生物陶瓷
材料科学
制作
再生(生物学)
3D打印
骨组织
芯(光纤)
壳体(结构)
生物医学工程
过程(计算)
复合材料
纳米技术
工程类
病理
替代医学
操作系统
细胞生物学
生物
医学
计算机科学
作者
Naren Raja,Hui‐suk Yun
摘要
, during and after 3D printing, in order to obtain a stable 3D core/shell structure and high cell viability. The whole process was carried out under conditions (neutral pH and a temperature between room temperature and 37 °C) that were gentle to the cells, so the cells incorporated into the shell remained alive throughout the 3D scaffold for the entire culture period (35 days). The core/shell structured scaffold significantly enhanced the mechanical properties when compared with a hydrogel that uses a typical cell-printing process or with a ceramic scaffold, due to the co-operative effect of each material. The compressive strength of the CDHA/alginate scaffolds in the wet state was 3.2 MPa, whereas the compressive strength of alginate could not be determined in the wet state. The 3D structural morphology of CDHA/alginate scaffolds was well retained, even after a compression test, and showed less deformation because the CDHA ceramic-core was encapsulated within the elastic alginate. The process developed in this study suggests a new cell printing model that has excellent potential for application in the field of bone tissue regeneration.
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