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首页> 外文期刊>Frontiers in Bioengineering and Biotechnology >Temporal Changes in Nucleus Morphology, Lamin A/C and Histone Methylation During Nanotopography-Induced Neuronal Differentiation of Stem Cells
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Temporal Changes in Nucleus Morphology, Lamin A/C and Histone Methylation During Nanotopography-Induced Neuronal Differentiation of Stem Cells

机译:纳米形貌诱导干细胞神经元分化过程中细胞核形态,层粘连蛋白A / C和组蛋白甲基化的时间变化

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Stem cell differentiation can be regulated by biophysical cues such as nanotopography. It involves sensing and integration of these biophysical cues into their transcriptome with a mechanism that is yet to be discovered. In addition to the cytoskeletal and focal adhesion remodeling, nanotopography has also been shown to modulate nucleus morphology. Here, we studied the effect of nanotopography on the temporal changes in nuclei of human embryonic stem cells (hESCs) and human mesenchymal stem cells (hMSCs). Using a high throughput Multi-architecture (MARC) chip analysis, the circularity of the stem cell nuclei changed significantly on different patterns. Human ESCs and MSCs showed different temporal changes in nucleus morphology, lamin A/C expression and histone methylation during topography-induced neuronal differentiation. In hESCs, the expression of nuclear matrix protein, lamin A/C during neuronal differentiation of hESCs on PDMS samples were weakly detected in the first 7 days of differentiation. The histone 3 trimethylation on Lysine 9 (H3K9me3) decreased after differentiation initiated and showed temporal changes in their expression and organization during neuronal differentiation. In hMSCs, the expression of lamin A/C was significantly increased after the first 24 hours of cell culture. The quantitative analysis of histone methylation also showed a significant increase in hMSCs histone methylation on 250nm anisotropic nanogratings within the first 24 hours of seeding. This reiterates the importance of cell-substrate sensing within the first 24 hours for adult stem cells. The lamin A/C expression and histone methylation shows a correlation of epigenetic changes in early events of differentiation, giving an insight on how extracellular nanotopographical cues are transduced into nuclear biochemical signals. Collectively, these results provide more understanding into the nuclear regulation of the mechanotransduction of nanotopographical cues in stem cell differentiation.
机译:干细胞分化可以通过生物物理线索例如纳米形貌来调节。它涉及利用尚未发现的机制将这些生物物理线索感知并整合到其转录组中。除了细胞骨架和粘着斑的重塑外,纳米形貌还可以调节细胞核的形态。在这里,我们研究了纳米形貌对人类胚胎干细胞(hESCs)和人类间充质干细胞(hMSCs)核时间变化的影响。使用高通量多体系结构(MARC)芯片分析,干细胞核的圆形度在不同模式下发生了显着变化。在地形诱导的神经元分化过程中,人类ESC和MSC的细胞核形态,核纤层蛋白A / C表达和组蛋白甲基化表现出不同的时间变化。在hESCs中,在分化的前7天中检测到hESCs在PDMS样品上神经元分化过程中核基质蛋白,lamin A / C的表达较弱。分化开始后,赖氨酸9(H3K9me3)上的组蛋白3三甲基化降低,并在神经元分化期间显示其表达和组织的时间变化。在hMSC中,细胞培养的最初24小时后,lamin A / C的表达明显增加。组蛋白甲基化的定量分析还显示,在播种的前24小时内,在250nm各向异性纳米光栅上,hMSCs组蛋白甲基化显着增加。这重申了成年干细胞在最初24小时内进行细胞底物传感的重要性。核纤层蛋白A / C表达和组蛋白甲基化显示了分化早期事件中表观遗传学变化的相关性,从而提供了关于如何将细胞外纳米形貌线索转化为核生化信号的见识。总的来说,这些结果提供了对干细胞分化中纳米地形线索的机械转导的核调控的更多理解。

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