Department of Materials Engineering, KU Leuven, Kasteelpark Arenberg 44, P.O. box 2450, Leuven, 3001, Belgium.
Skeletal Biology and Engineering Research Center, KU Leuven, O&N 1, Herestraat 49, P.O. box 813, Leuven, 3000, Belgium.
J Mater Sci Mater Med. 2017 Sep 5;28(10):156. doi: 10.1007/s10856-017-5968-6.
Cartilage damage affects a large population via acute and chronic injury and disease. Since native cartilage does not self-renew, cartilage tissue engineering has gained traction as a potential treatment. However, a limiting factor is that the primary cell type in cartilage, the articular chondrocyte, tends to de-differentiate when grown on 2D surfaces for in vitro expansion. Thus, 3D systems are being developed and used to counter this loss of chondrogenic capabilities. We hypothesize that a 3D matrix that can be remodeled may be more supportive of the chondrogenic phenotype of encapsulated articular chondrocytes than a 2D surface and may allow for the re-differentiation of chondrocytes after 2D expansion. Hence, in this study, enzymatically degradable polyethylene glycol (PEG) hydrogels containing two different protease degradable peptide segments, with different degradation rates, were tested in combination with chondrogenic medium as a 3D in vitro culture system to better recapitulate the native environment of human articular chondrocytes (hACs). In addition, the effect of incorporation of the integrin binding ligand Arg-Gly-Asp (RGD) in the hydrogels was explored. Hydrogels crosslinked with a slower degrading crosslinker and not functionalized with RGD maintained hAC viability and led to increased GAG production and chondrogenic gene expression over time, suggesting that this system can initiate hAC re-differentiation after 2D expansion.
软骨损伤通过急性和慢性损伤和疾病影响着大量人群。由于天然软骨不能自我更新,因此软骨组织工程作为一种潜在的治疗方法受到了关注。然而,一个限制因素是,软骨中的主要细胞类型——关节软骨细胞,在二维表面上进行体外扩增时往往会去分化。因此,正在开发和使用 3D 系统来对抗这种软骨形成能力的丧失。我们假设,一种可以重塑的 3D 基质可能比 2D 表面更能支持包封的关节软骨细胞的软骨形成表型,并可能允许软骨细胞在 2D 扩增后重新分化。因此,在这项研究中,我们测试了含有两种不同蛋白酶可降解肽段的可酶降解聚乙二醇(PEG)水凝胶,这两种肽段具有不同的降解速率,并与软骨形成培养基一起作为 3D 体外培养系统,以更好地模拟人关节软骨细胞(hAC)的天然环境。此外,还探索了在水凝胶中加入整合素结合配体 Arg-Gly-Asp(RGD)的效果。用降解速度较慢的交联剂交联且未用 RGD 功能化的水凝胶保持了 hAC 的活力,并随着时间的推移导致 GAG 产生和软骨形成基因表达增加,这表明该系统可以在 2D 扩增后启动 hAC 的重新分化。