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Spatially controlled cell adhesion on three-dimensional substrates

The microenvironment of cells in vivo is defined by spatiotemporal patterns of chemical and biophysical cues. Therefore, one important goal of tissue engineering is the generation of scaffolds with defined biofunctionalization in order to control processes like cell adhesion and differentiation. Mim...

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Autores principales: Richter, Christine, Reinhardt, Martina, Giselbrecht, Stefan, Leisen, Daniel, Trouillet, Vanessa, Truckenmüller, Roman, Blau, Axel, Ziegler, Christiane, Welle, Alexander
Formato: Texto
Lenguaje:English
Publicado: Springer US 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2916116/
https://www.ncbi.nlm.nih.gov/pubmed/20480241
http://dx.doi.org/10.1007/s10544-010-9433-2
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author Richter, Christine
Reinhardt, Martina
Giselbrecht, Stefan
Leisen, Daniel
Trouillet, Vanessa
Truckenmüller, Roman
Blau, Axel
Ziegler, Christiane
Welle, Alexander
author_facet Richter, Christine
Reinhardt, Martina
Giselbrecht, Stefan
Leisen, Daniel
Trouillet, Vanessa
Truckenmüller, Roman
Blau, Axel
Ziegler, Christiane
Welle, Alexander
author_sort Richter, Christine
collection PubMed
description The microenvironment of cells in vivo is defined by spatiotemporal patterns of chemical and biophysical cues. Therefore, one important goal of tissue engineering is the generation of scaffolds with defined biofunctionalization in order to control processes like cell adhesion and differentiation. Mimicking extrinsic factors like integrin ligands presented by the extracellular matrix is one of the key elements to study cellular adhesion on biocompatible scaffolds. By using special thermoformable polymer films with anchored biomolecules micro structured scaffolds, e.g. curved and µ-patterned substrates, can be fabricated. Here, we present a novel strategy for the fabrication of µ-patterned scaffolds based on the “Substrate Modification and Replication by Thermoforming” (SMART) technology: The surface of a poly lactic acid membrane, having a low forming temperature of 60°C and being initially very cell attractive, was coated with a photopatterned layer of poly(L-lysine) (PLL) and hyaluronic acid (VAHyal) to gain spatial control over cell adhesion. Subsequently, this modified polymer membrane was thermoformed to create an array of spherical microcavities with diameters of 300 µm for 3D cell culture. Human hepatoma cells (HepG2) and mouse fibroblasts (L929) were used to demonstrate guided cell adhesion. HepG2 cells adhered and aggregated exclusively within these cavities without attaching to the passivated surfaces between the cavities. Also L929 cells adhering very strongly on the pristine substrate polymer were effectively patterned by the cell repellent properties of the hyaluronic acid based hydrogel. This is the first time cell adhesion was controlled by patterned functionalization of a polymeric substrate with UV curable PLL-VAHyal in thermoformed 3D microstructures.
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spelling pubmed-29161162010-08-20 Spatially controlled cell adhesion on three-dimensional substrates Richter, Christine Reinhardt, Martina Giselbrecht, Stefan Leisen, Daniel Trouillet, Vanessa Truckenmüller, Roman Blau, Axel Ziegler, Christiane Welle, Alexander Biomed Microdevices Article The microenvironment of cells in vivo is defined by spatiotemporal patterns of chemical and biophysical cues. Therefore, one important goal of tissue engineering is the generation of scaffolds with defined biofunctionalization in order to control processes like cell adhesion and differentiation. Mimicking extrinsic factors like integrin ligands presented by the extracellular matrix is one of the key elements to study cellular adhesion on biocompatible scaffolds. By using special thermoformable polymer films with anchored biomolecules micro structured scaffolds, e.g. curved and µ-patterned substrates, can be fabricated. Here, we present a novel strategy for the fabrication of µ-patterned scaffolds based on the “Substrate Modification and Replication by Thermoforming” (SMART) technology: The surface of a poly lactic acid membrane, having a low forming temperature of 60°C and being initially very cell attractive, was coated with a photopatterned layer of poly(L-lysine) (PLL) and hyaluronic acid (VAHyal) to gain spatial control over cell adhesion. Subsequently, this modified polymer membrane was thermoformed to create an array of spherical microcavities with diameters of 300 µm for 3D cell culture. Human hepatoma cells (HepG2) and mouse fibroblasts (L929) were used to demonstrate guided cell adhesion. HepG2 cells adhered and aggregated exclusively within these cavities without attaching to the passivated surfaces between the cavities. Also L929 cells adhering very strongly on the pristine substrate polymer were effectively patterned by the cell repellent properties of the hyaluronic acid based hydrogel. This is the first time cell adhesion was controlled by patterned functionalization of a polymeric substrate with UV curable PLL-VAHyal in thermoformed 3D microstructures. Springer US 2010-05-18 2010 /pmc/articles/PMC2916116/ /pubmed/20480241 http://dx.doi.org/10.1007/s10544-010-9433-2 Text en © The Author(s) 2010 https://creativecommons.org/licenses/by-nc/4.0/ This article is distributed under the terms of the Creative Commons Attribution Noncommercial License which permits any noncommercial use, distribution, and reproduction in any medium, provided the original author(s) and source are credited.
spellingShingle Article
Richter, Christine
Reinhardt, Martina
Giselbrecht, Stefan
Leisen, Daniel
Trouillet, Vanessa
Truckenmüller, Roman
Blau, Axel
Ziegler, Christiane
Welle, Alexander
Spatially controlled cell adhesion on three-dimensional substrates
title Spatially controlled cell adhesion on three-dimensional substrates
title_full Spatially controlled cell adhesion on three-dimensional substrates
title_fullStr Spatially controlled cell adhesion on three-dimensional substrates
title_full_unstemmed Spatially controlled cell adhesion on three-dimensional substrates
title_short Spatially controlled cell adhesion on three-dimensional substrates
title_sort spatially controlled cell adhesion on three-dimensional substrates
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2916116/
https://www.ncbi.nlm.nih.gov/pubmed/20480241
http://dx.doi.org/10.1007/s10544-010-9433-2
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