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Spatial and Temporal Modulation of Cell Instructive Cues in a Filamentous Supramolecular Biomaterial

[Image: see text] Supramolecular materials provide unique opportunities to mimic both the structure and mechanics of the biopolymer networks that compose the extracellular matrix. However, strategies to modify their filamentous structures in space and time in 3D cell culture to study cell behavior a...

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Autores principales: Tong, Ciqing, Wondergem, Joeri A. J., van den Brink, Marijn, Kwakernaak, Markus C., Chen, Ying, Hendrix, Marco M. R. M., Voets, Ilja K., Danen, Erik H. J., Le Dévédec, Sylvia, Heinrich, Doris, Kieltyka, Roxanne E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9026256/
https://www.ncbi.nlm.nih.gov/pubmed/35403421
http://dx.doi.org/10.1021/acsami.1c24114
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author Tong, Ciqing
Wondergem, Joeri A. J.
van den Brink, Marijn
Kwakernaak, Markus C.
Chen, Ying
Hendrix, Marco M. R. M.
Voets, Ilja K.
Danen, Erik H. J.
Le Dévédec, Sylvia
Heinrich, Doris
Kieltyka, Roxanne E.
author_facet Tong, Ciqing
Wondergem, Joeri A. J.
van den Brink, Marijn
Kwakernaak, Markus C.
Chen, Ying
Hendrix, Marco M. R. M.
Voets, Ilja K.
Danen, Erik H. J.
Le Dévédec, Sylvia
Heinrich, Doris
Kieltyka, Roxanne E.
author_sort Tong, Ciqing
collection PubMed
description [Image: see text] Supramolecular materials provide unique opportunities to mimic both the structure and mechanics of the biopolymer networks that compose the extracellular matrix. However, strategies to modify their filamentous structures in space and time in 3D cell culture to study cell behavior as encountered in development and disease are lacking. We herein disclose a multicomponent squaramide-based supramolecular material whose mechanics and bioactivity can be controlled by light through co-assembly of a 1,2-dithiolane (DT) monomer that forms disulfide cross-links. Remarkably, increases in storage modulus from ∼200 Pa to >10 kPa after stepwise photo-cross-linking can be realized without an initiator while retaining colorlessness and clarity. Moreover, viscoelasticity and plasticity of the supramolecular networks decrease upon photo-irradiation, reducing cellular protrusion formation and motility when performed at the onset of cell culture. When applied during 3D cell culture, force-mediated manipulation is impeded and cells move primarily along earlier formed channels in the materials. Additionally, we show photopatterning of peptide cues in 3D using either a photomask or direct laser writing. We demonstrate that these squaramide-based filamentous materials can be applied to the development of synthetic and biomimetic 3D in vitro cell and disease models, where their secondary cross-linking enables mechanical heterogeneity and shaping at multiple length scales.
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spelling pubmed-90262562022-04-25 Spatial and Temporal Modulation of Cell Instructive Cues in a Filamentous Supramolecular Biomaterial Tong, Ciqing Wondergem, Joeri A. J. van den Brink, Marijn Kwakernaak, Markus C. Chen, Ying Hendrix, Marco M. R. M. Voets, Ilja K. Danen, Erik H. J. Le Dévédec, Sylvia Heinrich, Doris Kieltyka, Roxanne E. ACS Appl Mater Interfaces [Image: see text] Supramolecular materials provide unique opportunities to mimic both the structure and mechanics of the biopolymer networks that compose the extracellular matrix. However, strategies to modify their filamentous structures in space and time in 3D cell culture to study cell behavior as encountered in development and disease are lacking. We herein disclose a multicomponent squaramide-based supramolecular material whose mechanics and bioactivity can be controlled by light through co-assembly of a 1,2-dithiolane (DT) monomer that forms disulfide cross-links. Remarkably, increases in storage modulus from ∼200 Pa to >10 kPa after stepwise photo-cross-linking can be realized without an initiator while retaining colorlessness and clarity. Moreover, viscoelasticity and plasticity of the supramolecular networks decrease upon photo-irradiation, reducing cellular protrusion formation and motility when performed at the onset of cell culture. When applied during 3D cell culture, force-mediated manipulation is impeded and cells move primarily along earlier formed channels in the materials. Additionally, we show photopatterning of peptide cues in 3D using either a photomask or direct laser writing. We demonstrate that these squaramide-based filamentous materials can be applied to the development of synthetic and biomimetic 3D in vitro cell and disease models, where their secondary cross-linking enables mechanical heterogeneity and shaping at multiple length scales. American Chemical Society 2022-04-10 2022-04-20 /pmc/articles/PMC9026256/ /pubmed/35403421 http://dx.doi.org/10.1021/acsami.1c24114 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Tong, Ciqing
Wondergem, Joeri A. J.
van den Brink, Marijn
Kwakernaak, Markus C.
Chen, Ying
Hendrix, Marco M. R. M.
Voets, Ilja K.
Danen, Erik H. J.
Le Dévédec, Sylvia
Heinrich, Doris
Kieltyka, Roxanne E.
Spatial and Temporal Modulation of Cell Instructive Cues in a Filamentous Supramolecular Biomaterial
title Spatial and Temporal Modulation of Cell Instructive Cues in a Filamentous Supramolecular Biomaterial
title_full Spatial and Temporal Modulation of Cell Instructive Cues in a Filamentous Supramolecular Biomaterial
title_fullStr Spatial and Temporal Modulation of Cell Instructive Cues in a Filamentous Supramolecular Biomaterial
title_full_unstemmed Spatial and Temporal Modulation of Cell Instructive Cues in a Filamentous Supramolecular Biomaterial
title_short Spatial and Temporal Modulation of Cell Instructive Cues in a Filamentous Supramolecular Biomaterial
title_sort spatial and temporal modulation of cell instructive cues in a filamentous supramolecular biomaterial
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9026256/
https://www.ncbi.nlm.nih.gov/pubmed/35403421
http://dx.doi.org/10.1021/acsami.1c24114
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