Department of Physics and Surrey Materials Institute, University of Surrey , Guildford, Surrey GU2 7XH, United Kingdom.
ACS Appl Mater Interfaces. 2014 Feb 26;6(4):2598-603. doi: 10.1021/am405097w. Epub 2014 Feb 6.
Here we show an industrially scalable and inexpensive method of fabricating entirely synthetic, non-xenogeneic carbon nanotube-based scaffolds by vacuum filtration for the culture of human embryonic stem cells. We show that controlled exposure of carbon nanotubes to sonication and the amount of energy delivered to the dispersion directly impacts the surface properties, allowing for control over the nanotopography of the resulting carbon nanotube films, which in turn has demonstrable effects upon in vitro human embryonic stem cells cultures. By altering the nanotube processing conditions before film fabrication, it is possible to influence cell adherence, proliferation and colony morphology. Such a tunable surface with capabilities of influencing stem cell behaviors, combined with the ability to slow or speed population doubling times, will provide crucial solutions for achieving applications envisioned by stem cell biologists to assist future industrial and clinical implementation of human embryonic stem cells.
在这里,我们展示了一种工业上可扩展且经济实惠的方法,通过真空过滤制造完全合成的、非异种的基于碳纳米管的支架,用于培养人胚胎干细胞。我们表明,通过控制碳纳米管对超声处理的暴露以及传递给分散体的能量的量,可以直接影响表面特性,从而可以控制所得碳纳米管膜的纳米形貌,这反过来又对体外人胚胎干细胞培养有明显的影响。通过在薄膜制造之前改变碳纳米管的处理条件,有可能影响细胞的黏附、增殖和集落形态。这种具有影响干细胞行为能力的可调表面,结合控制细胞倍增时间的快慢的能力,将为实现干细胞生物学家所设想的应用提供关键解决方案,以协助未来人胚胎干细胞的工业和临床应用。