1 Institute for Translational Medicine, College of Medicine, Qingdao University , Qingdao, People's Republic of China .
2 School of Chemical and Biomedical Engineering, Nanyang Technological University , Singapore, Singapore .
Tissue Eng Part B Rev. 2017 Oct;23(5):451-461. doi: 10.1089/ten.TEB.2016.0465. Epub 2017 Feb 3.
Hydrogels have been promising candidate scaffolds for cell delivery and tissue engineering due to their tissue-like physical properties and capability for homogeneous cell loading. However, the encapsulated cells are generally entrapped and constrained in the submicron- or nanosized gel networks, seriously limiting cell growth and tissue formation. Meanwhile, the spatially confined settlement inhibits attachment and spreading of anchorage-dependent cells, leading to their apoptosis. In recent years, macroporous hydrogels have attracted increasing attention in use as cell delivery vehicles and tissue engineering scaffolds. The introduction of macropores within gel scaffolds not only improves their permeability for better nutrient transport but also creates space/interface for cell adhesion, proliferation, and extracellular matrix deposition. Herein, we will first review the development of macroporous gel scaffolds and outline the impact of macropores on cell behaviors. In the first part, the advantages and challenges of hydrogels as three-dimensional (3D) cell culture scaffolds will be described. In the second part, the fabrication of various macroporous hydrogels will be presented. Third, the enhancement of cell activities within macroporous gel scaffolds will be discussed. Finally, several crucial factors that are envisaged to propel the improvement of macroporous gel scaffolds are proposed for 3D cell culture and tissue engineering.
水凝胶由于其类似组织的物理特性和均匀细胞负载的能力,一直是细胞递送和组织工程的有前途的候选支架。然而,包封的细胞通常被捕获并限制在亚微米或纳米级的凝胶网络中,严重限制了细胞的生长和组织的形成。同时,空间受限的沉降抑制了锚定依赖性细胞的附着和扩展,导致其凋亡。近年来,大孔水凝胶作为细胞递送载体和组织工程支架越来越受到关注。在凝胶支架中引入大孔不仅提高了其渗透性,有利于更好的营养物质运输,而且为细胞黏附、增殖和细胞外基质沉积创造了空间/界面。本文首先综述了大孔凝胶支架的发展,并概述了大孔对细胞行为的影响。第一部分描述了水凝胶作为三维(3D)细胞培养支架的优点和挑战。第二部分介绍了各种大孔水凝胶的制备。第三,讨论了大孔凝胶支架内细胞活性的增强。最后,提出了几个预期能推动大孔凝胶支架在 3D 细胞培养和组织工程中改进的关键因素。