Innovations in craniofacial bone and periodontal tissue engineering – from electrospinning to converged biofabrication
Publication date
2022
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Article
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taverne
Abstract
From a materials perspective, the pillars for the development of clinically translatable scaffold-based strategies for craniomaxillofacial (CMF) bone and periodontal regeneration have included electrospinning and 3D printing (biofabrication) technologies. Here, we offer a detailed analysis of the latest innovations in 3D (bio)printing strategies for CMF bone and periodontal regeneration and provide future directions envisioning the development of advanced 3D architectures for successful clinical translation. First, the principles of electrospinning applied to the generation of biodegradable scaffolds are discussed. Next, we present on extrusion-based 3D printing technologies with a focus on creating scaffolds with improved regenerative capacity. In addition, we offer a critical appraisal on 3D (bio)printing and multitechnology convergence to enable the reconstruction of CMF bones and periodontal tissues. As a future outlook, we highlight future directions associated with the utilisation of complementary biomaterials and (bio)fabrication technologies for effective translation of personalised and functional scaffolds into the clinics.
Keywords
3D printing, Electrospinning, additive manufacturing, biofabrication, bioprinting, bone regeneration, craniomaxillofacial regeneration, extrusion printing, periodontal regeneration, Taverne, Mechanics of Materials, Mechanical Engineering, Metals and Alloys, Materials Chemistry
Citation
Aytac, Z, Dubey, N, Daghrery, A, Ferreira, J A, Araújo, I J D S, Castilho, M, Malda, J & Bottino, M C 2022, 'Innovations in craniofacial bone and periodontal tissue engineering – from electrospinning to converged biofabrication', International Materials Reviews, vol. 67, no. 4, pp. 347-384. https://doi.org/10.1080/09506608.2021.1946236