Donnaloja Francesca, Raimondi Manuela Teresa, Messa Letizia, Barzaghini Bianca, Carnevali Federica, Colombo Emanuele, Mazza Davide, Martinelli Chiara, Boeri Lucia, Rey Federica, Cereda Cristina, Osellame Roberto, Cerullo Giulio, Carelli Stephana, Soncini Monica, Jacchetti Emanuela
Department of Chemistry, Materials and Chemical Engineering "Giulio Natta," Politecnico di Milano, Milan, Italy.
Istituto Scientifico Ospedale San Raffaele, Centro di Imaging Sperimentale, Milan, Italy.
APL Bioeng. 2023 Sep 7;7(3):036112. doi: 10.1063/5.0153215. eCollection 2023 Sep.
Mechanical stimuli from the extracellular environment affect cell morphology and functionality. Recently, we reported that mesenchymal stem cells (MSCs) grown in a custom-made 3D microscaffold, the Nichoid, are able to express higher levels of stemness markers. In fact, the Nichoid is an interesting device for autologous MSC expansion in clinical translation and would appear to regulate gene activity by altering intracellular force transmission. To corroborate this hypothesis, we investigated mechanotransduction-related nuclear mechanisms, and we also treated spread cells with a drug that destroys the actin cytoskeleton. We observed a roundish nuclear shape in MSCs cultured in the Nichoid and correlated the nuclear curvature with the import of transcription factors. We observed a more homogeneous euchromatin distribution in cells cultured in the Nichoid with respect to the Flat sample, corresponding to a standard glass coverslip. These results suggest a different gene regulation, which we confirmed by an RNA-seq analysis that revealed the dysregulation of 1843 genes. We also observed a low structured lamina mesh, which, according to the implemented molecular dynamic simulations, indicates reduced damping activity, thus supporting the hypothesis of low intracellular force transmission. Also, our investigations regarding lamin expression and spatial organization support the hypothesis that the gene dysregulation induced by the Nichoid is mainly related to a reduction in force transmission. In conclusion, our findings revealing the Nichoid's effects on MSC behavior is a step forward in the control of stem cells via mechanical manipulation, thus paving the way to new strategies for MSC translation to clinical applications.
来自细胞外环境的机械刺激会影响细胞形态和功能。最近,我们报道称,在定制的3D微支架Nichoid中生长的间充质干细胞(MSC)能够表达更高水平的干性标志物。事实上,Nichoid是一种用于临床转化中自体MSC扩增的有趣装置,似乎通过改变细胞内力传递来调节基因活性。为了证实这一假设,我们研究了与机械转导相关的核机制,并且还用一种破坏肌动蛋白细胞骨架的药物处理了铺展的细胞。我们观察到在Nichoid中培养的MSC呈圆形核形态,并将核曲率与转录因子的导入相关联。相对于对应于标准玻璃盖玻片的扁平样本,我们观察到在Nichoid中培养的细胞中常染色质分布更均匀。这些结果表明存在不同的基因调控,我们通过RNA测序分析证实了这一点,该分析揭示了1843个基因的失调。我们还观察到层状网格结构松散,根据实施的分子动力学模拟,这表明阻尼活性降低,从而支持细胞内力传递较低的假设。此外,我们关于核纤层蛋白表达和空间组织的研究支持以下假设:Nichoid诱导的基因失调主要与力传递减少有关。总之,我们揭示Nichoid对MSC行为影响的研究结果是通过机械操作控制干细胞方面的一个进步,从而为MSC转化到临床应用的新策略铺平了道路。