Polini Alessandro, Scaglione Silvia, Quarto Rodolfo, Pisignano Dario
Istituto Nanoscienze, National Nanotechnology Laboratory of CNR (National Research Council), Lecce, Italy.
Methods Mol Biol. 2013;1058:25-40. doi: 10.1007/7651_2012_4.
The design of new bioactive materials, provided with "instructive properties" and able to regulate stem cell behavior, is the goal for several research groups involved in tissue engineering. This new function, commonly reserved for growth factors, can lead to the development of a new class of implantable scaffolds, useful for accelerating tissue regeneration in a controlled manner. In this scenario, the likely most versatile and effective tools for the realization of such scaffolds are based on nano- and microtechnology. Here, we show how exploiting the electrostatic spinning (ES) technique for producing a nanofibrillar composite structure, by mimicking topographically the extracellular matrix environment, can influence the fate of human bone marrow mesenchymal stem cells, inducing osteogenic differentiation in the absence of chemical treatments or cellular reprogramming. Basic cues on the choice of the materials and useful experimental instructions for realizing composite nanofibrous scaffolds will be given as well as fundamental tips.
设计具有“指导特性”并能够调节干细胞行为的新型生物活性材料,是多个从事组织工程研究的团队的目标。这种通常由生长因子所具备的新功能,能够促使一类新型可植入支架的开发,有助于以可控方式加速组织再生。在这种情况下,实现此类支架最有可能通用且有效的工具基于纳米和微技术。在此,我们展示了如何通过模仿细胞外基质环境的拓扑结构,利用静电纺丝(ES)技术制备纳米纤维复合结构,这可以影响人骨髓间充质干细胞的命运,在无需化学处理或细胞重编程的情况下诱导成骨分化。同时还将给出关于材料选择的基本要点、制备复合纳米纤维支架的有用实验指导以及基本提示。