Department of Chemical and Biomolecular Engineering, Rice University, MS-362, PO Box 1892, Houston, TX 77251-1892, USA.
Acta Biomater. 2010 Aug;6(8):2920-31. doi: 10.1016/j.actbio.2010.02.046. Epub 2010 Mar 1.
In this work, injectable, biodegradable hydrogel composites of crosslinked oligo(poly(ethylene glycol) fumarate) and gelatin microparticles (MPs) were used to fabricate a bilayered osteochondral construct. Rabbit marrow mesenchymal stem cells (MSCs) were encapsulated with transforming growth factor-beta3 (TGF-beta3)-loaded MPs in the chondrogenic layer and cocultured with cells of different periods of osteogenic preculture (0, 3, 6 and 12 days) in the osteogenic layer to investigate the effects of TGF-beta3 delivery and coculture on the proliferation and differentiation of cells in both layers. The results showed that, in the chondrogenic layer, TGF-beta3 significantly stimulated chondrogenic differentiation of MSCs. In addition, cells of various osteogenic preculture periods in the osteogenic layer, along with TGF-beta3, enhanced gene expression for MSC chondrogenic markers to different extents. In the osteogenic layer, cells maintained their alkaline phosphatase activity during the coculture; however, mineralization was delayed by the presence of TGF-beta3. Overall, this study demonstrated the fabrication of bilayered hydrogel composites which mimic the structure and function of osteochondral tissue, along with the application of these composites as cell and growth factor carriers, while illustrating that encapsulated cells of different degrees of osteogenic differentiation can significantly influence the chondrogenic differentiation of cocultured progenitor cells in both the presence and absence of chondrogenic growth factors.
在这项工作中,使用可注射的、可生物降解的交联低聚(聚乙二醇)富马酸酯和明胶微球(MPs)水凝胶复合材料来构建双层骨软骨构建体。兔骨髓间充质干细胞(MSCs)被负载转化生长因子-β3(TGF-β3)的 MPs 包封在软骨形成层中,并与不同成骨预培养期(0、3、6 和 12 天)的细胞在成骨层中共培养,以研究 TGF-β3 递送和共培养对两层细胞增殖和分化的影响。结果表明,在软骨形成层中,TGF-β3 显著刺激 MSCs 的软骨分化。此外,成骨层中不同成骨预培养期的细胞与 TGF-β3 一起,不同程度地增强了 MSC 软骨形成标志物的基因表达。在成骨层中,细胞在共培养过程中保持碱性磷酸酶活性;然而,TGF-β3 的存在延迟了矿化。总的来说,这项研究展示了双层水凝胶复合材料的构建,该复合材料模拟了骨软骨组织的结构和功能,同时将这些复合材料作为细胞和生长因子载体进行应用,同时说明不同程度成骨分化的包封细胞可以显著影响共培养祖细胞的软骨分化,无论是否存在软骨生长因子。