Joint Graduate Program in Bioengineering, University of California, Berkeley and University of California, San Francisco, USA; Department of Bioengineering, University of California, Berkeley, USA.
Biomaterials. 2010 May;31(13):3536-42. doi: 10.1016/j.biomaterials.2010.01.062. Epub 2010 Feb 1.
Biodegradable nanofibers simulate the fibril structure of natural extracellular matrix, and provide a cell-friendly microenvironment for tissue regeneration. However, the effects of nanofiber organization and immobilized biochemical factors on cell infiltration into three-dimensional scaffolds are not well understood. For example, cell infiltration into an electrospun nanofibrous matrix is often limited due to relatively small pore size between the fibers. Here we showed that biophysical and biochemical modification of nanofibrous scaffolds facilitated endothelial cell infiltration in three-dimensional scaffolds in vitro and in vivo. Aligned nanofibers significantly enhanced cell infiltration into the nanofibrous matrices in vitro. In a full-thickness dermal wound model, the nanofiber scaffolds enhanced epidermal skin cell migration across the wound when compared to a control group without scaffold. Aligned nanofibers promoted the infiltration of endothelial cells into the scaffolds. Furthermore, heparin-coated nanofibers also increased cell infiltration significantly. These results shed light on the importance of biophysical and biochemical properties of nanofibers in the regulation of cell infiltration into three-dimensional scaffolds and tissue remodeling.
可生物降解的纳米纤维模拟天然细胞外基质的原纤维结构,为组织再生提供了细胞友好的微环境。然而,纳米纤维的组织和固定化生化因子对细胞渗透到三维支架中的影响还不是很清楚。例如,由于纤维之间的孔径相对较小,电纺纳米纤维基质中的细胞渗透通常受到限制。在这里,我们表明,纳米纤维支架的生物物理和生化修饰促进了体外和体内三维支架中内皮细胞的渗透。排列整齐的纳米纤维显著增强了细胞在体外对纳米纤维基质的渗透。在全厚皮肤创面模型中,与没有支架的对照组相比,纳米纤维支架促进了表皮皮肤细胞穿过创面的迁移。排列整齐的纳米纤维促进了内皮细胞渗透到支架中。此外,肝素涂覆的纳米纤维也显著增加了细胞的渗透。这些结果表明,纳米纤维的生物物理和生化特性在调节细胞渗透到三维支架和组织重塑中的重要性。