Zhang Xing, Xu Bin, Puperi Daniel S, Wu Yan, West Jennifer L, Grande-Allen K Jane
Department of Bioengineering, Rice University, Houston, TX 77030, USA; Institute of Metal Research, Chinese Academy of Sciences, Shenyang, Liaoning 110016, China.
Department of Bioengineering, Rice University, Houston, TX 77030, USA.
J Long Term Eff Med Implants. 2015;25(1-2):105-34. doi: 10.1615/jlongtermeffmedimplants.2015011817.
With an increasing number of patients requiring valve replacements, there is heightened interest in advancing heart valve tissue engineering (HVTE) to provide solutions to the many limitations of current surgical treatments. A variety of materials have been developed as scaffolds for HVTE including natural polymers, synthetic polymers, and decellularized valvular matrices. Among them, biocompatible hydrogels are generating growing interest. Natural hydrogels, such as collagen and fibrin, generally show good bioactivity but poor mechanical durability. Synthetic hydrogels, on the other hand, have tunable mechanical properties; however, appropriate cell-matrix interactions are difficult to obtain. Moreover, hydrogels can be used as cell carriers when the cellular component is seeded into the polymer meshes or decellularized valve scaffolds. In this review, we discuss current research strategies for HVTE with an emphasis on hydrogel applications. The physicochemical properties and fabrication methods of these hydrogels, as well as their mechanical properties and bioactivities are described. Performance of some hydrogels including in vitro evaluation using bioreactors and in vivo tests in different animal models are also discussed. For future HVTE, it will be compelling to examine how hydrogels can be constructed from composite materials to replicate mechanical properties and mimic biological functions of the native heart valve.
随着需要进行瓣膜置换的患者数量不断增加,人们对推进心脏瓣膜组织工程(HVTE)的兴趣日益浓厚,以解决当前外科治疗的诸多局限性。已开发出多种材料作为HVTE的支架,包括天然聚合物、合成聚合物和脱细胞瓣膜基质。其中,生物相容性水凝胶正引起越来越多的关注。天然水凝胶,如胶原蛋白和纤维蛋白,通常具有良好的生物活性,但机械耐久性较差。另一方面,合成水凝胶具有可调节的机械性能;然而,难以获得适当的细胞与基质的相互作用。此外,当将细胞成分接种到聚合物网孔或脱细胞瓣膜支架中时,水凝胶可用作细胞载体。在本综述中,我们讨论了HVTE的当前研究策略,重点是水凝胶的应用。描述了这些水凝胶的物理化学性质、制备方法及其机械性能和生物活性。还讨论了一些水凝胶的性能,包括使用生物反应器的体外评估和在不同动物模型中的体内测试。对于未来的HVTE,研究如何由复合材料构建水凝胶以复制天然心脏瓣膜的机械性能并模拟其生物学功能将是非常有吸引力的。