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Droplet Microfluidic Device for Chemoenzymatic Sensing

The rapid detection of pollutants in water can be performed with enzymatic probes, the catalytic light-emitting activity of which decreases in the presence of many types of pollutants. Herein, we present a microfluidic system for continuous chemoenzymatic biosensing that generates emulsion droplets...

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Autores principales: Yakimov, Anton S., Denisov, Ivan A., Bukatin, Anton S., Lukyanenko, Kirill A., Belousov, Kirill I., Kukhtevich, Igor V., Esimbekova, Elena N., Evstrapov, Anatoly A., Belobrov, Peter I.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9325247/
https://www.ncbi.nlm.nih.gov/pubmed/35888963
http://dx.doi.org/10.3390/mi13071146
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author Yakimov, Anton S.
Denisov, Ivan A.
Bukatin, Anton S.
Lukyanenko, Kirill A.
Belousov, Kirill I.
Kukhtevich, Igor V.
Esimbekova, Elena N.
Evstrapov, Anatoly A.
Belobrov, Peter I.
author_facet Yakimov, Anton S.
Denisov, Ivan A.
Bukatin, Anton S.
Lukyanenko, Kirill A.
Belousov, Kirill I.
Kukhtevich, Igor V.
Esimbekova, Elena N.
Evstrapov, Anatoly A.
Belobrov, Peter I.
author_sort Yakimov, Anton S.
collection PubMed
description The rapid detection of pollutants in water can be performed with enzymatic probes, the catalytic light-emitting activity of which decreases in the presence of many types of pollutants. Herein, we present a microfluidic system for continuous chemoenzymatic biosensing that generates emulsion droplets containing two enzymes of the bacterial bioluminescent system (luciferase and NAD(P)H:FMN–oxidoreductase) with substrates required for the reaction. The developed chip generates “water-in-oil” emulsion droplets with a volume of 0.1 [Formula: see text] L and a frequency of up to 12 drops per minute as well as provides the efficient mixing of reagents in droplets and their distancing. The bioluminescent signal from each individual droplet was measured by a photomultiplier tube with a signal-to-noise ratio of up to 3000/1. The intensity of the luminescence depended on the concentration of the copper sulfate with the limit of its detection of 5 [Formula: see text] M. It was shown that bioluminescent enzymatic reactions could be carried out in droplet reactors in dispersed streams. The parameters and limitations required for the bioluminescent reaction to proceed were also studied. Hereby, chemoenzymatic sensing capabilities powered by a droplet microfluidics manipulation technique may serve as the basis for early-warning online water pollution systems.
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spelling pubmed-93252472022-07-27 Droplet Microfluidic Device for Chemoenzymatic Sensing Yakimov, Anton S. Denisov, Ivan A. Bukatin, Anton S. Lukyanenko, Kirill A. Belousov, Kirill I. Kukhtevich, Igor V. Esimbekova, Elena N. Evstrapov, Anatoly A. Belobrov, Peter I. Micromachines (Basel) Article The rapid detection of pollutants in water can be performed with enzymatic probes, the catalytic light-emitting activity of which decreases in the presence of many types of pollutants. Herein, we present a microfluidic system for continuous chemoenzymatic biosensing that generates emulsion droplets containing two enzymes of the bacterial bioluminescent system (luciferase and NAD(P)H:FMN–oxidoreductase) with substrates required for the reaction. The developed chip generates “water-in-oil” emulsion droplets with a volume of 0.1 [Formula: see text] L and a frequency of up to 12 drops per minute as well as provides the efficient mixing of reagents in droplets and their distancing. The bioluminescent signal from each individual droplet was measured by a photomultiplier tube with a signal-to-noise ratio of up to 3000/1. The intensity of the luminescence depended on the concentration of the copper sulfate with the limit of its detection of 5 [Formula: see text] M. It was shown that bioluminescent enzymatic reactions could be carried out in droplet reactors in dispersed streams. The parameters and limitations required for the bioluminescent reaction to proceed were also studied. Hereby, chemoenzymatic sensing capabilities powered by a droplet microfluidics manipulation technique may serve as the basis for early-warning online water pollution systems. MDPI 2022-07-20 /pmc/articles/PMC9325247/ /pubmed/35888963 http://dx.doi.org/10.3390/mi13071146 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Yakimov, Anton S.
Denisov, Ivan A.
Bukatin, Anton S.
Lukyanenko, Kirill A.
Belousov, Kirill I.
Kukhtevich, Igor V.
Esimbekova, Elena N.
Evstrapov, Anatoly A.
Belobrov, Peter I.
Droplet Microfluidic Device for Chemoenzymatic Sensing
title Droplet Microfluidic Device for Chemoenzymatic Sensing
title_full Droplet Microfluidic Device for Chemoenzymatic Sensing
title_fullStr Droplet Microfluidic Device for Chemoenzymatic Sensing
title_full_unstemmed Droplet Microfluidic Device for Chemoenzymatic Sensing
title_short Droplet Microfluidic Device for Chemoenzymatic Sensing
title_sort droplet microfluidic device for chemoenzymatic sensing
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9325247/
https://www.ncbi.nlm.nih.gov/pubmed/35888963
http://dx.doi.org/10.3390/mi13071146
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