Dissolvable 3D printed PVA moulds for melt electrowriting tubular scaffolds with patient-specific geometry
Brooks-Richards, Trent, Paxton, Naomi, Allenby, Mark, & Woodruff, Mia (2022) Dissolvable 3D printed PVA moulds for melt electrowriting tubular scaffolds with patient-specific geometry. Materials and Design, 215, Article number: 110466.
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Description
Melt electrowriting (MEW) is an additive manufacturing technique capable of fabricating microfibre thermoplastic scaffolds that is growing in popularity for tissue engineering applications. MEW is able to produce micron-scale biocompatible constructs through electrodynamic jet deposition with a high level of control over fibre deposition. By depositing MEW fibres on a rotating cylindrical collector (mandrel), tubular constructs can be fabricated to mimic cylindrical anatomical tissues such as blood vessels. This proof-of-concept study leveraged the water solubility of polyvinyl alcohol (PVA) moulds to support tubular MEW scaffold fabrication in complex and patient-specific geometries. The dissolution rate of 3D printed PVA moulds was measured in water under constant stirring for 2 h. MEW scaffolds were printed on then removed from either PVA or non-dissolvable PLA moulds, and the preservation of the MEW scaffold morphology was assessed. The non-dissolvable PLA moulds significantly damaged the MEW scaffolds while the PVA dissolvable moulds enabled the preservation the of scaffold geometry and could be separated from the mould with ease. This study demonstrated the capability for MEW to be leveraged as a technique for producing anatomically relevant tubular structures.
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| ID Code: | 228424 | ||||||||
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| Item Type: | Contribution to Journal (Journal Article) | ||||||||
| Refereed: | Yes | ||||||||
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| Additional Information: | Acknowledgements: The authors are grateful to Jiongyu (Edward) Ren for providing technical assistance with micro-CT scanning. TL Brooks-Richards acknowledges support from the Australian Government in the form of a Research Training Program Stipend. NC Paxton is funded by an Advance Queensland Industry Research Fellowship (AQIRF2020). MC Allenby is funded by an Advance Queensland Industry Research Fellowship (AQIRF1312018) and the QUT IHBI ECR Scheme. | ||||||||
| Measurements or Duration: | 10 pages | ||||||||
| DOI: | 10.1016/j.matdes.2022.110466 | ||||||||
| ISSN: | 0264-1275 | ||||||||
| Pure ID: | 105880895 | ||||||||
| Divisions: | Current > Research Centres > Centre for Biomedical Technologies Current > QUT Faculties and Divisions > Faculty of Engineering Current > Schools > School of Mechanical, Medical & Process Engineering |
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| Copyright Owner: | 2022 The Authors | ||||||||
| Copyright Statement: | This work is covered by copyright. Unless the document is being made available under a Creative Commons Licence, you must assume that re-use is limited to personal use and that permission from the copyright owner must be obtained for all other uses. If the document is available under a Creative Commons License (or other specified license) then refer to the Licence for details of permitted re-use. It is a condition of access that users recognise and abide by the legal requirements associated with these rights. If you believe that this work infringes copyright please provide details by email to qut.copyright@qut.edu.au | ||||||||
| Deposited On: | 21 Feb 2022 10:32 | ||||||||
| Last Modified: | 14 Aug 2026 08:53 |
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