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Spatial-Selective Volumetric 4D Printing and Single-Photon Grafting of Biomolecules within Centimeter-Scale Hydrogels via Tomographic Manufacturing

Conventional additive manufacturing and biofabrication techniques are unable to edit the chemicophysical properties of the printed object postprinting. Herein, a new approach is presented, leveraging light-based volumetric printing as a tool to spatially pattern any biomolecule of interest in custom...

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Autores principales: Falandt, Marc, Bernal, Paulina Nuñez, Dudaryeva, Oksana, Florczak, Sammy, Gröfibacher, Gabriel, Schweiger, Matthias, Longoni, Alessia, Greant, Coralie, Assunção, Marisa, Nijssen, Olaf, van Vlierberghe, Sandra, Malda, Jos, Vermonden, Tina, Levato, Riccardo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7615165/
https://www.ncbi.nlm.nih.gov/pubmed/37811162
http://dx.doi.org/10.1002/admt.202300026
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author Falandt, Marc
Bernal, Paulina Nuñez
Dudaryeva, Oksana
Florczak, Sammy
Gröfibacher, Gabriel
Schweiger, Matthias
Longoni, Alessia
Greant, Coralie
Assunção, Marisa
Nijssen, Olaf
van Vlierberghe, Sandra
Malda, Jos
Vermonden, Tina
Levato, Riccardo
author_facet Falandt, Marc
Bernal, Paulina Nuñez
Dudaryeva, Oksana
Florczak, Sammy
Gröfibacher, Gabriel
Schweiger, Matthias
Longoni, Alessia
Greant, Coralie
Assunção, Marisa
Nijssen, Olaf
van Vlierberghe, Sandra
Malda, Jos
Vermonden, Tina
Levato, Riccardo
author_sort Falandt, Marc
collection PubMed
description Conventional additive manufacturing and biofabrication techniques are unable to edit the chemicophysical properties of the printed object postprinting. Herein, a new approach is presented, leveraging light-based volumetric printing as a tool to spatially pattern any biomolecule of interest in custom-designed geometries even across large, centimeter-scale hydrogels. As biomaterial platform, a gelatin norbornene resin is developed with tunable mechanical properties suitable for tissue engineering applications. The resin can be volumetrically printed within seconds at high resolution (23.68 ± 10.75 μm). Thiol–ene click chemistry allows on-demand photografting of thiolated compounds postprinting, from small to large (bio)molecules (e.g., fluorescent dyes or growth factors). These molecules are covalently attached into printed structures using volumetric light projections, forming 3D geometries with high spatiotemporal control and ≈50 μm resolution. As a proof of concept, vascular endothelial growth factor is locally photografted into a bioprinted construct and demonstrated region-dependent enhanced adhesion and network formation of endothelial cells. This technology paves the way toward the precise spatiotemporal biofunctionalization and modification of the chemical composition of (bio)printed constructs to better guide cell behavior, build bioactive cue gradients. Moreover, it opens future possibilities for 4D printing to mimic the dynamic changes in morphogen presentation natively experienced in biological tissues.
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spelling pubmed-76151652023-10-06 Spatial-Selective Volumetric 4D Printing and Single-Photon Grafting of Biomolecules within Centimeter-Scale Hydrogels via Tomographic Manufacturing Falandt, Marc Bernal, Paulina Nuñez Dudaryeva, Oksana Florczak, Sammy Gröfibacher, Gabriel Schweiger, Matthias Longoni, Alessia Greant, Coralie Assunção, Marisa Nijssen, Olaf van Vlierberghe, Sandra Malda, Jos Vermonden, Tina Levato, Riccardo Adv Mater Technol Article Conventional additive manufacturing and biofabrication techniques are unable to edit the chemicophysical properties of the printed object postprinting. Herein, a new approach is presented, leveraging light-based volumetric printing as a tool to spatially pattern any biomolecule of interest in custom-designed geometries even across large, centimeter-scale hydrogels. As biomaterial platform, a gelatin norbornene resin is developed with tunable mechanical properties suitable for tissue engineering applications. The resin can be volumetrically printed within seconds at high resolution (23.68 ± 10.75 μm). Thiol–ene click chemistry allows on-demand photografting of thiolated compounds postprinting, from small to large (bio)molecules (e.g., fluorescent dyes or growth factors). These molecules are covalently attached into printed structures using volumetric light projections, forming 3D geometries with high spatiotemporal control and ≈50 μm resolution. As a proof of concept, vascular endothelial growth factor is locally photografted into a bioprinted construct and demonstrated region-dependent enhanced adhesion and network formation of endothelial cells. This technology paves the way toward the precise spatiotemporal biofunctionalization and modification of the chemical composition of (bio)printed constructs to better guide cell behavior, build bioactive cue gradients. Moreover, it opens future possibilities for 4D printing to mimic the dynamic changes in morphogen presentation natively experienced in biological tissues. 2023-05-23 /pmc/articles/PMC7615165/ /pubmed/37811162 http://dx.doi.org/10.1002/admt.202300026 Text en https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Falandt, Marc
Bernal, Paulina Nuñez
Dudaryeva, Oksana
Florczak, Sammy
Gröfibacher, Gabriel
Schweiger, Matthias
Longoni, Alessia
Greant, Coralie
Assunção, Marisa
Nijssen, Olaf
van Vlierberghe, Sandra
Malda, Jos
Vermonden, Tina
Levato, Riccardo
Spatial-Selective Volumetric 4D Printing and Single-Photon Grafting of Biomolecules within Centimeter-Scale Hydrogels via Tomographic Manufacturing
title Spatial-Selective Volumetric 4D Printing and Single-Photon Grafting of Biomolecules within Centimeter-Scale Hydrogels via Tomographic Manufacturing
title_full Spatial-Selective Volumetric 4D Printing and Single-Photon Grafting of Biomolecules within Centimeter-Scale Hydrogels via Tomographic Manufacturing
title_fullStr Spatial-Selective Volumetric 4D Printing and Single-Photon Grafting of Biomolecules within Centimeter-Scale Hydrogels via Tomographic Manufacturing
title_full_unstemmed Spatial-Selective Volumetric 4D Printing and Single-Photon Grafting of Biomolecules within Centimeter-Scale Hydrogels via Tomographic Manufacturing
title_short Spatial-Selective Volumetric 4D Printing and Single-Photon Grafting of Biomolecules within Centimeter-Scale Hydrogels via Tomographic Manufacturing
title_sort spatial-selective volumetric 4d printing and single-photon grafting of biomolecules within centimeter-scale hydrogels via tomographic manufacturing
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7615165/
https://www.ncbi.nlm.nih.gov/pubmed/37811162
http://dx.doi.org/10.1002/admt.202300026
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