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Nanotopographical surfaces for stem cell fate control: Engineering mechanobiology from the bottom

机译:用于控制干细胞命运的纳米形貌表面:从底部开始的工程力学生物学

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During embryogenesis and tissue maintenance and repair in an adult organism, a myriad of stem cells are regulated by their surrounding extracellular matrix (ECM) enriched with tissue/organ-specific nanoscale topographical cues to adopt different fates and functions. Attributed to their capability of self-renewal and differentiation into most types of somatic cells, stem cells also hold tremendous promise for regenerative medicine and drug screening. However, a major challenge remains as to achieve fate control of stem cells in vitro with high specificity and yield. Recent exciting advances in nanotechnology and materials science have enabled versatile, robust, and large-scale stem cell engineering in vitro through developments of synthetic nanotopographical surfaces mimicking topological features of stem cell niches. In addition to generating new insights for stem cell biology and embryonic development, this effort opens up unlimited opportunities for innovations in stem cell-based applications. This review is therefore to provide a summary of recent progress along this research direction, with perspectives focusing on emerging methods for generating nanotopographical surfaces and their applications in stem cell research. Furthermore, we provide a review of classical as well as emerging cellular mechano-sensing and -transduction mechanisms underlying stem cell nanotopography sensitivity and also give some hypotheses in regard to how a multitude of signaling events in cellular mechanotransduction may converge and be integrated into core pathways controlling stem cell fate in response to extracellular nanotopography. (C) 2014 Elsevier Ltd. All rights reserved.
机译:在成体生物体的胚胎发生以及组织维护和修复过程中,无数的干细胞受到周围富含细胞/器官特异性纳米尺度地形学线索的细胞外基质(ECM)的调节,以采取不同的命运和功能。由于干细胞具有自我更新和分化为大多数类型的体细胞的能力,因此它们在再生医学和药物筛选方面也具有广阔的前景。但是,主要挑战仍然是如何以高特异性和高产量在体外实现对干细胞的命运控制。纳米技术和材料科学方面的最新激动人心的进展已通过模拟模仿干细胞生态位拓扑特征的合成纳米形貌表面,实现了体外多功能,强大且大规模的干细胞工程。除了为干细胞生物学和胚胎发育产生新见解之外,这项工作还为基于干细胞的应用创新提供了无限的机会。因此,本综述旨在总结该研究方向的最新进展,并将观点集中在生成纳米形貌表面的新兴方法及其在干细胞研究中的应用。此外,我们对干细胞纳米形貌敏感性背后的经典以及新兴的细胞机械感测和转导机制进行了综述,并就细胞机械转导中的多种信号事件如何收敛并整合到核心途径中给出了一些假设控制干细胞命运对细胞外纳米形貌的反应。 (C)2014 Elsevier Ltd.保留所有权利。

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