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Microfluidic Flow Injection Immunoassay System for Algal Toxins Determination: A Case of Study

A novel flow injection microfluidic immunoassay system for continuous monitoring of saxitoxin, a lethal biotoxin, in seawater samples is presented in this article. The system consists of a preimmobilized G protein immunoaffinity column connected in line with a lab-on-chip setup. The detection of sax...

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Autores principales: Celio, Lorenzo, Ottaviani, Matteo, Cancelliere, Rocco, Di Tinno, Alessio, Panjan, Peter, Sesay, Adama Marie, Micheli, Laura
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7974544/
https://www.ncbi.nlm.nih.gov/pubmed/33748075
http://dx.doi.org/10.3389/fchem.2021.626630
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author Celio, Lorenzo
Ottaviani, Matteo
Cancelliere, Rocco
Di Tinno, Alessio
Panjan, Peter
Sesay, Adama Marie
Micheli, Laura
author_facet Celio, Lorenzo
Ottaviani, Matteo
Cancelliere, Rocco
Di Tinno, Alessio
Panjan, Peter
Sesay, Adama Marie
Micheli, Laura
author_sort Celio, Lorenzo
collection PubMed
description A novel flow injection microfluidic immunoassay system for continuous monitoring of saxitoxin, a lethal biotoxin, in seawater samples is presented in this article. The system consists of a preimmobilized G protein immunoaffinity column connected in line with a lab-on-chip setup. The detection of saxitoxin in seawater was carried out in two steps: an offline incubation step (competition reaction) performed between the analyte of interest (saxitoxin or Ag, as standard or seawater sample) and a tracer (an enzyme-conjugated antigen or Ag*) toward a specific polyclonal antibody. Then, the mixture was injected through a “loop” of a few μL using a six-way injection valve into a bioreactor, in line with the valve. The bioreactor consisted of a small glass column, manually filled with resin upon which G protein has been immobilized. When the mixture flowed through the bioreactor, all the antibody-antigen complex, formed during the competition step, is retained by the G protein. The tracer molecules that do not interact with the capture antibody and protein G are eluted out of the column, collected, and mixed with an enzymatic substrate directly within the microfluidic chip, via the use of two peristaltic pumps. When Ag* was present, a color change (absorbance variation, ΔAbs) of the solution is detected at a fixed wavelength (655 nm) by an optical chip docking system and registered by a computer. The amount of saxitoxin, present in the sample (or standard), that generates the variation of the intensity of the color, will be directly proportional to the concentration of the analyte in the analyzed solution. Indeed, the absorbance response increased proportionally to the enzymatic product and to the concentration of saxitoxin in the range of 3.5 × 10(–7)–2 × 10(–5) ng ml(−1) with a detection limit of 1 × 10(–7) ng ml(−1) (RSD% 15, S N(−1) equal to 3). The immunoanalytical system has been characterized, optimized, and tested with seawater samples. This analytical approach, combined with the transportable and small-sized instrumentation, allows for easy in situ monitoring of marine water contaminations.
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spelling pubmed-79745442021-03-20 Microfluidic Flow Injection Immunoassay System for Algal Toxins Determination: A Case of Study Celio, Lorenzo Ottaviani, Matteo Cancelliere, Rocco Di Tinno, Alessio Panjan, Peter Sesay, Adama Marie Micheli, Laura Front Chem Chemistry A novel flow injection microfluidic immunoassay system for continuous monitoring of saxitoxin, a lethal biotoxin, in seawater samples is presented in this article. The system consists of a preimmobilized G protein immunoaffinity column connected in line with a lab-on-chip setup. The detection of saxitoxin in seawater was carried out in two steps: an offline incubation step (competition reaction) performed between the analyte of interest (saxitoxin or Ag, as standard or seawater sample) and a tracer (an enzyme-conjugated antigen or Ag*) toward a specific polyclonal antibody. Then, the mixture was injected through a “loop” of a few μL using a six-way injection valve into a bioreactor, in line with the valve. The bioreactor consisted of a small glass column, manually filled with resin upon which G protein has been immobilized. When the mixture flowed through the bioreactor, all the antibody-antigen complex, formed during the competition step, is retained by the G protein. The tracer molecules that do not interact with the capture antibody and protein G are eluted out of the column, collected, and mixed with an enzymatic substrate directly within the microfluidic chip, via the use of two peristaltic pumps. When Ag* was present, a color change (absorbance variation, ΔAbs) of the solution is detected at a fixed wavelength (655 nm) by an optical chip docking system and registered by a computer. The amount of saxitoxin, present in the sample (or standard), that generates the variation of the intensity of the color, will be directly proportional to the concentration of the analyte in the analyzed solution. Indeed, the absorbance response increased proportionally to the enzymatic product and to the concentration of saxitoxin in the range of 3.5 × 10(–7)–2 × 10(–5) ng ml(−1) with a detection limit of 1 × 10(–7) ng ml(−1) (RSD% 15, S N(−1) equal to 3). The immunoanalytical system has been characterized, optimized, and tested with seawater samples. This analytical approach, combined with the transportable and small-sized instrumentation, allows for easy in situ monitoring of marine water contaminations. Frontiers Media S.A. 2021-03-04 /pmc/articles/PMC7974544/ /pubmed/33748075 http://dx.doi.org/10.3389/fchem.2021.626630 Text en Copyright © 2021 Celio, Ottaviani, Cancelliere, Di Tinno, Panjan, Sesay and Micheli. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Chemistry
Celio, Lorenzo
Ottaviani, Matteo
Cancelliere, Rocco
Di Tinno, Alessio
Panjan, Peter
Sesay, Adama Marie
Micheli, Laura
Microfluidic Flow Injection Immunoassay System for Algal Toxins Determination: A Case of Study
title Microfluidic Flow Injection Immunoassay System for Algal Toxins Determination: A Case of Study
title_full Microfluidic Flow Injection Immunoassay System for Algal Toxins Determination: A Case of Study
title_fullStr Microfluidic Flow Injection Immunoassay System for Algal Toxins Determination: A Case of Study
title_full_unstemmed Microfluidic Flow Injection Immunoassay System for Algal Toxins Determination: A Case of Study
title_short Microfluidic Flow Injection Immunoassay System for Algal Toxins Determination: A Case of Study
title_sort microfluidic flow injection immunoassay system for algal toxins determination: a case of study
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7974544/
https://www.ncbi.nlm.nih.gov/pubmed/33748075
http://dx.doi.org/10.3389/fchem.2021.626630
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