Department of Biomedical and Clinical Sciences "L. Sacco", University of Milan, Via Grassi 74, 20157 Milan, Italy.
Pediatric Research Center "Romeo ed Enrica Invernizzi", University of Milano, Via G.B. Grassi 74, 20157 Milano, Italy.
Int J Mol Sci. 2020 Sep 15;21(18):6775. doi: 10.3390/ijms21186775.
3D cell cultures are becoming more and more important in the field of regenerative medicine due to their ability to mimic the cellular physiological microenvironment. Among the different types of 3D scaffolds, we focus on the Nichoid, a miniaturized scaffold with a structure inspired by the natural staminal niche. The Nichoid can activate cellular responses simply by subjecting the cells to mechanical stimuli. This kind of influence results in different cellular morphology and organization, but the molecular bases of these changes remain largely unknown. Through RNA-Seq approach on murine neural precursors stem cells expanded inside the Nichoid, we investigated the deregulated genes and pathways showing that the Nichoid causes alteration in genes strongly connected to mechanobiological functions. Moreover, we fully dissected this mechanism highlighting how the changes start at a membrane level, with subsequent alterations in the cytoskeleton, signaling pathways, and metabolism, all leading to a final alteration in gene expression. The results shown here demonstrate that the Nichoid influences the biological and genetic response of stem cells thorough specific alterations of cellular signaling. The characterization of these pathways elucidates the role of mechanical manipulation on stem cells, with possible implications in regenerative medicine applications.
3D 细胞培养由于其能够模拟细胞生理微环境,在再生医学领域变得越来越重要。在不同类型的 3D 支架中,我们专注于 Nichoid,这是一种微型支架,其结构灵感来自于天然干细胞龛。Nichoid 可以通过对细胞施加机械刺激来简单地激活细胞反应。这种影响导致不同的细胞形态和组织,但这些变化的分子基础在很大程度上仍然未知。通过在 Nichoid 内扩增的鼠神经前体细胞干细胞的 RNA-Seq 方法,我们研究了失调基因和途径,表明 Nichoid 导致与机械生物学功能强烈相关的基因发生改变。此外,我们还充分剖析了这一机制,突出了这种变化如何从膜水平开始,随后细胞骨架、信号通路和代谢发生改变,最终导致基因表达的改变。这里显示的结果表明,Nichoid 通过对细胞信号的特定改变来影响干细胞的生物学和遗传反应。这些途径的特征阐明了机械操作对干细胞的作用,可能对再生医学应用具有重要意义。