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Stem cell colony interspacing effect on differentiation to neural cells

机译:干细胞殖民区间隔效应对神经细胞的分化

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Efforts to enhance the efficiency of neural differentiation of stem cells are primarily focused on exogenous modulation of physical niche parameters such as surface topography and extracellular matrix proteins, or addition of certain growth factors or small molecules to culture media. We report a novel neurogenic niche to enhance the neural differentiation of embryonic stem cells (ESCs) without any external intervention by micropatterning ESCs into spatially organized colonies of controlled size and interspacing. Using an aqueous two-phase system cell microprinting technology, we generated pairs of uniformly sized isolated ESC colonies at defined interspacing distances over a layer of differentiation-inducing stromal cells. Our comprehensive analysis of temporal expression of neural genes and proteins of cells in colony pairs showed that interspacing two colonies at approximately 0.66 times the colony diameter (0.66D) significantly enhanced neural differentiation of ESCs. Cells in these colonies displayed higher expression of neural genes and proteins and formed thick neurite bundles between the two colonies. A computational model of spatial distribution of soluble factors of cells in interspaced colony pairs showed that the enhanced neural differentiation is due to the presence of stable concentration gradients of soluble signalling factors between the two colonies. Our results indicate that culturing ESCs in colony pairs with defined interspacing is a promising approach to efficiently derive neural cells. Additionally, this approach provides a platform for quantitative studies of molecular mechanisms that regulate neurogenesis of stem cells.
机译:提高干细胞神经分化效率的努力主要专注于物理性质的地形和细胞外基质蛋白的外源调节,或添加某些生长因子或小分子给培养基。我们报告了一种新型神经源性地基,以增强胚胎干细胞(ESC)的神经分化,而不通过将ESC进行微型术中的外部干预,进入受控尺寸和间隙的空间组织的殖民地。使用两相系统细胞微型制品技术,我们在分化诱导的基质细胞层上限定的间隔距离处产生了成对的均匀尺寸的偏离ESC殖民地。我们对菌落对中神经基因和细胞蛋白质的综合分析表明,菌落直径(0.66d)的菌落直径约0.66倍的三种菌落显着增强了ESC的神经分化。这些菌落中的细胞显示出神经基因和蛋白质的表达更高,并在两个菌落之间形成厚的神经键束。间隙菌落对中细胞可溶性因子的空间分布的计算模型表明,增强的神经分化是由于两个菌落之间的可溶性信号传导因子的稳定浓度梯度存在。我们的研究结果表明,具有定义间隔的菌落对中的培养物是有效衍生神经细胞的有希望的方法。另外,该方法提供了调节干细胞神经发生的分子机制的定量研究平台。

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