Department of Biomedical Engineering, Faculty of Engineering, Karabük University, 78050 Karabük, Turkey.
Biomed Mater. 2019 Aug 23;14(5):055010. doi: 10.1088/1748-605X/ab3714.
Clinoptilolite (Cpt)-nanohydroxyapatite (HA) (Cpt-HA) scaffolds were fabricated as a potential material for loadbearing orthopaedic applications. Cpt-HA materials were successfully synthesized by using microwave assisted reflux method followed by the fabrication of three-dimensional (3D) porous scaffold via thermal decomposition process using polyethylene glycol (PEG)/ polyvinyl alcohol (PVA) as porogens. The scaffold materials were characterized using x-ray diffraction, Fourier transform Infra-red, Scanning electron microscopy and Energy dispersive spectroscopy techniques. Incorporation of Cpt in HA scaffold significantly increased the compressive strength and surface hardness while scaffolds retained an interconnected porous structure with 64% porosity. Human dental pulp stem cells (DPSCs) were isolated from the third molar and used as pluripotent-like cell model to evaluate the biological properties of Cpt-HA scaffolds. Highest cellular attachment and proliferation were observed for DPSCs seeded on 2.0 g Cpt-HA scaffolds compare to pure HA. Similarly, significantly higher ALP activity of cells was observed on Cpt-HA scaffolds compared to pure HA. The enhanced proliferation and osteogenic response of the DPSCs cultured on Cpt-HA scaffolds suggest that the fabricated scaffolds can be used in bone tissue engineering. In this work, we have successfully shown that the interconnected porous Cpt-HA scaffolds have superior mechanical biological properties compared to pure HA scaffold.
沸石(Cpt)-纳米羟基磷灰石(HA)(Cpt-HA)支架被制备为用于承重骨科应用的潜在材料。通过微波辅助回流法成功合成了 Cpt-HA 材料,然后通过使用聚乙二醇(PEG)/聚乙烯醇(PVA)作为造孔剂的热分解过程制备了三维(3D)多孔支架。使用 X 射线衍射、傅里叶变换红外、扫描电子显微镜和能量色散光谱技术对支架材料进行了表征。Cpt 的掺入显著提高了 HA 支架的抗压强度和表面硬度,同时支架保留了具有 64%孔隙率的互连多孔结构。从第三磨牙中分离出人牙髓干细胞(DPSCs),并用作多能样细胞模型来评估 Cpt-HA 支架的生物学特性。与纯 HA 相比,在 2.0 g Cpt-HA 支架上接种的 DPSCs 观察到最高的细胞附着和增殖。同样,与纯 HA 相比,在 Cpt-HA 支架上观察到细胞的 ALP 活性显著更高。在 Cpt-HA 支架上培养的 DPSCs 的增殖和成骨反应增强表明,所制备的支架可用于骨组织工程。在这项工作中,我们已经成功地表明,与纯 HA 支架相比,互连多孔 Cpt-HA 支架具有优异的机械生物学性能。