Zhang Qin, Nakamoto Tomoko, Chen Shangwu, Kawazoe Naoki, Lin Kaili, Chang Jiang, Chen Guoping
J Nanosci Nanotechnol. 2014 Apr;14(4):3221-7. doi: 10.1166/jnn.2014.8607.
Porous materials and scaffolds have wide applications in biomedical and biological fields. They can provide biological and physical cues to promote cell adhesion, proliferation, differentiation and extracellular matrix secretion to guide new tissue formation. Hybrid scaffolds of collagen and wollastonite nanowires with well controlled pore structures were prepared by using ice particulates as a porogen material. The hybrid scaffolds had interconnected large spherical pores with wollastonite nanowires embedded in the walls of the pores. The wollastonite nanowires reinforced the hybrid scaffolds and showed some stimulatory effects on cell functions. Human bone marrow-derived mesenchymal stem cells showed higher proliferation and osteogenic differentiation and expressed higher level of genes encoding angiogenesis-related genes in the hybrid scaffolds than did in the collagen scaf-. fold. The results suggest the hybrid scaffolds could facilitate osteogenic differentiation and induce angiogenesis and will be useful for bone tissue engineering.
多孔材料和支架在生物医学和生物学领域有着广泛的应用。它们可以提供生物和物理信号,以促进细胞黏附、增殖、分化以及细胞外基质分泌,从而引导新组织的形成。通过使用冰颗粒作为致孔剂材料,制备了具有良好可控孔结构的胶原蛋白和硅灰石纳米线混合支架。这种混合支架具有相互连通的大球形孔,硅灰石纳米线嵌入孔壁中。硅灰石纳米线增强了混合支架,并对细胞功能表现出一些刺激作用。与胶原蛋白支架相比,人骨髓间充质干细胞在混合支架中表现出更高的增殖和成骨分化能力,并且编码血管生成相关基因的基因表达水平更高。结果表明,这种混合支架可以促进成骨分化并诱导血管生成,将对骨组织工程有用。