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提高水凝胶微孔阵列上神经球培养的可靠性和通量。

Enhancing the reliability and throughput of neurosphere culture on hydrogel microwell arrays.

作者信息

Cordey Myriam, Limacher Monika, Kobel Stefan, Taylor Verdon, Lutolf Matthias P

机构信息

Institute of Bioengineering, Laboratory of Stem Cell Bioengineering, Ecole Polytechnique Fédérale de Lausanne, Lausanne, Switzerland.

出版信息

Stem Cells. 2008 Oct;26(10):2586-94. doi: 10.1634/stemcells.2008-0498. Epub 2008 Jul 31.

Abstract

The neurosphere assay is the standard retrospective assay to test the self-renewal capability and multipotency of neural stem cells (NSCs) in vitro. However, it has recently become clear that not all neurospheres are derived from a NSC and that on conventional cell culture substrates, neurosphere motility may cause frequent neurosphere "merging" [Nat Methods 2006;3:801-806; Stem Cells 2007;25:871-874]. Combining biomimetic hydrogel matrix technology with microengineering, we developed a microwell array platform on which NSC fate and neurosphere formation can be unequivocally attributed to a single founding cell. Using time-lapse microscopy and retrospective immunostaining, the fate of several hundred single NSCs was quantified. Compared with conventional neurosphere culture methods on plastic dishes, we detected a more than 100% increase in single NSC viability on soft hydrogels. Effective confinement of single proliferating cells to microwells led to neurosphere formation of vastly different sizes, a high percentage of which showed stem cell phenotypes after one week in culture. The reliability and increased throughput of this platform should help to better elucidate the function of sphere-forming stem/progenitor cells independent of their proliferation dynamics. Disclosure of potential conflicts of interest is found at the end of this article.

摘要

神经球分析是在体外测试神经干细胞(NSCs)自我更新能力和多能性的标准回顾性分析方法。然而,最近已明确并非所有神经球都源自神经干细胞,并且在传统细胞培养底物上,神经球的运动性可能导致频繁的神经球“融合”[《自然方法》2006年;3:801 - 806;《干细胞》2007年;25:871 - 874]。通过将仿生水凝胶基质技术与微工程相结合,我们开发了一种微孔阵列平台,在该平台上神经干细胞的命运和神经球形成可以明确归因于单个起始细胞。使用延时显微镜和回顾性免疫染色,对数百个单个神经干细胞的命运进行了量化。与塑料培养皿上的传统神经球培养方法相比,我们发现在柔软水凝胶上单个神经干细胞的活力增加了100%以上。将单个增殖细胞有效限制在微孔中导致形成大小差异极大的神经球,其中很大一部分在培养一周后显示出干细胞表型。该平台的可靠性和更高的通量应有助于更好地阐明成球干细胞/祖细胞的功能,而不依赖于它们的增殖动力学。潜在利益冲突的披露见本文末尾。

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