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小鼠多能干细胞在微图案化表面上的空间组织分化。

Spatially Organized Differentiation of Mouse Pluripotent Stem Cells on Micropatterned Surfaces.

机构信息

Developmental Biology Program, Sloan Kettering Institute, Memorial Sloan Kettering Cancer Center, New York, NY, USA.

Wellcome-MRC Cambridge Stem Cell Institute, University of Cambridge, Cambridge, UK.

出版信息

Methods Mol Biol. 2021;2214:41-58. doi: 10.1007/978-1-0716-0958-3_4.

Abstract

Pluripotent stem cells (PSCs) are the in vitro counterpart of the pluripotent epiblast of the mammalian embryo with the capacity to generate all cell types of the adult organism. During development, the three definitive germ layers are specified and simultaneously spatially organized. In contrast, differentiating PSCs tend to generate cell fates in a spatially disorganized manner. This has limited the in vitro study of specific cell-cell interactions and patterning mechanisms that occur in vivo. Here we describe a protocol to differentiate mouse PSCs in a spatially organized manner on micropatterned surfaces. Micropatterned chips comprise many colonies of uniform size and geometry facilitating a robust quantitative analysis of patterned fate specification. Furthermore, multiple factors may be simultaneously manipulated with temporal accuracy to probe the dynamic interactions regulating these processes. The micropattern system is scalable, providing a valuable tool to generate material for large-scale analysis and biochemical experiments that require substantial amounts of starting material, difficult to obtain from early embryos.

摘要

多能干细胞(PSCs)是哺乳动物胚胎中具有多能性胚外组织的体外对应物,能够产生成年生物体的所有细胞类型。在发育过程中,三个确定的胚层被指定并同时进行空间组织。相比之下,分化的 PSCs 往往以空间无序的方式产生细胞命运。这限制了对体内发生的特定细胞-细胞相互作用和模式形成机制的体外研究。在这里,我们描述了一种在微图案化表面上以空间方式分化小鼠 PSCs 的方案。微图案化芯片包含许多大小和几何形状均匀的菌落,便于对图案化命运指定进行稳健的定量分析。此外,多个因素可以同时以时间精度进行操作,以探测调节这些过程的动态相互作用。微图案系统具有可扩展性,为大规模分析和需要大量起始材料的生化实验提供了有价值的工具,而这些起始材料很难从早期胚胎中获得。

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