Department of Biomedical Engineering, New Jersey Institute of Technology, Newark, New Jersey 07102.
J Biomed Mater Res A. 2009 Dec 15;91(4):975-84. doi: 10.1002/jbm.a.32310.
This study evaluated the osteogenic differentiation of human mesenchymal stem cells (MSCs), on tyrosine-derived polycarbonates copolymerized with poly(ethylene glycol) (PEG) to determine their potential as a scaffold for bone tissue engineering applications. The addition of PEG in the backbone of polycarbonates has been shown to alter mechanical properties, degradation rates, degree of protein adsorption, and subsequent cell adhesion and motility in mature cell phenotypes. Its effect on MSC behavior is unknown. MSC morphology, motility, proliferation, and osteogenic differentiation were evaluated on polycarbonates containing 0-5% PEG over a 14 day culture. MSCs on polycarbonates containing 0% or 3% PEG content upregulated the expression of osteogenic markers as demonstrated by alkaline phosphatase activity and osteocalcin expression although at different stages in the 14 day culture. Cells on polycarbonates containing no PEG were characterized as having early onset of cell spreading and osteogenic differentiation. Cells on 3% PEG surfaces were delayed in cell spreading and osteogenic differentiation, but had the highest motility as compared with cells on substrates containing no PEG and substrates containing 5% PEG at early time points. Throughout the culture, cells on polycarbonates containing 5% PEG had the lowest levels of osteogenic markers, displayed poor cell-substrate adhesion, and established cell-cell aggregates. Thus, designing substrates with minute variations in PEG may serve as a tool to guide MSC adhesion and motility accompanying osteogenic differentiation, and may be beneficial for abundant bone tissue formation in vivo.
本研究评估了人骨髓间充质干细胞(MSCs)在酪氨酸衍生的聚碳酸酯与聚乙二醇(PEG)共聚体上的成骨分化,以确定其作为骨组织工程应用支架的潜力。在聚碳酸酯的主链中添加 PEG 已被证明会改变机械性能、降解速率、蛋白质吸附程度以及随后的细胞黏附和运动表型。其对 MSC 行为的影响尚不清楚。在 14 天的培养过程中,研究了含有 0-5%PEG 的聚碳酸酯对 MSC 形态、运动、增殖和成骨分化的影响。结果表明,含有 0%或 3%PEG 含量的聚碳酸酯上的 MSC 上调了成骨标志物的表达,如碱性磷酸酶活性和骨钙素表达,尽管在 14 天的培养过程中处于不同阶段。不含 PEG 的聚碳酸酯上的细胞表现出早期细胞铺展和成骨分化。不含 PEG 的表面上的细胞在细胞铺展和成骨分化方面受到延迟,但与不含 PEG 和 5%PEG 的底物相比,在早期时间点具有最高的迁移率。在整个培养过程中,含有 5%PEG 的聚碳酸酯上的细胞具有最低水平的成骨标志物,显示出较差的细胞-底物黏附性,并形成细胞-细胞聚集。因此,设计具有微小 PEG 变化的底物可能成为一种工具,可用于指导 MSC 黏附和伴随成骨分化的运动,并可能有益于体内丰富的骨组织形成。