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3D Bioprinting of Macroporous Materials Based on Entangled Hydrogel Microstrands

Hydrogels are excellent mimetics of mammalian extracellular matrices and have found widespread use in tissue engineering. Nanoporosity of monolithic bulk hydrogels, however, limits mass transport of key biomolecules. Microgels used in 3D bioprinting achieve both custom shape and vastly improved perm...

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Autores principales: Kessel, Benjamin, Lee, Mihyun, Bonato, Angela, Tinguely, Yann, Tosoratti, Enrico, Zenobi‐Wong, Marcy
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7509724/
https://www.ncbi.nlm.nih.gov/pubmed/32999847
http://dx.doi.org/10.1002/advs.202001419
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author Kessel, Benjamin
Lee, Mihyun
Bonato, Angela
Tinguely, Yann
Tosoratti, Enrico
Zenobi‐Wong, Marcy
author_facet Kessel, Benjamin
Lee, Mihyun
Bonato, Angela
Tinguely, Yann
Tosoratti, Enrico
Zenobi‐Wong, Marcy
author_sort Kessel, Benjamin
collection PubMed
description Hydrogels are excellent mimetics of mammalian extracellular matrices and have found widespread use in tissue engineering. Nanoporosity of monolithic bulk hydrogels, however, limits mass transport of key biomolecules. Microgels used in 3D bioprinting achieve both custom shape and vastly improved permissivity to an array of cell functions, however spherical‐microbead‐based bioinks are challenging to upscale, are inherently isotropic, and require secondary crosslinking. Here, bioinks based on high‐aspect‐ratio hydrogel microstrands are introduced to overcome these limitations. Pre‐crosslinked, bulk hydrogels are deconstructed into microstrands by sizing through a grid with apertures of 40–100 µm. The microstrands are moldable and form a porous, entangled structure, stable in aqueous medium without further crosslinking. Entangled microstrands have rheological properties characteristic of excellent bioinks for extrusion bioprinting. Furthermore, individual microstrands align during extrusion and facilitate the alignment of myotubes. Cells can be placed either inside or outside the hydrogel phase with >90% viability. Chondrocytes co‐printed with the microstrands deposit abundant extracellular matrix, resulting in a modulus increase from 2.7 to 780.2 kPa after 6 weeks of culture. This powerful approach to deconstruct bulk hydrogels into advanced bioinks is both scalable and versatile, representing an important toolbox for 3D bioprinting of architected hydrogels.
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spelling pubmed-75097242020-09-29 3D Bioprinting of Macroporous Materials Based on Entangled Hydrogel Microstrands Kessel, Benjamin Lee, Mihyun Bonato, Angela Tinguely, Yann Tosoratti, Enrico Zenobi‐Wong, Marcy Adv Sci (Weinh) Full Papers Hydrogels are excellent mimetics of mammalian extracellular matrices and have found widespread use in tissue engineering. Nanoporosity of monolithic bulk hydrogels, however, limits mass transport of key biomolecules. Microgels used in 3D bioprinting achieve both custom shape and vastly improved permissivity to an array of cell functions, however spherical‐microbead‐based bioinks are challenging to upscale, are inherently isotropic, and require secondary crosslinking. Here, bioinks based on high‐aspect‐ratio hydrogel microstrands are introduced to overcome these limitations. Pre‐crosslinked, bulk hydrogels are deconstructed into microstrands by sizing through a grid with apertures of 40–100 µm. The microstrands are moldable and form a porous, entangled structure, stable in aqueous medium without further crosslinking. Entangled microstrands have rheological properties characteristic of excellent bioinks for extrusion bioprinting. Furthermore, individual microstrands align during extrusion and facilitate the alignment of myotubes. Cells can be placed either inside or outside the hydrogel phase with >90% viability. Chondrocytes co‐printed with the microstrands deposit abundant extracellular matrix, resulting in a modulus increase from 2.7 to 780.2 kPa after 6 weeks of culture. This powerful approach to deconstruct bulk hydrogels into advanced bioinks is both scalable and versatile, representing an important toolbox for 3D bioprinting of architected hydrogels. John Wiley and Sons Inc. 2020-07-19 /pmc/articles/PMC7509724/ /pubmed/32999847 http://dx.doi.org/10.1002/advs.202001419 Text en © 2020 The Authors. Published by WILEY‐VCH Verlag GmbH & Co. KGaA, Weinheim This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Full Papers
Kessel, Benjamin
Lee, Mihyun
Bonato, Angela
Tinguely, Yann
Tosoratti, Enrico
Zenobi‐Wong, Marcy
3D Bioprinting of Macroporous Materials Based on Entangled Hydrogel Microstrands
title 3D Bioprinting of Macroporous Materials Based on Entangled Hydrogel Microstrands
title_full 3D Bioprinting of Macroporous Materials Based on Entangled Hydrogel Microstrands
title_fullStr 3D Bioprinting of Macroporous Materials Based on Entangled Hydrogel Microstrands
title_full_unstemmed 3D Bioprinting of Macroporous Materials Based on Entangled Hydrogel Microstrands
title_short 3D Bioprinting of Macroporous Materials Based on Entangled Hydrogel Microstrands
title_sort 3d bioprinting of macroporous materials based on entangled hydrogel microstrands
topic Full Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7509724/
https://www.ncbi.nlm.nih.gov/pubmed/32999847
http://dx.doi.org/10.1002/advs.202001419
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