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Biofabrication of a shape-stable auricular structure for the reconstruction of ear deformities

Bioengineering of the human auricle remains a significant challenge, where the complex and unique shape, the generation of high-quality neocartilage, and shape preservation are key factors. Future regenerative medicine–based approaches for auricular cartilage reconstruction will benefit from a smart...

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Autores principales: Otto, I.A., Capendale, P.E., Garcia, J.P., de Ruijter, M., van Doremalen, R.F.M., Castilho, M., Lawson, T., Grinstaff, M.W., Breugem, C.C., Kon, M., Levato, R., Malda, J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7903133/
https://www.ncbi.nlm.nih.gov/pubmed/33665603
http://dx.doi.org/10.1016/j.mtbio.2021.100094
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author Otto, I.A.
Capendale, P.E.
Garcia, J.P.
de Ruijter, M.
van Doremalen, R.F.M.
Castilho, M.
Lawson, T.
Grinstaff, M.W.
Breugem, C.C.
Kon, M.
Levato, R.
Malda, J.
author_facet Otto, I.A.
Capendale, P.E.
Garcia, J.P.
de Ruijter, M.
van Doremalen, R.F.M.
Castilho, M.
Lawson, T.
Grinstaff, M.W.
Breugem, C.C.
Kon, M.
Levato, R.
Malda, J.
author_sort Otto, I.A.
collection PubMed
description Bioengineering of the human auricle remains a significant challenge, where the complex and unique shape, the generation of high-quality neocartilage, and shape preservation are key factors. Future regenerative medicine–based approaches for auricular cartilage reconstruction will benefit from a smart combination of various strategies. Our approach to fabrication of an ear-shaped construct uses hybrid bioprinting techniques, a recently identified progenitor cell population, previously validated biomaterials, and a smart scaffold design. Specifically, we generated a 3D-printed polycaprolactone (PCL) scaffold via fused deposition modeling, photocrosslinked a human auricular cartilage progenitor cell–laden gelatin methacryloyl (gelMA) hydrogel within the scaffold, and cultured the bioengineered structure in vitro in chondrogenic media for 30 days. Our results show that the fabrication process maintains the viability and chondrogenic phenotype of the cells, that the compressive properties of the combined PCL and gelMA hybrid auricular constructs are similar to native auricular cartilage, and that biofabricated hybrid auricular structures exhibit excellent shape fidelity compared with the 3D digital model along with deposition of cartilage-like matrix in both peripheral and central areas of the auricular structure. Our strategy affords an anatomically enhanced auricular structure with appropriate mechanical properties, ensures adequate preservation of the auricular shape during a dynamic in vitro culture period, and enables chondrogenically potent progenitor cells to produce abundant cartilage-like matrix throughout the auricular construct. The combination of smart scaffold design with 3D bioprinting and cartilage progenitor cells holds promise for the development of clinically translatable regenerative medicine strategies for auricular reconstruction.
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spelling pubmed-79031332021-03-03 Biofabrication of a shape-stable auricular structure for the reconstruction of ear deformities Otto, I.A. Capendale, P.E. Garcia, J.P. de Ruijter, M. van Doremalen, R.F.M. Castilho, M. Lawson, T. Grinstaff, M.W. Breugem, C.C. Kon, M. Levato, R. Malda, J. Mater Today Bio Full Length Article Bioengineering of the human auricle remains a significant challenge, where the complex and unique shape, the generation of high-quality neocartilage, and shape preservation are key factors. Future regenerative medicine–based approaches for auricular cartilage reconstruction will benefit from a smart combination of various strategies. Our approach to fabrication of an ear-shaped construct uses hybrid bioprinting techniques, a recently identified progenitor cell population, previously validated biomaterials, and a smart scaffold design. Specifically, we generated a 3D-printed polycaprolactone (PCL) scaffold via fused deposition modeling, photocrosslinked a human auricular cartilage progenitor cell–laden gelatin methacryloyl (gelMA) hydrogel within the scaffold, and cultured the bioengineered structure in vitro in chondrogenic media for 30 days. Our results show that the fabrication process maintains the viability and chondrogenic phenotype of the cells, that the compressive properties of the combined PCL and gelMA hybrid auricular constructs are similar to native auricular cartilage, and that biofabricated hybrid auricular structures exhibit excellent shape fidelity compared with the 3D digital model along with deposition of cartilage-like matrix in both peripheral and central areas of the auricular structure. Our strategy affords an anatomically enhanced auricular structure with appropriate mechanical properties, ensures adequate preservation of the auricular shape during a dynamic in vitro culture period, and enables chondrogenically potent progenitor cells to produce abundant cartilage-like matrix throughout the auricular construct. The combination of smart scaffold design with 3D bioprinting and cartilage progenitor cells holds promise for the development of clinically translatable regenerative medicine strategies for auricular reconstruction. Elsevier 2021-01-21 /pmc/articles/PMC7903133/ /pubmed/33665603 http://dx.doi.org/10.1016/j.mtbio.2021.100094 Text en © 2021 The Author(s) http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Full Length Article
Otto, I.A.
Capendale, P.E.
Garcia, J.P.
de Ruijter, M.
van Doremalen, R.F.M.
Castilho, M.
Lawson, T.
Grinstaff, M.W.
Breugem, C.C.
Kon, M.
Levato, R.
Malda, J.
Biofabrication of a shape-stable auricular structure for the reconstruction of ear deformities
title Biofabrication of a shape-stable auricular structure for the reconstruction of ear deformities
title_full Biofabrication of a shape-stable auricular structure for the reconstruction of ear deformities
title_fullStr Biofabrication of a shape-stable auricular structure for the reconstruction of ear deformities
title_full_unstemmed Biofabrication of a shape-stable auricular structure for the reconstruction of ear deformities
title_short Biofabrication of a shape-stable auricular structure for the reconstruction of ear deformities
title_sort biofabrication of a shape-stable auricular structure for the reconstruction of ear deformities
topic Full Length Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7903133/
https://www.ncbi.nlm.nih.gov/pubmed/33665603
http://dx.doi.org/10.1016/j.mtbio.2021.100094
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