Skeletal Biology and Engineering Research Center, Department of Development and Regeneration , KU Leuven , Leuven 3000 , Belgium.
ACS Appl Mater Interfaces. 2018 Dec 5;10(48):41046-41055. doi: 10.1021/acsami.8b13653. Epub 2018 Nov 26.
The combination of biomaterials with stem cells is a promising therapeutic strategy to repair traumatic injuries in the central nervous system, and human bone marrow mesenchymal stem cells (BMSCs) offer a clinically translatable option among other possible sources of stem cells. We report here on the use of a supramolecular bioactive material based on a peptide amphiphile (PA), displaying a laminin-mimetic IKVAV sequence to drive neural transdifferentiation of human BMSCs. The IKVAV-PA self-assembles into supramolecular nanofibers that induce neuroectodermal lineage commitment after 1 week, as evidenced by the upregulation of the neural progenitor gene nestin ( NES) and glial fibrillary acidic protein ( GFAP). After 2 weeks, the bioactive IKVAV-PA nanofibers induce significantly higher expression of neuronal markers β-III tubulin (TUJ-1), microtubule-associated protein-2 (MAP-2), and neuronal nuclei (NEUN), as well as the extracellular matrix laminin (LMN). Furthermore, the human BMSCs exposed to the biomaterial reveal a polarized cytoskeletal architecture and a decrease in cellular size, resembling neuron-like cells. We conclude that the investigated supramolecular biomaterial opens the opportunity to transdifferentiate adult human BMSCs into neuronal lineage.
生物材料与干细胞的结合是修复中枢神经系统创伤的一种很有前途的治疗策略,在其他可能的干细胞来源中,人骨髓间充质干细胞(BMSCs)提供了一种具有临床转化潜力的选择。我们在这里报告了一种基于肽两亲物(PA)的超分子生物活性材料的应用,该材料展示了层粘连蛋白模拟的 IKVAV 序列,以驱动人 BMSCs 的神经转分化。IKVAV-PA 自组装成超分子纳米纤维,在 1 周后诱导神经外胚层谱系的承诺,这表现为神经祖细胞基因巢蛋白(NES)和神经胶质纤维酸性蛋白(GFAP)的上调。2 周后,生物活性的 IKVAV-PA 纳米纤维诱导显著更高表达神经元标志物 β-III 微管蛋白(TUJ-1)、微管相关蛋白-2(MAP-2)和神经元核(NEUN),以及细胞外基质层粘连蛋白(LMN)。此外,暴露于生物材料的人 BMSCs 呈现出极化的细胞骨架结构和细胞尺寸减小,类似于神经元样细胞。我们得出结论,所研究的超分子生物材料为人类 BMSCs 向神经元谱系的转分化开辟了机会。