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A Proof-of-Concept of Label-Free Biosensing System for Food Allergy Diagnostics in Biophotonic Sensing Cells: Performance Comparison with ImmunoCAP

Food allergy is a common disease worldwide with over 6% of the population (200–250 million people) suffering from any food allergy nowadays. The most dramatic increase seems to be happening in children and young people. Therefore, improvements in the diagnosis efficiency of these diseases are needed...

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Autores principales: Espinosa, Rocio L., Laguna, María Fe, Fernández, Fátima, Santamaria, Beatriz, Sanza, Francisco Javier, Maigler, Maria Victoria, Álvarez-Millán, Juan J., Canalejas-Tejero, Víctor, Holgado, Miguel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6111936/
https://www.ncbi.nlm.nih.gov/pubmed/30111765
http://dx.doi.org/10.3390/s18082686
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author Espinosa, Rocio L.
Laguna, María Fe
Fernández, Fátima
Santamaria, Beatriz
Sanza, Francisco Javier
Maigler, Maria Victoria
Álvarez-Millán, Juan J.
Canalejas-Tejero, Víctor
Holgado, Miguel
author_facet Espinosa, Rocio L.
Laguna, María Fe
Fernández, Fátima
Santamaria, Beatriz
Sanza, Francisco Javier
Maigler, Maria Victoria
Álvarez-Millán, Juan J.
Canalejas-Tejero, Víctor
Holgado, Miguel
author_sort Espinosa, Rocio L.
collection PubMed
description Food allergy is a common disease worldwide with over 6% of the population (200–250 million people) suffering from any food allergy nowadays. The most dramatic increase seems to be happening in children and young people. Therefore, improvements in the diagnosis efficiency of these diseases are needed. Immunoglobulin type E (IgE) biomarker determination in human serum is a typical in vitro test for allergy identification. In this work, we used a novel biosensor based on label-free photonic transducers called BICELLs (Biophotonic Sensing Cells) for IgE detection. These BICELLs have a thin film of nitrocellulose over the sensing surface, they can be vertical optically interrogated, and are suitable for being integrated on a chip. The BICELLs sensing surface sizes used were 100 and 800 µm in diameter. We obtained calibration curves with IgE standards by immobilizating anti-IgE antibodies and identified with standard IgE calibrators in minute sample amounts (3 µL). The results, in similar assay format, were compared with commercially available ImmunoCAP(®). The versatility of the interferometric nitrocellulose-based sensing surface was demonstrated since the limit of detections for BICELLs and ImmunoCAP(®) were 0.7 and 0.35 kU/L, respectively.
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spelling pubmed-61119362018-08-30 A Proof-of-Concept of Label-Free Biosensing System for Food Allergy Diagnostics in Biophotonic Sensing Cells: Performance Comparison with ImmunoCAP Espinosa, Rocio L. Laguna, María Fe Fernández, Fátima Santamaria, Beatriz Sanza, Francisco Javier Maigler, Maria Victoria Álvarez-Millán, Juan J. Canalejas-Tejero, Víctor Holgado, Miguel Sensors (Basel) Article Food allergy is a common disease worldwide with over 6% of the population (200–250 million people) suffering from any food allergy nowadays. The most dramatic increase seems to be happening in children and young people. Therefore, improvements in the diagnosis efficiency of these diseases are needed. Immunoglobulin type E (IgE) biomarker determination in human serum is a typical in vitro test for allergy identification. In this work, we used a novel biosensor based on label-free photonic transducers called BICELLs (Biophotonic Sensing Cells) for IgE detection. These BICELLs have a thin film of nitrocellulose over the sensing surface, they can be vertical optically interrogated, and are suitable for being integrated on a chip. The BICELLs sensing surface sizes used were 100 and 800 µm in diameter. We obtained calibration curves with IgE standards by immobilizating anti-IgE antibodies and identified with standard IgE calibrators in minute sample amounts (3 µL). The results, in similar assay format, were compared with commercially available ImmunoCAP(®). The versatility of the interferometric nitrocellulose-based sensing surface was demonstrated since the limit of detections for BICELLs and ImmunoCAP(®) were 0.7 and 0.35 kU/L, respectively. MDPI 2018-08-15 /pmc/articles/PMC6111936/ /pubmed/30111765 http://dx.doi.org/10.3390/s18082686 Text en © 2018 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
Espinosa, Rocio L.
Laguna, María Fe
Fernández, Fátima
Santamaria, Beatriz
Sanza, Francisco Javier
Maigler, Maria Victoria
Álvarez-Millán, Juan J.
Canalejas-Tejero, Víctor
Holgado, Miguel
A Proof-of-Concept of Label-Free Biosensing System for Food Allergy Diagnostics in Biophotonic Sensing Cells: Performance Comparison with ImmunoCAP
title A Proof-of-Concept of Label-Free Biosensing System for Food Allergy Diagnostics in Biophotonic Sensing Cells: Performance Comparison with ImmunoCAP
title_full A Proof-of-Concept of Label-Free Biosensing System for Food Allergy Diagnostics in Biophotonic Sensing Cells: Performance Comparison with ImmunoCAP
title_fullStr A Proof-of-Concept of Label-Free Biosensing System for Food Allergy Diagnostics in Biophotonic Sensing Cells: Performance Comparison with ImmunoCAP
title_full_unstemmed A Proof-of-Concept of Label-Free Biosensing System for Food Allergy Diagnostics in Biophotonic Sensing Cells: Performance Comparison with ImmunoCAP
title_short A Proof-of-Concept of Label-Free Biosensing System for Food Allergy Diagnostics in Biophotonic Sensing Cells: Performance Comparison with ImmunoCAP
title_sort proof-of-concept of label-free biosensing system for food allergy diagnostics in biophotonic sensing cells: performance comparison with immunocap
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6111936/
https://www.ncbi.nlm.nih.gov/pubmed/30111765
http://dx.doi.org/10.3390/s18082686
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