3D-printed scaffolds with synergistic effect of hollow-pipe structure and bioactive ions for vascularized bone regeneration
Autor: | Xun Ding, Chun Feng, Guanglong Li, Jiang Chang, Zhiyuan Zhang, Wenjie Zhang, Shaoyi Wang, Yuandong Dou, Guangzheng Yang, Xinquan Jiang, Chengtie Wu |
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Rok vydání: | 2017 |
Předmět: |
Male
3d printed Bone Regeneration Materials science Angiogenesis Biophysics Bioengineering 02 engineering and technology Bioceramic 010402 general chemistry 01 natural sciences Biomaterials Cell Movement Osteogenesis Human Umbilical Vein Endothelial Cells Animals Humans Bone regeneration Tissue Engineering Tissue Scaffolds Stem Cells Regeneration (biology) 021001 nanoscience & nanotechnology 0104 chemical sciences Endothelial stem cell Compressive strength Vascularized bone Mechanics of Materials Ceramics and Composites Rabbits 0210 nano-technology Biomedical engineering |
Zdroj: | Biomaterials. 135:85-95 |
ISSN: | 0142-9612 |
DOI: | 10.1016/j.biomaterials.2017.05.005 |
Popis: | Segmental bone regeneration remains a considerable challenge due to the associated low degree of vascularization. To solve this problem, in this study, hollow-pipe-packed silicate bioceramic (BRT-H) scaffolds are fabricated using a coaxial three-dimensional (3D) printing technique. Based on a modified core/shell printer nozzle and a modulated viscoelastic bioceramic paste, hollow struts with an external diameter of 1 mm and internal dimeter of 500 μm can be directly printed, yielding a compressive strength of the BRT-H scaffolds as high as 26 MPa. Apart from the effects on osteogenesis, the bioactive ions released from the BRT scaffolds can also facilitate angiogenesis via inducing endothelial cell migration. More importantly, the hollow pipes not only significantly promote the rapid infiltration of host blood vessels into the channels but also exhibit great advantages for the delivery of stem cells and growth factors to further enhance tissue regeneration. When used for the regeneration of rabbit radius segmental defects, radiological and histological findings indicate that the BRT-H scaffolds can enhance early vascularization and later bone regeneration and remodeling. Taken together, the hollow pipes and the ionic products from BRT-H scaffolds have a synergistic effect on enhancing vascularized bone regeneration. |
Databáze: | OpenAIRE |
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