Middle East Technical University, Department of Engineering Sciences, Ankara, Turkey.
University of Health Sciences Turkey, Department of Biomaterials, Istanbul, Turkey.
J Mech Behav Biomed Mater. 2022 Jan;125:104941. doi: 10.1016/j.jmbbm.2021.104941. Epub 2021 Nov 3.
Bioceramic/polymer composite systems have gained importance in treating hard tissue damages using bone tissue engineering (BTE). In this context, it was aimed to develop 3D porous composite PCL-PEG-PCL scaffolds containing different amounts of B, Sr and Mg multi-doped HA that can provide bone regeneration in the bone defect area and to investigate the effect of both the amount of inorganic phase and the porosity on the mechanical and the biological properties. B-Sr-Mg multi-doped HA and PCL-PEG-PCL copolymer were successfully synthesized. PCL-PEG-PCL composite scaffolds containing different amounts of hydroxyapatite (HA) (10% and 20 wt%) were produced with the desired porosity (50% and 60%) by compression-molding and particulate leaching method. The porosity of the scaffolds was determined between 47% and 59%. HA/PCL-PEG-PCL composite scaffolds were subjected to a 3-week degradation test and showed negligible (0.2-0.5%) degradation. The water uptake percentage of the composite scaffolds with 60% porosity was the highest among all groups. Presence of HA in the scaffolds improved the water adsorption and the mechanical properties. Compressive strength of the scaffolds was between 9.32 and 24.27 MPa and 20% 2Sr0.5BHA scaffolds were found to have the maximum compressive strength. Compressive strength of 50% porous samples was higher than that of 60% porous samples. In the relative cell viability (%) test, the highest viability was observed on the scaffolds with HA and 2Sr0.5BHA. The specific ALP activity level of the cells on the scaffolds containing 2Sr0.5BHA was significantly higher (2.6 times) than that of the control group. The amount of porosity did not make a significant difference in cellular response. It was concluded that PCL-PEG-PCL composite scaffolds with 2Sr0.5BHA have the potential to be used in BTE.
生物陶瓷/聚合物复合材料系统在利用骨组织工程治疗硬组织损伤方面具有重要意义。在这种情况下,旨在开发含有不同量 B、Sr 和 Mg 多掺杂 HA 的 3D 多孔复合 PCL-PEG-PCL 支架,以提供骨缺损区域的骨再生,并研究无机相的量和多孔性对机械性能和生物性能的影响。成功合成了 B-Sr-Mg 多掺杂 HA 和 PCL-PEG-PCL 共聚物。通过压缩成型和颗粒沥滤法,以所需的孔隙率(50%和 60%)生产了含有不同量羟基磷灰石(HA)(10%和 20 wt%)的 PCL-PEG-PCL 复合支架。支架的孔隙率在 47%至 59%之间。HA/PCL-PEG-PCL 复合支架进行了 3 周的降解试验,降解率可忽略不计(0.2-0.5%)。具有 60%孔隙率的复合支架的吸水率最高。支架中 HA 的存在提高了水吸附性和机械性能。支架的压缩强度在 9.32 至 24.27 MPa 之间,20% 2Sr0.5BHA 支架的压缩强度最大。50%多孔样品的压缩强度高于 60%多孔样品。在相对细胞活力(%)测试中,观察到 HA 和 2Sr0.5BHA 支架上的细胞活力最高。含有 2Sr0.5BHA 的支架上细胞的特定碱性磷酸酶(ALP)活性水平明显更高(2.6 倍)比对照组。多孔性的量对细胞反应没有显著影响。研究结果表明,具有 2Sr0.5BHA 的 PCL-PEG-PCL 复合支架具有在骨组织工程中应用的潜力。