Faculty of Materials Science and Engineering, Warsaw University of Technology, Woloska 141, 02-507 Warsaw, Poland.
Faculty of Materials Science and Engineering, Warsaw University of Technology, Woloska 141, 02-507 Warsaw, Poland; Central Institute for Labour Protection - National Research Institute, Czerniakowska 16, 00-701 Warsaw, Poland.
Mater Sci Eng C Mater Biol Appl. 2019 Jan 1;94:516-523. doi: 10.1016/j.msec.2018.09.062. Epub 2018 Oct 1.
Bioactive glass-based scaffolds are commonly used in bone tissue engineering due to their biocompatibility, mechanical strength and adequate porous structure. However, their hydrophobicity and brittleness limits their practical application. In this study, to improve nanomechanical properties of such scaffolds, pure bioactive hybrid glass and two bioactive hybrid glass-polymer coated composites were fabricated. A complementary micro and nanoscale characterization techniques (SEM, AFM, μCT, FTIR, compressive test, goniometer) were implemented for detailed description of architecture and physicochemical properties of hybrid bioactive glass-based scaffolds with emphasis on nano-mechanics. The final step was in-vitro evaluation of three dimensional macroporous structures. Our findings show that after polymer addition, architecture, topography and surface properties of the scaffolds were changed and promoted favoured behaviour of the cells.
基于生物活性玻璃的支架由于其生物相容性、机械强度和适当的多孔结构,常用于骨组织工程。然而,其疏水性和脆性限制了它们的实际应用。在这项研究中,为了提高这些支架的纳米力学性能,制备了纯生物活性杂化玻璃和两种生物活性杂化玻璃-聚合物涂层复合材料。采用互补的微观和纳米尺度表征技术(SEM、AFM、μCT、FTIR、压缩试验、测角器)对具有纳米力学特性的杂化生物活性玻璃基支架的结构和理化性能进行详细描述。最后一步是对三维大孔结构进行体外评估。我们的研究结果表明,加入聚合物后,支架的结构、形貌和表面性能发生了变化,并促进了细胞的有利行为。