Laboratory of Stem Cell Bioengineering (LSCB) and Institute of Bioengineering (IBI), Ecole Polytechnique Fédérale de Lausanne (EPFL), Lausanne, Switzerland.
Biotechniques. 2010 Apr;48(4):ix-xxii. doi: 10.2144/000113401.
The potential of stem cells in clinics and as a diagnostic tool is still largely unmet, partially due to a lack of in vitro models that efficiently mimic the in vivo stem cell microenvironment-or niche-and thus would allow reproducible propagation of stem cells or their controlled differentiation in vitro. The current methodological challenges in studying and manipulating stem cells have spurred intense development and application of microfabrication and micropatterning technologies in stem cell biology. These approaches can be readily used to dissect the complex molecular interplay of stem cells and their niche and study single-cell behavior in high-throughput. Increased merging of microfabrication with advanced biomaterials technologies may ultimately result in functional artificial niches capable of recapitulating extrinsic stem cell regulation in vitro and on a single-cell level.
干细胞在临床上和作为诊断工具的潜力在很大程度上尚未得到满足,部分原因是缺乏能够有效地模拟体内干细胞微环境(即龛位)的体外模型,从而无法在体外实现干细胞的可重复增殖或其受控分化。目前在研究和操纵干细胞方面面临的方法学挑战,刺激了微制造和微图案化技术在干细胞生物学中的强烈发展和应用。这些方法可以方便地用于剖析干细胞及其龛位的复杂分子相互作用,并在高通量水平上研究单细胞行为。将微制造与先进的生物材料技术更紧密地结合,最终可能会产生功能性的人工龛位,从而能够在体外和单细胞水平上再现外在的干细胞调控。