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Automated Chemical Sensing Unit Integration for Parallel Optical Interrogation

We report the integration of an automated chemical optical sensing unit for the parallel interrogation of 12 BICELLs in a sensing chip. The work was accomplished under the European Project Enviguard (FP7-OCEAN-2013-614057) with the aim of demonstrating an optical nano-biosensing unit for the in-situ...

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Autores principales: Hernandez, Ana L, Dortu, Fabian, Veenstra, Theo, Ciaurriz, Paula, Casquel, Rafael, Cornago, Iñaki, Horsten, Hendrik V, Tellechea, Edurne, Maigler, María V, Fernández, Fátima, Holgado, Miguel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6412770/
https://www.ncbi.nlm.nih.gov/pubmed/30791592
http://dx.doi.org/10.3390/s19040878
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author Hernandez, Ana L
Dortu, Fabian
Veenstra, Theo
Ciaurriz, Paula
Casquel, Rafael
Cornago, Iñaki
Horsten, Hendrik V
Tellechea, Edurne
Maigler, María V
Fernández, Fátima
Holgado, Miguel
author_facet Hernandez, Ana L
Dortu, Fabian
Veenstra, Theo
Ciaurriz, Paula
Casquel, Rafael
Cornago, Iñaki
Horsten, Hendrik V
Tellechea, Edurne
Maigler, María V
Fernández, Fátima
Holgado, Miguel
author_sort Hernandez, Ana L
collection PubMed
description We report the integration of an automated chemical optical sensing unit for the parallel interrogation of 12 BICELLs in a sensing chip. The work was accomplished under the European Project Enviguard (FP7-OCEAN-2013-614057) with the aim of demonstrating an optical nano-biosensing unit for the in-situ detection of various chemical pollutants simultaneously in oceanic waters. In this context, we designed an optical sensing chip based on resonant nanopillars (R-NPs) transducers organized in a layout of twelve biophotonic sensing cells (BICELLs). The sensing chip is interrogated in reflection with a 12-channels optical spectrometer equipped with an embedded computer-on-chip performing image processing for the simultaneous acquisition and analysis (resonant mode fitting) of the 12 spectra. A microfluidic chip and an automated flow control system composed of four pumps and a multi-path micro-valve makes it possible to drive different complex protocols. A rack was designed ad-hoc for the integration of all the modules. As a proof of concept, fluids of different refractive index (RI) were flowed in the system in order to measure the time response (sensogram) of the R-NPs under optical reflectance, and assess the sensors’ bulk sensitivity (285.9 ± 16.4 nm/RIU) and Limit of Detection (LoD) (2.95 × 10(−6) RIUS). The real-time response under continuous flow of a sensor chip based on R-NP is showed for the first time, obtaining 12 sensograms simultaneously, featuring the unit as a potential excellent multiplexed detection system. These results indicate the high potential of the developed chemical sensing unit to be used for in-situ, multiplex and automatic optical biosensing.
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spelling pubmed-64127702019-04-03 Automated Chemical Sensing Unit Integration for Parallel Optical Interrogation Hernandez, Ana L Dortu, Fabian Veenstra, Theo Ciaurriz, Paula Casquel, Rafael Cornago, Iñaki Horsten, Hendrik V Tellechea, Edurne Maigler, María V Fernández, Fátima Holgado, Miguel Sensors (Basel) Article We report the integration of an automated chemical optical sensing unit for the parallel interrogation of 12 BICELLs in a sensing chip. The work was accomplished under the European Project Enviguard (FP7-OCEAN-2013-614057) with the aim of demonstrating an optical nano-biosensing unit for the in-situ detection of various chemical pollutants simultaneously in oceanic waters. In this context, we designed an optical sensing chip based on resonant nanopillars (R-NPs) transducers organized in a layout of twelve biophotonic sensing cells (BICELLs). The sensing chip is interrogated in reflection with a 12-channels optical spectrometer equipped with an embedded computer-on-chip performing image processing for the simultaneous acquisition and analysis (resonant mode fitting) of the 12 spectra. A microfluidic chip and an automated flow control system composed of four pumps and a multi-path micro-valve makes it possible to drive different complex protocols. A rack was designed ad-hoc for the integration of all the modules. As a proof of concept, fluids of different refractive index (RI) were flowed in the system in order to measure the time response (sensogram) of the R-NPs under optical reflectance, and assess the sensors’ bulk sensitivity (285.9 ± 16.4 nm/RIU) and Limit of Detection (LoD) (2.95 × 10(−6) RIUS). The real-time response under continuous flow of a sensor chip based on R-NP is showed for the first time, obtaining 12 sensograms simultaneously, featuring the unit as a potential excellent multiplexed detection system. These results indicate the high potential of the developed chemical sensing unit to be used for in-situ, multiplex and automatic optical biosensing. MDPI 2019-02-20 /pmc/articles/PMC6412770/ /pubmed/30791592 http://dx.doi.org/10.3390/s19040878 Text en © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Hernandez, Ana L
Dortu, Fabian
Veenstra, Theo
Ciaurriz, Paula
Casquel, Rafael
Cornago, Iñaki
Horsten, Hendrik V
Tellechea, Edurne
Maigler, María V
Fernández, Fátima
Holgado, Miguel
Automated Chemical Sensing Unit Integration for Parallel Optical Interrogation
title Automated Chemical Sensing Unit Integration for Parallel Optical Interrogation
title_full Automated Chemical Sensing Unit Integration for Parallel Optical Interrogation
title_fullStr Automated Chemical Sensing Unit Integration for Parallel Optical Interrogation
title_full_unstemmed Automated Chemical Sensing Unit Integration for Parallel Optical Interrogation
title_short Automated Chemical Sensing Unit Integration for Parallel Optical Interrogation
title_sort automated chemical sensing unit integration for parallel optical interrogation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6412770/
https://www.ncbi.nlm.nih.gov/pubmed/30791592
http://dx.doi.org/10.3390/s19040878
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