6(3):1630-1640. doi: 10.1021/acsbiomaterials.9b01682. Epub 2020 Feb 3.
Cardiac tissue engineering holds great potential in regenerating functional cardiac tissues for various applications. The major strategy is to design scaffolds recapitulating the native cardiac microenvironment to enhance cell and tissue functionalities. Among various biomaterial systems, nanofibrous matrices with aligned morphologies and enhanced conductivity incline to induce the formation of oriented engineered cardiac tissues with enhanced functionalities. The challenge is to functionalize the scaffolds with conductive additives without influencing their biocompatibility. In this study, we developed a fully aqueous process for the fabrication of conductive carbon nanotube/silk fibroin (CNT/silk) electrospun scaffolds. The carbon nanotubes are well dispersed within the nanofibers, providing the scaffolds with enhanced conductivity and excellent biocompatibility for the culture of neonatal rat cardiomyocytes with improved cell spreading and enhanced expression of cardiac-specific proteins. Moreover, the aligned CNT/silk fibroin composite scaffolds exhibit abilities to guide the oriented organization of cardiac tissues and the biomimicking distribution of sarcomeres and gap junctions. The findings demonstrate the great potential of the CNT/silk scaffolds prepared through this aqueous processing method in supporting the formation of cardiac tissues with enhanced functionalities.
心脏组织工程在再生功能性心脏组织以用于各种应用方面具有巨大潜力。主要策略是设计能够重现天然心脏微环境的支架,以增强细胞和组织功能。在各种生物材料系统中,具有排列形态和增强导电性的纳米纤维基质倾向于诱导形成具有增强功能的定向工程心脏组织。挑战在于用导电添加剂对支架进行功能化,同时不影响其生物相容性。在本研究中,我们开发了一种用于制备导电碳纳米管/丝素蛋白(CNT/丝素)电纺支架的全水相工艺。碳纳米管在纳米纤维中良好分散,为支架提供了增强的导电性和优异的生物相容性,用于新生大鼠心肌细胞的培养,改善了细胞铺展并增强了心脏特异性蛋白的表达。此外,排列的CNT/丝素蛋白复合支架表现出引导心脏组织定向组织以及肌节和间隙连接的仿生分布的能力。这些发现证明了通过这种水相加工方法制备的CNT/丝素支架在支持形成具有增强功能的心脏组织方面具有巨大潜力。