Daskalakis Evangelos, Huang Boyang, Vyas Cian, Acar Anil Ahmet, Fallah Ali, Cooper Glen, Weightman Andrew, Koc Bahattin, Blunn Gordon, Bartolo Paulo
Department of Mechanical, Aerospace and Civil Engineering, University of Manchester, Manchester M13 9PL, UK.
Integrated Manufacturing Technologies Research and Application Center, Sabanci University, Tuzla, Istanbul 34956, Turkey.
Polymers (Basel). 2022 Jan 22;14(3):445. doi: 10.3390/polym14030445.
The design of scaffolds with optimal biomechanical properties for load-bearing applications is an important topic of research. Most studies have addressed this problem by focusing on the material composition and not on the coupled effect between the material composition and the scaffold architecture. Polymer-bioglass scaffolds have been investigated due to the excellent bioactivity properties of bioglass, which release ions that activate osteogenesis. However, material preparation methods usually require the use of organic solvents that induce surface modifications on the bioglass particles, compromising the adhesion with the polymeric material thus compromising mechanical properties. In this paper, we used a simple melt blending approach to produce polycaprolactone/bioglass pellets to construct scaffolds with pore size gradient. The results show that the addition of bioglass particles improved the mechanical properties of the scaffolds and, due to the selected architecture, all scaffolds presented mechanical properties in the cortical bone region. Moreover, the addition of bioglass indicated a positive long-term effect on the biological performance of the scaffolds. The pore size gradient also induced a cell spreading gradient.
设计具有最佳生物力学性能的用于承重应用的支架是一个重要的研究课题。大多数研究通过关注材料组成而非材料组成与支架结构之间的耦合效应来解决这个问题。由于生物玻璃具有优异的生物活性特性,能够释放激活成骨作用的离子,因此聚合物 - 生物玻璃支架已得到研究。然而,材料制备方法通常需要使用有机溶剂,这会对生物玻璃颗粒进行表面改性,从而损害与聚合物材料的粘附力,进而影响机械性能。在本文中,我们采用一种简单的熔融共混方法来制备聚己内酯/生物玻璃颗粒,以构建具有孔径梯度的支架。结果表明,添加生物玻璃颗粒改善了支架的机械性能,并且由于所选的结构,所有支架在皮质骨区域均呈现出机械性能。此外,添加生物玻璃对支架的生物学性能显示出积极的长期影响。孔径梯度还诱导了细胞铺展梯度。