In this paper, we show that vertical, high-aspect ratio 1-D photonic crystals (PhCs), consisting of periodic arrays of 3-μm-thick silicon walls separated by 5-μm-wide gaps with depth of 50μm(U-grooves), fabricated by electrochemical micromachining, can be combined with mesenchymal cells directly grown into the gaps. Silicon micromachined dice incorporating side-by-side regions with 2- and 3-D structures, namely, flat silicon, shallow (1–2μm deep) V-grooves, and high-aspect-ratio U-grooves were used as microincubators for culturing SW613-B3, HeLa, SW480, and MRC-5V1 cell lines. Fluorescence microscopy images, obtained after cell fixation, highlight that all the tested cell lines, characterized by different morphologies, are able to grow and proliferate on 2-D microstructures as well as on the “extreme” environment of the PhC structure. More important, SW480 and MRC-5V1 cell lines exhibit the peculiar ability to penetrate into the PhC structure, extending their body deeply in the narrow gaps between adjacent silicon walls, and to grow attached to the vertical surfaces of such 3-D microstructures. This last result represents a first significant step toward the realization of a new class of cell-based biosensors, exploiting cells as bioreceptors and highaspect-ratio PhCs as transducers, for label-free optical detection of cellular activities involving changes in cell morphology and/or adhesion.

Investigation of cell culturing on high aspect-ratio, three-dimensional silicon microstructures

MERLO, SABINA GIOVANNA;CARPIGNANO, FRANCESCA MARIA CARLA;LEVA, VALENTINA;MONTECUCCO, ALESSANDRA;
2012-01-01

Abstract

In this paper, we show that vertical, high-aspect ratio 1-D photonic crystals (PhCs), consisting of periodic arrays of 3-μm-thick silicon walls separated by 5-μm-wide gaps with depth of 50μm(U-grooves), fabricated by electrochemical micromachining, can be combined with mesenchymal cells directly grown into the gaps. Silicon micromachined dice incorporating side-by-side regions with 2- and 3-D structures, namely, flat silicon, shallow (1–2μm deep) V-grooves, and high-aspect-ratio U-grooves were used as microincubators for culturing SW613-B3, HeLa, SW480, and MRC-5V1 cell lines. Fluorescence microscopy images, obtained after cell fixation, highlight that all the tested cell lines, characterized by different morphologies, are able to grow and proliferate on 2-D microstructures as well as on the “extreme” environment of the PhC structure. More important, SW480 and MRC-5V1 cell lines exhibit the peculiar ability to penetrate into the PhC structure, extending their body deeply in the narrow gaps between adjacent silicon walls, and to grow attached to the vertical surfaces of such 3-D microstructures. This last result represents a first significant step toward the realization of a new class of cell-based biosensors, exploiting cells as bioreceptors and highaspect-ratio PhCs as transducers, for label-free optical detection of cellular activities involving changes in cell morphology and/or adhesion.
2012
The Electrical and Electronics Engineering category covers resources concerned with applications of electricity, generally those involving current flow through conductors, as in motors and generators. This category also covers the examination of the conduction of electricity through gases or a vacuum as well as through semiconducting materials. Topics include image and signal processing, electromagnetics, electronic components and materials, microwave technology, and microelectronics.
Sì, ma tipo non specificato
Inglese
Internazionale
STAMPA
18
3
1215
1222
cell culture; cell morphology; cytometry; photonic crystals; silicon microstructures
8
info:eu-repo/semantics/article
262
Merlo, SABINA GIOVANNA; Barillaro, G.; Carpignano, FRANCESCA MARIA CARLA; Leva, Valentina; Montecucco, Alessandra; Surdo, S.; Strambini, L. M.; Mazzin...espandi
1 Contributo su Rivista::1.1 Articolo in rivista
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11571/353726
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