Three‐dimensional printing of porous ceramic scaffolds for bone tissue engineering
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- 24 June 2005
- journal article
- research article
- Published by Wiley in Journal of Biomedical Materials Research Part B: Applied Biomaterials
- Vol. 74B (2) , 782-788
- https://doi.org/10.1002/jbm.b.30291
Abstract
This article reports a new process chain for custom-made three-dimensional (3D) porous ceramic scaffolds for bone replacement with fully interconnected channel network for the repair of osseous defects from trauma or disease. Rapid prototyping and especially 3D printing is well suited to generate complex-shaped porous ceramic matrices directly from powder materials. Anatomical information obtained from a patient can be used to design the implant for a target defect. In the 3D printing technique, a box filled with ceramic powder is printed with a polymer-based binder solution layer by layer. Powder is bonded in wetted regions. Unglued powder can be removed and a ceramic green body remains. We use a modified hydroxyapatite (HA) powder for the fabrication of 3D printed scaffolds due to the safety of HA as biocompatible implantable material and efficacy for bone regeneration. The printed ceramic green bodies are consolidated at a temperature of 1250°C in a high temperature furnace in ambient air. The polymeric binder is pyrolysed during sintering. The resulting scaffolds can be used in tissue engineering of bone implants using patient-derived cells that are seeded onto the scaffolds.This article describes the process chain, beginning from data preparation to 3D printing tests and finally sintering of the scaffold. Prototypes were successfully manufactured and characterized. It was demonstrated that it is possible to manufacture parts with inner channels with a dimension down to 450 μm and wall structures with a thickness down to 330 μm. The mechanical strength of dense test parts is up to 22 MPa. © 2005 Wiley Periodicals, Inc. J Biomed Mater Res Part B: Appl Biomater, 2005Keywords
This publication has 17 references indexed in Scilit:
- Engineered cellular response to scaffold architecture in a rabbit trephine defectJournal of Biomedical Materials Research Part A, 2003
- Performance of degradable composite bone repair products made via three‐dimensional fabrication techniquesJournal of Biomedical Materials Research Part A, 2003
- Use of stereolithography to manufacture critical‐sized 3D biodegradable scaffolds for bone ingrowthJournal of Biomedical Materials Research Part B: Applied Biomaterials, 2002
- Scaffold development using 3D printing with a starch-based polymerMaterials Science and Engineering: C, 2002
- Fabrication of 3D chitosan–hydroxyapatite scaffolds using a robotic dispensing systemPublished by Elsevier ,2002
- The Design of Scaffolds for Use in Tissue Engineering. Part II. Rapid Prototyping TechniquesTissue Engineering, 2002
- Mechanical properties and cell cultural response of polycaprolactone scaffolds designed and fabricated via fused deposition modelingJournal of Biomedical Materials Research, 2001
- Hydroxyapatite implants with designed internal architectureJournal of Materials Science: Materials in Medicine, 2001
- Desktop manufacturing of complex objects, prototypes and biomedical scaffolds by means of computer-assisted design combined with computer-guided 3D plotting of polymers and reactive oligomersMacromolecular Materials and Engineering, 2000
- Integration of surface modification and 3D fabrication techniques to prepare patterned poly(L-lactide) substrates allowing regionally selective cell adhesionJournal of Biomaterials Science, Polymer Edition, 1998