College of Materials Science and Engineering, Wuhan Textile University, No.1 Yangguang Road, Wuhan, 430200, Hubei Province, China.
State Key Laboratory of New Textile Materials and Advanced Processing Technologies, Wuhan Textile University, Wuhan, 430200, China.
Appl Biochem Biotechnol. 2024 Jul;196(7):4256-4272. doi: 10.1007/s12010-023-04756-8. Epub 2023 Nov 3.
Enhancing the mechanical properties and cytocompatibility of decellularized heart valves is the key to promote the application of biological heart valves. In order to further improve the mechanical properties, the electrospinning and non-woven processing methods are combined to prepare the polylactic acid (PLA)/decellularized heart valve nanofiber-reinforced sandwich structure electrospun scaffold. The effect of electrospinning time on the performance of decellularized heart valve is investigated from the aspects of morphology, mechanical properties, softness, and biocompatibility of decellularized heart valve. Results of the mechanical tests show that compared with the pure decellularized heart valve, the mechanical properties of the composite heart valve were significantly improved with the tensile strength increasing by 108% and tensile strain increased by 571% when the electrospinning time exceeded 2 h. In addition, with this electrospinning time, the composite heart valve has a certain promoting effect on the human umbilical vein endothelial cells proliferation behavior. This work provides a promising foundation for tissue heart valve reendothelialization to lay the groundwork for organoid.
增强去细胞心脏瓣膜的机械性能和细胞相容性是促进生物心脏瓣膜应用的关键。为了进一步提高机械性能,采用静电纺丝和无纺加工方法制备聚乳酸(PLA)/去细胞心脏瓣膜纳米纤维增强夹层结构静电纺丝支架。从去细胞心脏瓣膜的形态、机械性能、柔软度和生物相容性等方面研究了静电纺丝时间对去细胞心脏瓣膜性能的影响。力学测试结果表明,与纯去细胞心脏瓣膜相比,当静电纺丝时间超过 2 小时时,复合心脏瓣膜的力学性能显著提高,拉伸强度提高了 108%,拉伸应变提高了 571%。此外,在这个静电纺丝时间下,复合心脏瓣膜对人脐静脉内皮细胞的增殖行为具有一定的促进作用。这项工作为组织心脏瓣膜再内皮化提供了有前途的基础,为器官样体奠定了基础。