Emadi Hosein, Baghani Mostafa, Masoudi Rad Maryam, Hoomehr Bahareh, Baniassadi Majid, Lotfian Saeid
School of Mechanical Engineering, College of Engineering, University of Tehran, Tehran 14176-14411, Iran.
Department of Chemical Engineering, Isfahan University of Technology, Isfahan 84156-83111, Iran.
Polymers (Basel). 2024 May 13;16(10):1389. doi: 10.3390/polym16101389.
There is an essential clinical need to develop rapid process scaffolds to repair bone defects. The current research presented the development of calcium zirconium silicate/polycaprolactone for bone tissue engineering utilising melt extrusion-based 3D printing. Calcium zirconium silicate (CZS) nanoparticles were added to polycaprolactone (PCL) porous scaffolds to enhance their biological and mechanical properties, while the resulting properties were studied extensively. No significant difference was found in the melting point of the samples, while the crystallisation temperature points of the samples containing bioceramic increased from 36.1 to 40.2 °C. Thermal degradation commenced around 350 °C for all materials. According to our results, increasing the CZS content from 0 to 40 wt.% (PC40) in porous scaffolds (porosity about 55-62%) improved the compressive strength from 2.8 to 10.9 MPa. Furthermore, apatite formation ability in SBF solution increased significantly by enhancing the CZS percentage. According to MTT test results, the viability of MG63 cells improved remarkably (~29%) in PC40 compared to pure PCL. These findings suggest that a 3D-printed PCL/CZS composite scaffold can be fabricated successfully and shows great potential as an implantable material for bone tissue engineering applications.
开发快速成型支架来修复骨缺损具有至关重要的临床需求。当前的研究展示了利用基于熔融挤出的3D打印技术制备用于骨组织工程的硅酸锆钙/聚己内酯。将硅酸锆钙(CZS)纳米颗粒添加到聚己内酯(PCL)多孔支架中以增强其生物学和力学性能,并对所得性能进行了广泛研究。样品的熔点未发现显著差异,而含有生物陶瓷的样品的结晶温度点从36.1℃升高到40.2℃。所有材料的热降解均在约350℃开始。根据我们的结果,在多孔支架(孔隙率约为55 - 62%)中将CZS含量从0 wt.%增加到40 wt.%(PC40),抗压强度从2.8 MPa提高到10.9 MPa。此外,通过提高CZS百分比,在模拟体液(SBF)溶液中的磷灰石形成能力显著增加。根据MTT测试结果,与纯PCL相比,PC40中MG63细胞的活力显著提高(约29%)。这些发现表明,3D打印的PCL/CZS复合支架能够成功制备,并作为骨组织工程应用的可植入材料显示出巨大潜力。