Kazantseva Jekaterina, Hussainova Irina, Ivanov Roman, Neuman Toomas, Gasik Michael
CellIn Technologies LLC, Tallinn, Estonia.
Department of Materials Engineering, Tallinn University of Technology, Tallinn, Estonia.
Interface Focus. 2018 Jun 6;8(3):20170037. doi: 10.1098/rsfs.2017.0037. Epub 2018 Apr 20.
A challenge in regenerative medicine is governed by the need to have control over the fate of stem cells that is regulated by the physical and chemical microenvironment and . The differentiation of the stem cells into specific lineages is commonly guided by use of specific culture media. For the first time, we demonstrate that human mesenchymal stem cells are capable of turning spontaneously towards neurogenic lineage when seeded on graphene-augmented, highly anisotropic ceramic nanofibres without special differentiation media, contrary to commonly thought requirement of 'soft' substrates for the same purpose. Furthermore, pro-inflammatory gene expression is simultaneously suppressed, and expression of factors promoting focal adhesion and monocytes taxis is upregulated. This opens new possibilities of using local topo-mechanical cues of the 'graphenized' scaffold surfaces to guide stem cell proliferation and differentiation, which can be used in studies of neurological diseases and cell therapy.
再生医学面临的一项挑战在于,需要对受物理和化学微环境调控的干细胞命运加以控制。干细胞向特定谱系的分化通常借助特定的培养基来引导。我们首次证明,当接种在石墨烯增强的高度各向异性陶瓷纳米纤维上时,人间充质干细胞能够在没有特殊分化培养基的情况下自发地向神经源性谱系转变,这与通常认为实现相同目的需要“柔软”基质的观点相反。此外,促炎基因表达同时受到抑制,促进粘着斑和单核细胞趋化的因子表达上调。这为利用“石墨烯化”支架表面的局部拓扑机械线索来引导干细胞增殖和分化开辟了新的可能性,可用于神经疾病研究和细胞治疗。