评估由三维打印聚己内酯/β-磷酸三钙(3D PCL/β-TCP)获得的具有不同结构孔径的人工骨材料。

Zhao Qianjuan, Shan Rong, Liu Shengxi, Liu Xuanhao, Liu Bin, Song Fuxiang
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引用次数: 0

摘要

由于外伤和肿瘤等因素造成的骨缺损是一项巨大的挑战,在这种情况下,人工骨成为治疗骨缺损的替代选择。然而,孔径差异对调节新骨生成的影响仍不明确。利用直接三维打印技术,成功制备了具有不同结构孔径(1.8、2.0、2.3、2.5 和 2.8 毫米)的定制三维 PCL/β-TCP 人工骨,简称三维 PCL/β-TCP。三维 PCL/β-TCP 呈现出与天然骨相似的三维多孔结构形态,并具有出色的力学性能。计算流体动力学分析表明,当结构孔径从 1.8 毫米增大到 2.8 毫米时,介质通过时的速度差(从 4.64E-05 m/s 到 7.23E-06 m/s)和减压(从 7.17E-02 Pa 到 2.25E-02 Pa)均有所减小。体外仿生矿化实验证实,三维 PCL/β-TCP 人工骨可在 4 周内诱导钙磷复合物的生成。此外,CCK-8 和 Calcein AM 活细胞染色实验表明,不同结构孔径的三维 PCL/β-TCP 人工骨具有良好的细胞相容性,可促进 MC3T3-E1 细胞增殖和粘附。大鼠体内实验进一步表明,不同结构孔径的三维 PCL/β-TCP 人工骨促进了新骨的形成,其中 2.5 毫米组的效果最为显著。总之,不同结构孔径的三维 PCL/β-TCP 人工骨能促进新骨形成,建议将 2.5 毫米组用于骨缺损修复。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Assessment of artificial bone materials with different structural pore sizes obtained from 3D printed polycaprolactone/β-tricalcium phosphate (3D PCL/β-TCP).

Artificial bone is the alternative candidate for the bone defect treatment under the circumstance that there exits enormous challenge to remedy the bone defect caused by attributes like trauma and tumors. However, the impact of pore size discrepancy for regulating new bone generation is still ambiguous. Using direct 3D printing technology, customized 3D polycaprolactone/β-tricalcium phosphate (PCL/β-TCP) artificial bones with different structural pore sizes (1.8, 2.0, 2.3, 2.5, and 2.8 mm) were successfully prepared, abbreviated as the 3D PCL/β-TCP. 3D PCL/β-TCP exhibited a 3D porous structure morphology similar to natural bone and possessed outstanding mechanical properties. Computational fluid dynamics analysis indicated that as the structural pore size increased from 1.8 to 2.8 mm, both velocity difference (from 4.64 × 10-5to 7.23 × 10-6m s-1) and depressurization (from 7.17 × 10-2to 2.25 × 10-2Pa) decreased as the medium passed through.In vitrobiomimetic mineralization experiments confirmed that 3D PCL/β-TCP artificial bones could induce calcium-phosphate complex generation within 4 weeks. Moreover, CCK-8 and Calcein AM live cell staining experiments demonstrated that 3D PCL/β-TCP artificial bones with different structural pore sizes exhibited advantageous cell compatibility, promoting MC3T3-E1 cell proliferation and adhesion.In vivoexperiments in rats further indicated that 3D PCL/β-TCP artificial bones with different structural pore sizes promoted new bone formation, with the 2.5 mm group showing the most significant effect. In conclusion, 3D PCL/β-TCP artificial bone with different structural pore sizes could promote new bone formation and 2.5 mm group was the recommended for the bone defect repair.

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