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Melt Electrowriting of Complex 3D Anatomically Relevant Scaffolds

The manufacture of fibrous scaffolds with tailored micrometric features and anatomically relevant three-dimensional (3D) geometries for soft tissue engineering applications remains a great challenge. Melt electrowriting (MEW) is an advanced additive manufacturing technique capable of depositing pred...

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Autores principales: Saidy, Navid T., Shabab, Tara, Bas, Onur, Rojas-González, Diana M., Menne, Matthias, Henry, Tim, Hutmacher, Dietmar W., Mela, Petra, De-Juan-Pardo, Elena M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7396698/
https://www.ncbi.nlm.nih.gov/pubmed/32850700
http://dx.doi.org/10.3389/fbioe.2020.00793
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author Saidy, Navid T.
Shabab, Tara
Bas, Onur
Rojas-González, Diana M.
Menne, Matthias
Henry, Tim
Hutmacher, Dietmar W.
Mela, Petra
De-Juan-Pardo, Elena M.
author_facet Saidy, Navid T.
Shabab, Tara
Bas, Onur
Rojas-González, Diana M.
Menne, Matthias
Henry, Tim
Hutmacher, Dietmar W.
Mela, Petra
De-Juan-Pardo, Elena M.
author_sort Saidy, Navid T.
collection PubMed
description The manufacture of fibrous scaffolds with tailored micrometric features and anatomically relevant three-dimensional (3D) geometries for soft tissue engineering applications remains a great challenge. Melt electrowriting (MEW) is an advanced additive manufacturing technique capable of depositing predefined micrometric fibers. However, it has been so far inherently limited to simple planar and tubular scaffold geometries because of the need to avoid polymer jet instabilities. In this work, we surmount the technical boundaries of MEW to enable the manufacture of complex fibrous scaffolds with simultaneous controlled micrometric and patient-specific anatomic features. As an example of complex geometry, aortic root scaffolds featuring the sinuses of Valsalva were realized. By modeling the electric field strength associated with the MEW process for these constructs, we found that the combination of a conductive core mandrel with a non-conductive 3D printed model reproducing the complex geometry minimized the variability of the electric field thus enabling the accurate deposition of fibers. We validated these findings experimentally and leveraged the micrometric resolution of MEW to fabricate unprecedented fibrous aortic root scaffolds with anatomically relevant shapes and biomimetic microstructures and mechanical properties. Furthermore, we demonstrated the fabrication of patient-specific aortic root constructs from the 3D reconstruction of computed tomography clinical data.
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spelling pubmed-73966982020-08-25 Melt Electrowriting of Complex 3D Anatomically Relevant Scaffolds Saidy, Navid T. Shabab, Tara Bas, Onur Rojas-González, Diana M. Menne, Matthias Henry, Tim Hutmacher, Dietmar W. Mela, Petra De-Juan-Pardo, Elena M. Front Bioeng Biotechnol Bioengineering and Biotechnology The manufacture of fibrous scaffolds with tailored micrometric features and anatomically relevant three-dimensional (3D) geometries for soft tissue engineering applications remains a great challenge. Melt electrowriting (MEW) is an advanced additive manufacturing technique capable of depositing predefined micrometric fibers. However, it has been so far inherently limited to simple planar and tubular scaffold geometries because of the need to avoid polymer jet instabilities. In this work, we surmount the technical boundaries of MEW to enable the manufacture of complex fibrous scaffolds with simultaneous controlled micrometric and patient-specific anatomic features. As an example of complex geometry, aortic root scaffolds featuring the sinuses of Valsalva were realized. By modeling the electric field strength associated with the MEW process for these constructs, we found that the combination of a conductive core mandrel with a non-conductive 3D printed model reproducing the complex geometry minimized the variability of the electric field thus enabling the accurate deposition of fibers. We validated these findings experimentally and leveraged the micrometric resolution of MEW to fabricate unprecedented fibrous aortic root scaffolds with anatomically relevant shapes and biomimetic microstructures and mechanical properties. Furthermore, we demonstrated the fabrication of patient-specific aortic root constructs from the 3D reconstruction of computed tomography clinical data. Frontiers Media S.A. 2020-07-24 /pmc/articles/PMC7396698/ /pubmed/32850700 http://dx.doi.org/10.3389/fbioe.2020.00793 Text en Copyright © 2020 Saidy, Shabab, Bas, Rojas-González, Menne, Henry, Hutmacher, Mela and De-Juan-Pardo. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Bioengineering and Biotechnology
Saidy, Navid T.
Shabab, Tara
Bas, Onur
Rojas-González, Diana M.
Menne, Matthias
Henry, Tim
Hutmacher, Dietmar W.
Mela, Petra
De-Juan-Pardo, Elena M.
Melt Electrowriting of Complex 3D Anatomically Relevant Scaffolds
title Melt Electrowriting of Complex 3D Anatomically Relevant Scaffolds
title_full Melt Electrowriting of Complex 3D Anatomically Relevant Scaffolds
title_fullStr Melt Electrowriting of Complex 3D Anatomically Relevant Scaffolds
title_full_unstemmed Melt Electrowriting of Complex 3D Anatomically Relevant Scaffolds
title_short Melt Electrowriting of Complex 3D Anatomically Relevant Scaffolds
title_sort melt electrowriting of complex 3d anatomically relevant scaffolds
topic Bioengineering and Biotechnology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7396698/
https://www.ncbi.nlm.nih.gov/pubmed/32850700
http://dx.doi.org/10.3389/fbioe.2020.00793
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