Noh Da-Young, An Young-Hyeon, Jo In-Hwan, Koh Young-Hag, Kim Hyoun-Ee
School of Biomedical Engineering, Korea University, Seoul 136-701, South Korea.
School of Biomedical Engineering, Korea University, Seoul 136-701, South Korea; Department of Bio-convergence Engineering, Korea University, Seoul 136-701, South Korea.
Mater Sci Eng C Mater Biol Appl. 2016 May;62:678-85. doi: 10.1016/j.msec.2016.02.017. Epub 2016 Feb 4.
This study proposes an innovative way of synthesizing porous gelatin/silica bioglass composite microspheres with a nanofibrous structure using emulsion coupled with thermally induced phase separation (TIPS). In particular, a mixture of the solvent (water) and non-solvent (ethanol) was used to induce a unique phase separation of gelatin/silica mixtures (i.e. gelatin/silica hybrid-rich and liquid-rich phases) at -70 °C for the creation of a nanofibrous structure. All the composite microspheres synthesized with silica contents of 10 wt.%, 15 wt.%, and 20 wt.% had well-defined spherical shapes between 124 and 136 μm in size. In addition, they were comprised of nanofibrous gelatin/silica composite walls (several tens of nanometers in thickness), where the sol-gel derived silica bioglass phase was uniformly distributed throughout the gelatin matrix. The in vitro apatite-forming ability and biocompatibility of the nanofibrous gelatin/silica bioglass composite microspheres was significantly enhanced with an increase in silica content, demonstrating their great potential for the promotion of bone tissue regeneration.
本研究提出了一种创新方法,即使用乳液结合热致相分离(TIPS)来合成具有纳米纤维结构的多孔明胶/二氧化硅生物玻璃复合微球。具体而言,使用溶剂(水)和非溶剂(乙醇)的混合物在-70°C下诱导明胶/二氧化硅混合物发生独特的相分离(即富含明胶/二氧化硅杂化物相和富液相),以形成纳米纤维结构。所有合成的二氧化硅含量为10 wt.%、15 wt.%和20 wt.%的复合微球均具有尺寸在124至136μm之间的明确球形。此外,它们由纳米纤维明胶/二氧化硅复合壁组成(厚度为几十纳米),其中溶胶-凝胶法制备的二氧化硅生物玻璃相均匀分布在整个明胶基质中。随着二氧化硅含量的增加,纳米纤维明胶/二氧化硅生物玻璃复合微球的体外成磷灰石能力和生物相容性显著增强,表明它们在促进骨组织再生方面具有巨大潜力。