Mei Ying, Goldberg Michael, Anderson Daniel
Department of Chemical Engineering, MIT, 77 Massachusetts Avenue, E25-342, Cambridge, MA 02139, United States.
Curr Opin Chem Biol. 2007 Aug;11(4):388-93. doi: 10.1016/j.cbpa.2007.07.006. Epub 2007 Aug 16.
It has become increasingly clear that both soluble factors, such as growth factors, and insoluble factors, including the surfaces on which cells grow, can have controlling effects on stem cell behavior and differentiation. While much progress has been made in biomaterial design and application, the rational design of biomaterial cues to direct stem cell behavior and differentiation remains challenging. Recent advances in automated, high-throughput methods for synthesizing and screening combinatorial biomaterial libraries and cellular microenvironments promise to accelerate the discovery of factors that control stem cell behavior. Specific examples include miniaturized, automated, combinatorial material synthesis and extracellular matrix screening methods as well microarrayed methods for creating local microenvironments of soluble factors, such as small molecules, siRNA, and other signaling molecules.
越来越明显的是,诸如生长因子等可溶性因子以及包括细胞生长表面在内的不可溶性因子,都可以对干细胞行为和分化产生控制作用。尽管在生物材料设计和应用方面已经取得了很大进展,但合理设计引导干细胞行为和分化的生物材料线索仍然具有挑战性。用于合成和筛选组合生物材料库及细胞微环境的自动化、高通量方法的最新进展,有望加速对控制干细胞行为的因子的发现。具体例子包括小型化、自动化的组合材料合成和细胞外基质筛选方法,以及用于创建诸如小分子、siRNA和其他信号分子等可溶性因子局部微环境的微阵列方法。