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Transcriptomic Analysis of Naïve Human Embryonic Stem Cells Cultured in Three-Dimensional PEG Scaffolds

机译:在三维PEG支架中培养的幼稚人胚胎干细胞的转录组分析

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摘要

Naïve human embryonic stem cells (ESCs) are characterized by improved viability, proliferation, and differentiation capacity in comparison to traditionally derived primed human ESCs. However, currently used two-dimensional (2-D) cell culture techniques fail to mimic the three-dimensional (3-D) in vivo microenvironment, altering morphological and molecular characteristics of ESCs. Here, we describe the use of 3-D self-assembling scaffolds that support growth and maintenance of the naïve state characteristics of ESC line, Elf1. Scaffolds were formed via a Michael addition reaction upon the combination of two 8-arm polyethylene glycol (PEG) polymers functionalized with thiol (PEG-8-SH) and acrylate (PEG-8-Acr) end groups. 3-D scaffold environment maintained the naïve state and supported the long-term growth of ESCs. RNA-sequencing demonstrated significant changes in gene expression profiles between 2-D and 3-D grown cells. Gene ontology analysis revealed upregulation of biological processes involved in the regulation of transcription and translation, extracellular matrix organization, and chromatin remodeling in 3-D grown cells. 3-D culture conditions also induced upregulation of genes associated with Wnt and focal adhesion signaling, while p53 signaling pathway associated genes were downregulated. Our findings, for the first time, provide insight into the possible mechanisms of self-renewal of naïve ESCs stimulated by the transduction of mechanical signals from the 3-D microenvironment.
机译:Naïve人胚胎干细胞(ESC)的特征在于,与传统上衍生的人类ESC相比,具有改善的活力,增殖和分化能力。然而,目前使用的二维(2-D)细胞培养技术未能模仿体内微环境的三维(3-D),改变ESC的形态学和分子特性。在这里,我们描述了使用3-D自组装支架的使用,这些支架支持的生长和维持ESC线的Naïve状态特性。在用硫醇(PEG-8-SH)和丙烯酸酯(PEG-8-ACR)端基团的两种8臂聚乙二醇(PEG)聚合物的组合,通过Michael加成反应形成支架。 3-D脚手架环境保持了天真状态,支持了ESC的长期增长。 RNA测序表明了2-D和3-D生长细胞之间基因表达谱的显着变化。基因本体学分析显示了在三维生长细胞中调节转录和翻译,细胞外基质组织和染色质重塑的生物过程的上调。 3-D培养条件还诱导与WNT和局灶性粘合信号相关的基因的上调,而P53信号传导途径相关基因被下调。我们的调查结果首次提供了对通过从3-D微环境的机械信号进行转导刺激的Naïveesc的可能机制的洞察。

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