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Carbon-Coated Superparamagnetic Nanoflowers for Biosensors Based on Lateral Flow Immunoassays

Superparamagnetic iron oxide nanoflowers coated by a black carbon layer (Fe(3)O(4)@C) were studied as labels in lateral flow immunoassays. They were synthesized by a one-pot solvothermal route, and they were characterized (size, morphology, chemical composition, and magnetic properties). They consis...

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Autores principales: Moyano, Amanda, Serrano-Pertierra, Esther, Salvador, María, Martínez-García, José Carlos, Piñeiro, Yolanda, Yañez-Vilar, Susana, Gónzalez-Gómez, Manuel, Rivas, José, Rivas, Montserrat, Blanco-López, M. Carmen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7460469/
https://www.ncbi.nlm.nih.gov/pubmed/32707868
http://dx.doi.org/10.3390/bios10080080
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author Moyano, Amanda
Serrano-Pertierra, Esther
Salvador, María
Martínez-García, José Carlos
Piñeiro, Yolanda
Yañez-Vilar, Susana
Gónzalez-Gómez, Manuel
Rivas, José
Rivas, Montserrat
Blanco-López, M. Carmen
author_facet Moyano, Amanda
Serrano-Pertierra, Esther
Salvador, María
Martínez-García, José Carlos
Piñeiro, Yolanda
Yañez-Vilar, Susana
Gónzalez-Gómez, Manuel
Rivas, José
Rivas, Montserrat
Blanco-López, M. Carmen
author_sort Moyano, Amanda
collection PubMed
description Superparamagnetic iron oxide nanoflowers coated by a black carbon layer (Fe(3)O(4)@C) were studied as labels in lateral flow immunoassays. They were synthesized by a one-pot solvothermal route, and they were characterized (size, morphology, chemical composition, and magnetic properties). They consist of several superparamagnetic cores embedded in a carbon coating holding carboxylic groups adequate for bioconjugation. Their multi-core structure is especially efficient for magnetic separation while keeping suitable magnetic properties and appropriate size for immunoassay reporters. Their functionality was tested with a model system based on the biotin–neutravidin interaction. For this, the nanoparticles were conjugated to neutravidin using the carbodiimide chemistry, and the lateral flow immunoassay was carried out with a biotin test line. Quantification was achieved with both an inductive magnetic sensor and a reflectance reader. In order to further investigate the quantifying capacity of the Fe(3)O(4)@C nanoflowers, the magnetic lateral flow immunoassay was tested as a detection system for extracellular vesicles (EVs), a novel source of biomarkers with interest for liquid biopsy. A clear correlation between the extracellular vesicle concentration and the signal proved the potential of the nanoflowers as quantifying labels. The limit of detection in a rapid test for EVs was lower than the values reported before for other magnetic nanoparticle labels in the working range 0–3 × 10(7) EVs/μL. The method showed a reproducibility (RSD) of 3% (n = 3). The lateral flow immunoassay (LFIA) rapid test developed in this work yielded to satisfactory results for EVs quantification by using a precipitation kit and also directly in plasma samples. Besides, these Fe(3)O(4)@C nanoparticles are easy to concentrate by means of a magnet, and this feature makes them promising candidates to further reduce the limit of detection.
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spelling pubmed-74604692020-09-03 Carbon-Coated Superparamagnetic Nanoflowers for Biosensors Based on Lateral Flow Immunoassays Moyano, Amanda Serrano-Pertierra, Esther Salvador, María Martínez-García, José Carlos Piñeiro, Yolanda Yañez-Vilar, Susana Gónzalez-Gómez, Manuel Rivas, José Rivas, Montserrat Blanco-López, M. Carmen Biosensors (Basel) Article Superparamagnetic iron oxide nanoflowers coated by a black carbon layer (Fe(3)O(4)@C) were studied as labels in lateral flow immunoassays. They were synthesized by a one-pot solvothermal route, and they were characterized (size, morphology, chemical composition, and magnetic properties). They consist of several superparamagnetic cores embedded in a carbon coating holding carboxylic groups adequate for bioconjugation. Their multi-core structure is especially efficient for magnetic separation while keeping suitable magnetic properties and appropriate size for immunoassay reporters. Their functionality was tested with a model system based on the biotin–neutravidin interaction. For this, the nanoparticles were conjugated to neutravidin using the carbodiimide chemistry, and the lateral flow immunoassay was carried out with a biotin test line. Quantification was achieved with both an inductive magnetic sensor and a reflectance reader. In order to further investigate the quantifying capacity of the Fe(3)O(4)@C nanoflowers, the magnetic lateral flow immunoassay was tested as a detection system for extracellular vesicles (EVs), a novel source of biomarkers with interest for liquid biopsy. A clear correlation between the extracellular vesicle concentration and the signal proved the potential of the nanoflowers as quantifying labels. The limit of detection in a rapid test for EVs was lower than the values reported before for other magnetic nanoparticle labels in the working range 0–3 × 10(7) EVs/μL. The method showed a reproducibility (RSD) of 3% (n = 3). The lateral flow immunoassay (LFIA) rapid test developed in this work yielded to satisfactory results for EVs quantification by using a precipitation kit and also directly in plasma samples. Besides, these Fe(3)O(4)@C nanoparticles are easy to concentrate by means of a magnet, and this feature makes them promising candidates to further reduce the limit of detection. MDPI 2020-07-22 /pmc/articles/PMC7460469/ /pubmed/32707868 http://dx.doi.org/10.3390/bios10080080 Text en © 2020 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
Moyano, Amanda
Serrano-Pertierra, Esther
Salvador, María
Martínez-García, José Carlos
Piñeiro, Yolanda
Yañez-Vilar, Susana
Gónzalez-Gómez, Manuel
Rivas, José
Rivas, Montserrat
Blanco-López, M. Carmen
Carbon-Coated Superparamagnetic Nanoflowers for Biosensors Based on Lateral Flow Immunoassays
title Carbon-Coated Superparamagnetic Nanoflowers for Biosensors Based on Lateral Flow Immunoassays
title_full Carbon-Coated Superparamagnetic Nanoflowers for Biosensors Based on Lateral Flow Immunoassays
title_fullStr Carbon-Coated Superparamagnetic Nanoflowers for Biosensors Based on Lateral Flow Immunoassays
title_full_unstemmed Carbon-Coated Superparamagnetic Nanoflowers for Biosensors Based on Lateral Flow Immunoassays
title_short Carbon-Coated Superparamagnetic Nanoflowers for Biosensors Based on Lateral Flow Immunoassays
title_sort carbon-coated superparamagnetic nanoflowers for biosensors based on lateral flow immunoassays
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7460469/
https://www.ncbi.nlm.nih.gov/pubmed/32707868
http://dx.doi.org/10.3390/bios10080080
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