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A New Cell-Selective Three-Dimensional Microincubator Based on Silicon Photonic Crystals

In this work, we show that vertical, high aspect-ratio (HAR) photonic crystals (PhCs), consisting of periodic arrays of 5 µm wide gaps with depth of 50 µm separated by 3 µm thick silicon walls, fabricated by electrochemical micromachining, can be used as three-dimensional microincubators, allowing c...

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Autores principales: Carpignano, Francesca, Silva, Gloria, Surdo, Salvatore, Leva, Valentina, Montecucco, Alessandra, Aredia, Francesca, Scovassi, Anna Ivana, Merlo, Sabina, Barillaro, Giuseppe, Mazzini, Giuliano
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3490954/
https://www.ncbi.nlm.nih.gov/pubmed/23139792
http://dx.doi.org/10.1371/journal.pone.0048556
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author Carpignano, Francesca
Silva, Gloria
Surdo, Salvatore
Leva, Valentina
Montecucco, Alessandra
Aredia, Francesca
Scovassi, Anna Ivana
Merlo, Sabina
Barillaro, Giuseppe
Mazzini, Giuliano
author_facet Carpignano, Francesca
Silva, Gloria
Surdo, Salvatore
Leva, Valentina
Montecucco, Alessandra
Aredia, Francesca
Scovassi, Anna Ivana
Merlo, Sabina
Barillaro, Giuseppe
Mazzini, Giuliano
author_sort Carpignano, Francesca
collection PubMed
description In this work, we show that vertical, high aspect-ratio (HAR) photonic crystals (PhCs), consisting of periodic arrays of 5 µm wide gaps with depth of 50 µm separated by 3 µm thick silicon walls, fabricated by electrochemical micromachining, can be used as three-dimensional microincubators, allowing cell lines to be selectively grown into the gaps. Silicon micromachined dice incorporating regions with different surface profiles, namely flat silicon and deeply etched PhC, were used as microincubators for culturing adherent cell lines with different morphology and adhesion properties. We extensively investigated and compared the proliferative behavior on HAR PhCs of eight human cell models, with different origins, such as the epithelial (SW613-B3; HeLa; SW480; HCT116; HT29) and the mesenchymal (MRC-5V1; CF; HT1080). We also verified the contribution of cell sedimentation into the silicon gaps. Fluorescence microscopy analysis highlights that only cell lines that exhibit, in the tested culture condition, the behavior typical of the mesenchymal phenotype are able to penetrate into the gaps of the PhC, extending their body deeply in the narrow gaps between adjacent silicon walls, and to grow adherent to the vertical surfaces of silicon. Results reported in this work, confirmed in various experiments, strongly support our statement that such three-dimensional microstructures have selection capabilities with regard to the cell lines that can actively populate the narrow gaps. Cells with a mesenchymal phenotype could be exploited in the next future as bioreceptors, in combination with HAR PhC optical transducers, e.g., for label-free optical detection of cellular activities involving changes in cell adhesion and/or morphology (e.g., apoptosis) in a three-dimensional microenvironment.
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spelling pubmed-34909542012-11-08 A New Cell-Selective Three-Dimensional Microincubator Based on Silicon Photonic Crystals Carpignano, Francesca Silva, Gloria Surdo, Salvatore Leva, Valentina Montecucco, Alessandra Aredia, Francesca Scovassi, Anna Ivana Merlo, Sabina Barillaro, Giuseppe Mazzini, Giuliano PLoS One Research Article In this work, we show that vertical, high aspect-ratio (HAR) photonic crystals (PhCs), consisting of periodic arrays of 5 µm wide gaps with depth of 50 µm separated by 3 µm thick silicon walls, fabricated by electrochemical micromachining, can be used as three-dimensional microincubators, allowing cell lines to be selectively grown into the gaps. Silicon micromachined dice incorporating regions with different surface profiles, namely flat silicon and deeply etched PhC, were used as microincubators for culturing adherent cell lines with different morphology and adhesion properties. We extensively investigated and compared the proliferative behavior on HAR PhCs of eight human cell models, with different origins, such as the epithelial (SW613-B3; HeLa; SW480; HCT116; HT29) and the mesenchymal (MRC-5V1; CF; HT1080). We also verified the contribution of cell sedimentation into the silicon gaps. Fluorescence microscopy analysis highlights that only cell lines that exhibit, in the tested culture condition, the behavior typical of the mesenchymal phenotype are able to penetrate into the gaps of the PhC, extending their body deeply in the narrow gaps between adjacent silicon walls, and to grow adherent to the vertical surfaces of silicon. Results reported in this work, confirmed in various experiments, strongly support our statement that such three-dimensional microstructures have selection capabilities with regard to the cell lines that can actively populate the narrow gaps. Cells with a mesenchymal phenotype could be exploited in the next future as bioreceptors, in combination with HAR PhC optical transducers, e.g., for label-free optical detection of cellular activities involving changes in cell adhesion and/or morphology (e.g., apoptosis) in a three-dimensional microenvironment. Public Library of Science 2012-11-06 /pmc/articles/PMC3490954/ /pubmed/23139792 http://dx.doi.org/10.1371/journal.pone.0048556 Text en © 2012 Carpignano et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Carpignano, Francesca
Silva, Gloria
Surdo, Salvatore
Leva, Valentina
Montecucco, Alessandra
Aredia, Francesca
Scovassi, Anna Ivana
Merlo, Sabina
Barillaro, Giuseppe
Mazzini, Giuliano
A New Cell-Selective Three-Dimensional Microincubator Based on Silicon Photonic Crystals
title A New Cell-Selective Three-Dimensional Microincubator Based on Silicon Photonic Crystals
title_full A New Cell-Selective Three-Dimensional Microincubator Based on Silicon Photonic Crystals
title_fullStr A New Cell-Selective Three-Dimensional Microincubator Based on Silicon Photonic Crystals
title_full_unstemmed A New Cell-Selective Three-Dimensional Microincubator Based on Silicon Photonic Crystals
title_short A New Cell-Selective Three-Dimensional Microincubator Based on Silicon Photonic Crystals
title_sort new cell-selective three-dimensional microincubator based on silicon photonic crystals
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3490954/
https://www.ncbi.nlm.nih.gov/pubmed/23139792
http://dx.doi.org/10.1371/journal.pone.0048556
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