首页> 外文期刊>Biomaterials >Enhancement of the propagation of human embryonic stem cells by modifications in the gel architecture of PMEDSAH polymer coatings.
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Enhancement of the propagation of human embryonic stem cells by modifications in the gel architecture of PMEDSAH polymer coatings.

机译:通过修改PMEDSAH聚合物涂层的凝胶结构来增强人类胚胎干细胞的繁殖。

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摘要

Well-defined culture conditions are essential for realizing the full potential of human embryonic stem cells (hESCs) in regenerative medicine where large numbers of cells are required. Synthetic polymers such as poly[2-(methacryloyloxy) ethyl dimethyl-(3-sulfopropyl) ammonium hydroxide] (PMEDSAH), offer multiple advantages over mouse embryonic fibroblasts (MEFs) and Matrigel? for hESC culture and expansion. However, there is limited understanding of the mechanisms by which hESCs are propagated on synthetic polymers coatings. Here, the effects of PMEDSAH gel architecture on hESC self-renewal were determined. By increasing the atom transfer radical polymerization (ATRP) reaction time, the thickness of PMEDSAH was increased and its internal hydrogel architecture was modified, while maintaining its overall chemical structure. A 105?nm thick ATRP PMEDSAH coating showed a significant increase in the expansion rate of hESCs. Theoretical calculations suggested that 20,000 hESCs cultured on this substrate could be expanded up to 4.7?×?10(9) undifferentiated cells in five weeks. In addition, hESCs grown on ATRP PMEDSAH coatings retained pluripotency and displayed a normal karyotype after long-term culture. These data demonstrate the importance of polymer physical properties in hESC expansion. This modification of PMEDSAH coatings may be used to obtain large populations of hESCs required for many applications in regenerative medicine.
机译:充分定义的培养条件对于在需要大量细胞的再生医学中实现人类胚胎干细胞(hESC)的全部潜力至关重要。诸如聚[2-(甲基丙烯酰氧基)乙基二甲基-(3-磺丙基)氢氧化铵](PMEDSAH)的合成聚合物比小鼠胚胎成纤维细胞(MEF)和Matrigel®具有更多优势。用于hESC培养和扩增。然而,对hESCs在合成聚合物涂层上繁殖的机理了解有限。在这里,确定了PMEDSAH凝胶结构对hESC自我更新的影响。通过增加原子转移自由基聚合(ATRP)反应时间,可以增加PMEDSAH的厚度并修改其内部水凝胶结构,同时保持其整体化学结构。厚度为105nm的ATRP PMEDSAH涂层显示hESCs的膨胀率显着增加。理论计算表明,在此底物上培养的20,000 hESCs可以在5周内扩增到4.7?×?10(9)未分化的细胞。此外,在长期培养后,在ATRP PMEDSAH涂层上生长的hESC保持多能性并显示出正常的核型。这些数据证明了聚合物物理性质在hESC扩展中的重要性。 PMEDSAH涂层的这种改性可用于获得再生医学中许多应用所需的大量hESC。

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