Institute for Polymers, Composites and Biomaterials (IPCB) - CNR, Via Campi Flegrei, 34, Pozzuoli, Naples, Italy.
Institute for Polymers, Composites and Biomaterials (IPCB) - CNR, Viale J.F. Kennedy 54, Mostra d'Oltremare Pad 20, 80125 Naples, Italy.
Carbohydr Polym. 2018 Dec 15;202:72-83. doi: 10.1016/j.carbpol.2018.08.086. Epub 2018 Aug 23.
Nowadays, the need of novel strategies to repair and regenerate bone defects in the field of biomedical applications has increased. Novel approaches include the design of natural bioactive scaffolds mimicking bone tissue. These bioactive scaffolds have to possess biophysical properties suitable to address biological response towards newly bone tissue formation. In particular, scaffold porosity and pore size play a pivotal role in cell migration, adhesion and proliferation, thus increasing cell-material surface interaction and osteogenic signals transmission. Here we propose the development of macroporous alginate foams (MAFs) with porous and well interconnected structure, useful to enhance growth and osteogenic differentiation of human Mesenchymal Stem Cells (hMSCs). Moreover, in this study we report a new method for MAFs fabrication based on the combination of internal gelation technique with gas foaming. Strontium was employed in combination with calcium as cross-linking agent for the alginate chains and as enhancer of the osteogenic differentiation. The influence of strontium ions on the gelation kinetics, physical properties and degradation in physiological medium of MAFs was investigated. Our results suggest that the combination of internal gelation technique with gas foaming followed by freeze-drying is an easy and straightforward procedure to prepare alginate foams with high porosity and interconnectivity, able to support cell infiltration. Finally, biological assays showed how scaffolds with high strontium content are able to support cell growth and differentiation in long times by promoting osteogenic marker expression.
如今,在生物医学应用领域,修复和再生骨缺损的新策略的需求不断增加。新方法包括设计模仿骨组织的天然生物活性支架。这些生物活性支架必须具有适合新骨组织形成的生物物理特性。特别是,支架的孔隙率和孔径在细胞迁移、黏附和增殖中起着关键作用,从而增加细胞与材料表面的相互作用和成骨信号的传递。在这里,我们提出了开发具有多孔和相互连通结构的大孔海藻酸盐泡沫(MAFs)的方法,这有助于增强人骨髓间充质干细胞(hMSCs)的生长和成骨分化。此外,在这项研究中,我们报告了一种基于内部凝胶化技术与气体发泡相结合的 MAFs 制造新方法。锶与钙一起被用作海藻酸盐链的交联剂和成骨分化增强剂。研究了锶离子对 MAFs 的凝胶动力学、物理性能和在生理介质中降解的影响。我们的结果表明,内部凝胶化技术与气体发泡相结合,然后进行冷冻干燥,是一种制备具有高孔隙率和连通性的海藻酸盐泡沫的简单易行的方法,能够支持细胞渗透。最后,生物实验表明,高锶含量的支架能够通过促进成骨标志物的表达,在长时间内支持细胞的生长和分化。