Vetrone Fiorenzo, Variola Fabio, Tambasco de Oliveira Paulo, Zalzal Sylvia Francis, Yi Ji-Hyun, Sam Johannes, Bombonato-Prado Karina F, Sarkissian Andranik, Perepichka Dmitrii F, Wuest James D, Rosei Federico, Nanci Antonio
Universite de Montreal, Montreal, Quebec H3C 3J7, Canada.
Nano Lett. 2009 Feb;9(2):659-65. doi: 10.1021/nl803051f.
In the field of regenerative medicine, nanoscale physical cuing is clearly becoming a compelling determinant of cell behavior. Developing effective methods for making nanostructured surfaces with well-defined physicochemical properties is thus mandatory for the rational design of functional biomaterials. Here, we demonstrate the versatility of simple chemical oxidative patterning to create unique nanotopographical surfaces that influence the behavior of various cell types, modulate the expression of key determinants of cell activity, and offer the potential of harnessing the power of stem cells. These findings promise to lead to a new generation of improved metal implants with intelligent surfaces that can control biological response at the site of healing.
在再生医学领域,纳米级物理信号显然正成为细胞行为的一个关键决定因素。因此,开发具有明确物理化学性质的纳米结构表面的有效方法,对于功能性生物材料的合理设计而言是必不可少的。在此,我们展示了简单化学氧化图案化的多功能性,以创建独特的纳米拓扑表面,这些表面可影响各种细胞类型的行为,调节细胞活性关键决定因素的表达,并提供利用干细胞力量的潜力。这些发现有望带来新一代具有智能表面的改良金属植入物,能够在愈合部位控制生物反应。