Department of Chemical and Metallurgical Engineering , Aalto University , Espoo , Finland.
Biomacromolecules. 2020 Feb 10;21(2):366-375. doi: 10.1021/acs.biomac.9b01272. Epub 2019 Nov 15.
Implants of bioresorbable materials combined with osteoconductive calcium phosphate ceramics show promising results to replace and repair damaged bone tissue. Here we present additive manufacturing of patient-specific porous scaffolds of poly(trimethylene carbonate) (PTMC) including high amounts of β-tricalcium phosphate (β-TCP). Tensile testing of composite networks showed that addition of β-tricalcium phosphate reinforces the composites significantly. Three-dimensional structures containing up to 60 wt % β-TCP could be built by stereolithography. By lowering the content to 51 wt %, manufacturing of a large-sized patient-specific prototype was possible at high resolution. Closer examination revealed that the created scaffolds contained more β-TCP on the surface of the builds. Stereolithography therefore provides a manufacturing technique where the bioactive agent is directly available for creating an enhanced microenvironment for cell growth. The biocompatibility and bioresorption of PTMC coupled with the osteoconductivity of β-TCP are an important candidate to consider in additive manufacturing of bone regeneration implants.
生物可吸收材料的植入物与骨诱导性磷酸钙陶瓷相结合,显示出有希望的结果,可以替代和修复受损的骨组织。在这里,我们介绍了聚三亚甲基碳酸酯(PTMC)的具有高含量β-磷酸三钙(β-TCP)的患者特定多孔支架的增材制造。复合材料网络的拉伸测试表明,添加β-磷酸三钙可显著增强复合材料。通过立体光刻技术可以构建高达 60wt%β-TCP 的三维结构。通过将含量降低至 51wt%,可以在高分辨率下制造大型患者特定原型。更仔细的检查表明,所创建的支架在构建体的表面上含有更多的β-TCP。因此,立体光刻术提供了一种制造技术,其中生物活性剂可直接用于为细胞生长创造增强的微环境。PTMC 的生物相容性和生物可吸收性以及β-TCP 的骨诱导性是考虑在骨再生植入物的增材制造中的重要候选材料。