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High Aspect Ratio and Light-Sensitive Micropillars Based on a Semiconducting Polymer Optically Regulate Neuronal Growth

[Image: see text] Many nano- and microstructured devices capable of promoting neuronal growth and network formation have been previously investigated. In certain cases, topographical cues have been successfully complemented with external bias, by employing electrically conducting scaffolds. However,...

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Autores principales: Milos, Frano, Tullii, Gabriele, Gobbo, Federico, Lodola, Francesco, Galeotti, Francesco, Verpelli, Chiara, Mayer, Dirk, Maybeck, Vanessa, Offenhäusser, Andreas, Antognazza, Maria Rosa
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8161421/
https://www.ncbi.nlm.nih.gov/pubmed/33983012
http://dx.doi.org/10.1021/acsami.1c03537
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author Milos, Frano
Tullii, Gabriele
Gobbo, Federico
Lodola, Francesco
Galeotti, Francesco
Verpelli, Chiara
Mayer, Dirk
Maybeck, Vanessa
Offenhäusser, Andreas
Antognazza, Maria Rosa
author_facet Milos, Frano
Tullii, Gabriele
Gobbo, Federico
Lodola, Francesco
Galeotti, Francesco
Verpelli, Chiara
Mayer, Dirk
Maybeck, Vanessa
Offenhäusser, Andreas
Antognazza, Maria Rosa
author_sort Milos, Frano
collection PubMed
description [Image: see text] Many nano- and microstructured devices capable of promoting neuronal growth and network formation have been previously investigated. In certain cases, topographical cues have been successfully complemented with external bias, by employing electrically conducting scaffolds. However, the use of optical stimulation with topographical cues was rarely addressed in this context, and the development of light-addressable platforms for modulating and guiding cellular growth and proliferation remains almost completely unexplored. Here, we develop high aspect ratio micropillars based on a prototype semiconducting polymer, regioregular poly(3-hexylthiophene-2,5-diyl) (P3HT), as an optically active, three-dimensional platform for embryonic cortical neurons. P3HT micropillars provide a mechanically compliant environment and allow a close contact with neuronal cells. The combined action of nano/microtopography and visible light excitation leads to effective optical modulation of neuronal growth and orientation. Embryonic neurons cultured on polymer pillars show a clear polarization effect and, upon exposure to optical excitation, a significant increase in both neurite and axon length. The biocompatible, microstructured, and light-sensitive platform developed here opens up the opportunity to optically regulate neuronal growth in a wireless, repeatable, and spatio-temporally controlled manner without genetic modification. This approach may be extended to other cell models, thus uncovering interesting applications of photonic devices in regenerative medicine.
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spelling pubmed-81614212021-06-01 High Aspect Ratio and Light-Sensitive Micropillars Based on a Semiconducting Polymer Optically Regulate Neuronal Growth Milos, Frano Tullii, Gabriele Gobbo, Federico Lodola, Francesco Galeotti, Francesco Verpelli, Chiara Mayer, Dirk Maybeck, Vanessa Offenhäusser, Andreas Antognazza, Maria Rosa ACS Appl Mater Interfaces [Image: see text] Many nano- and microstructured devices capable of promoting neuronal growth and network formation have been previously investigated. In certain cases, topographical cues have been successfully complemented with external bias, by employing electrically conducting scaffolds. However, the use of optical stimulation with topographical cues was rarely addressed in this context, and the development of light-addressable platforms for modulating and guiding cellular growth and proliferation remains almost completely unexplored. Here, we develop high aspect ratio micropillars based on a prototype semiconducting polymer, regioregular poly(3-hexylthiophene-2,5-diyl) (P3HT), as an optically active, three-dimensional platform for embryonic cortical neurons. P3HT micropillars provide a mechanically compliant environment and allow a close contact with neuronal cells. The combined action of nano/microtopography and visible light excitation leads to effective optical modulation of neuronal growth and orientation. Embryonic neurons cultured on polymer pillars show a clear polarization effect and, upon exposure to optical excitation, a significant increase in both neurite and axon length. The biocompatible, microstructured, and light-sensitive platform developed here opens up the opportunity to optically regulate neuronal growth in a wireless, repeatable, and spatio-temporally controlled manner without genetic modification. This approach may be extended to other cell models, thus uncovering interesting applications of photonic devices in regenerative medicine. American Chemical Society 2021-05-13 2021-05-26 /pmc/articles/PMC8161421/ /pubmed/33983012 http://dx.doi.org/10.1021/acsami.1c03537 Text en © 2021 The Authors. Published by American Chemical Society 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 Milos, Frano
Tullii, Gabriele
Gobbo, Federico
Lodola, Francesco
Galeotti, Francesco
Verpelli, Chiara
Mayer, Dirk
Maybeck, Vanessa
Offenhäusser, Andreas
Antognazza, Maria Rosa
High Aspect Ratio and Light-Sensitive Micropillars Based on a Semiconducting Polymer Optically Regulate Neuronal Growth
title High Aspect Ratio and Light-Sensitive Micropillars Based on a Semiconducting Polymer Optically Regulate Neuronal Growth
title_full High Aspect Ratio and Light-Sensitive Micropillars Based on a Semiconducting Polymer Optically Regulate Neuronal Growth
title_fullStr High Aspect Ratio and Light-Sensitive Micropillars Based on a Semiconducting Polymer Optically Regulate Neuronal Growth
title_full_unstemmed High Aspect Ratio and Light-Sensitive Micropillars Based on a Semiconducting Polymer Optically Regulate Neuronal Growth
title_short High Aspect Ratio and Light-Sensitive Micropillars Based on a Semiconducting Polymer Optically Regulate Neuronal Growth
title_sort high aspect ratio and light-sensitive micropillars based on a semiconducting polymer optically regulate neuronal growth
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8161421/
https://www.ncbi.nlm.nih.gov/pubmed/33983012
http://dx.doi.org/10.1021/acsami.1c03537
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