骨组织工程用硫酸钙基支架的开发、3D打印及表征

B. Aldemir, Serkan Dikici, O. Karaman, H. Oflaz
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引用次数: 2

摘要

骨组织移植在临床上广泛应用于大型骨缺损的治疗。在BT领域,需要开发具有合适的化学和力学性能的仿生骨组织支架用于临床应用。仿生骨组织支架是利用组织工程方法开发的模拟细胞外基质的骨移植材料。由于骨中羟基磷灰石含量高,陶瓷生物材料作为无机组织支架具有很大的应用潜力。文献表明,硫酸钙、β-磷酸三钙、羟基磷灰石等支持细胞附着的陶瓷基支架可被破骨细胞吸收,且陶瓷的降解速率与骨再生速率一致。在定制人工骨应用中,最关键的一步是缺陷匹配支架的制作。因此,基于粉末的三维打印以其设计独立性和内外结构的高度可控性等诸多优点而变得突出。采用CAD程序设计支架,用CaSO4M打印。5H2O(半水合硫酸钙)粉末采用3D打印技术。然后测试支架的力学性能和生物学性能,探讨CaSO4.0.5H2O基3D打印支架在组织工程中的应用潜力。细胞毒性实验结果表明,3D打印支架为细胞培养提供了良好的环境。因此,将3D打印技术应用于人工组织发育的可控支架生产具有重要的潜力。
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Development, 3D printing and characterization of calcium sulfate based scaffolds for bone tissue engineering
Clinic applications of bone tissue (BT) transplantation are used widely for treatment of large bone defects. In BT field, development of biomimetic bone tissue scaffolds which have appropriate chemical and mechanical properties for clinic applications is needed. Biomimetic bone tissue scaffolds should be used for bone grafts which are developed with tissue engineering approach to mimic extracellular matrix. Since bone have high percentage of hydroxyapatite, ceramic biomaterials have grand potential to be used as inorganic tissue scaffold. Literature shows that ceramic based scaffolds such as calcium sulphate, β-tricalcium phosphate and hydroxyapatite support cell attachment, can be resorbed by osteoclasts and also degradation rate of the ceramics are in accordance with bone regeneration rate. The most critical step is production of defect matching scaffold in on custom artificial bone applications. Therefore, powder based three dimensional (3D) printing become prominent because of the numerous advantages such as design independency and high controllability of inner and outer structure. Scaffolds were designed by using CAD programs and printed with CaSO4M.5H2O (calcium sulphate hemihydrate) powders by using 3D printing technology. Then mechanical and biological properties of the scaffolds were tested to investigate the usage potential of CaSO4.0.5H2O based 3D printed scaffolds in tissue engineering. Cytotoxicity results showed that 3D printed scaffolds provided a suitable environment for cell culture. As a result, usage of 3D printing technology in production of controllable scaffold production for artificial tissue development has an important potential.
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