Mohanty Soumyaranjan, Alm Martin, Hemmingsen Mette, Dolatshahi-Pirouz Alireza, Trifol Jon, Thomsen Peter, Dufva Martin, Wolff Anders, Emnéus Jenny
DTU Nanotech, Department of Micro- and Nanotechnology, Technical University of Denmark , Ørsteds Plads, DK-2800 Kgs, Lyngby, Denmark.
BioModics ApS, Gregersensvej 7, DK-2630 Taastrup, Denmark.
Biomacromolecules. 2016 Apr 11;17(4):1321-9. doi: 10.1021/acs.biomac.5b01722. Epub 2016 Mar 4.
Scaffolds with multiple functionalities have attracted widespread attention in the field of tissue engineering due to their ability to control cell behavior through various cues, including mechanical, chemical, and electrical. Fabrication of such scaffolds from clinically approved materials is currently a huge challenge. The goal of this work was to fabricate a tissue engineering scaffold from clinically approved materials with the capability of delivering biomolecules and direct cell fate. We have used a simple 3D printing approach, that combines polymer casting with supercritical fluid technology to produce 3D interpenetrating polymer network (IPN) scaffold of silicone-poly(2-hydroxyethyl methacrylate)-co-poly(ethylene glycol) methyl ether acrylate (pHEMA-co-PEGMEA). The pHEMA-co-PEGMEA IPN materials were employed to support growth of human mesenchymal stem cells (hMSC), resulting in high cell viability and metabolic activity over a 3 weeks period. In addition, the IPN scaffolds support 3D tissue formation inside the porous scaffold with well spread cell morphology on the surface of the scaffold. As a proof of concept, sustained doxycycline (DOX) release from pHEMA-co-PEGMEA IPN was demonstrated and the biological activity of released drug from IPN was confirmed using a DOX regulated green fluorescent reporter (GFP) gene expression assay with HeLa cells. Given its unique mechanical and drug releasing characteristics, IPN scaffolds may be used for directing stem cell differentiation by releasing various chemicals from its hydrogel network.
具有多种功能的支架因其能够通过包括机械、化学和电学等各种信号来控制细胞行为,在组织工程领域引起了广泛关注。目前,用临床批准的材料制造这种支架是一项巨大的挑战。这项工作的目标是用临床批准的材料制造一种具有递送生物分子和引导细胞命运能力的组织工程支架。我们采用了一种简单的3D打印方法,即将聚合物浇铸与超临界流体技术相结合,来制备硅酮 - 聚(甲基丙烯酸2 - 羟乙酯) - 共 - 聚(聚乙二醇甲基醚丙烯酸酯)(pHEMA - co - PEGMEA)的3D互穿聚合物网络(IPN)支架。使用pHEMA - co - PEGMEA IPN材料来支持人间充质干细胞(hMSC)的生长,在3周时间内实现了高细胞活力和代谢活性。此外,IPN支架支持在多孔支架内部形成3D组织,且细胞在支架表面形态良好地铺展。作为概念验证,证明了强力霉素(DOX)从pHEMA - co - PEGMEA IPN中的持续释放,并使用针对HeLa细胞的DOX调节绿色荧光报告基因(GFP)表达测定法确认了从IPN释放的药物的生物活性。鉴于其独特的机械和药物释放特性,IPN支架可用于通过从其水凝胶网络释放各种化学物质来引导干细胞分化。