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The Method and Study of Detecting Phenanthrene in Seawater Based on a Carbon Nanotube–Chitosan Oligosaccharide Modified Electrode Immunosensor

Phenanthrene (PHE), as a structurally simple, tricyclic, polycyclic aromatic hydrocarbon (PAHs), is widely present in marine environments and organisms, with serious ecological and health impacts. It is crucial to study fast and simple high-sensitivity detection methods for phenanthrene in seawater...

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Autores principales: Wu, Yuxuan, Qu, Wei, Qiu, Chengjun, Chen, Kaixuan, Zhuang, Yuan, Zeng, Zexi, Yan, Yirou, Gu, Yang, Tao, Wei, Gao, Jiaqi, Li, Ke
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10420227/
https://www.ncbi.nlm.nih.gov/pubmed/37570671
http://dx.doi.org/10.3390/molecules28155701
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author Wu, Yuxuan
Qu, Wei
Qiu, Chengjun
Chen, Kaixuan
Zhuang, Yuan
Zeng, Zexi
Yan, Yirou
Gu, Yang
Tao, Wei
Gao, Jiaqi
Li, Ke
author_facet Wu, Yuxuan
Qu, Wei
Qiu, Chengjun
Chen, Kaixuan
Zhuang, Yuan
Zeng, Zexi
Yan, Yirou
Gu, Yang
Tao, Wei
Gao, Jiaqi
Li, Ke
author_sort Wu, Yuxuan
collection PubMed
description Phenanthrene (PHE), as a structurally simple, tricyclic, polycyclic aromatic hydrocarbon (PAHs), is widely present in marine environments and organisms, with serious ecological and health impacts. It is crucial to study fast and simple high-sensitivity detection methods for phenanthrene in seawater for the environment and the human body. In this paper, a immunosensor was prepared by using a multi-wall carbon nanotube (MWCNTs)-chitosan oligosaccharide (COS) nanocomposite membrane loaded with phenanthrene antibody. The principle was based on the antibody–antigen reaction in the immune reaction, using the strong electron transfer ability of multi-walled carbon nanotubes, coupled with chitosan oligosaccharides with an excellent film formation and biocompatibility, to amplify the detection signal. The content of the phenanthrene in seawater was studied via differential pulse voltammetry (DPV) using a potassium ferricyanide system as a redox probe. The antibody concentration, pH value, and probe concentration were optimized. Under the optimal experimental conditions, the response peak current of the phenanthrene was inversely proportional to the concentration of phenanthrene, in the range from 0.5 ng·mL(−1) to 80 ng·mL(−1), and the detection limit was 0.30 ng·mL(−1). The immune sensor was successfully applied to the detection of phenanthrene in marine water, with a recovery rate of 96.1~101.5%, and provided a stable, sensitive, and accurate method for the real-time monitoring of marine environments.
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spelling pubmed-104202272023-08-12 The Method and Study of Detecting Phenanthrene in Seawater Based on a Carbon Nanotube–Chitosan Oligosaccharide Modified Electrode Immunosensor Wu, Yuxuan Qu, Wei Qiu, Chengjun Chen, Kaixuan Zhuang, Yuan Zeng, Zexi Yan, Yirou Gu, Yang Tao, Wei Gao, Jiaqi Li, Ke Molecules Article Phenanthrene (PHE), as a structurally simple, tricyclic, polycyclic aromatic hydrocarbon (PAHs), is widely present in marine environments and organisms, with serious ecological and health impacts. It is crucial to study fast and simple high-sensitivity detection methods for phenanthrene in seawater for the environment and the human body. In this paper, a immunosensor was prepared by using a multi-wall carbon nanotube (MWCNTs)-chitosan oligosaccharide (COS) nanocomposite membrane loaded with phenanthrene antibody. The principle was based on the antibody–antigen reaction in the immune reaction, using the strong electron transfer ability of multi-walled carbon nanotubes, coupled with chitosan oligosaccharides with an excellent film formation and biocompatibility, to amplify the detection signal. The content of the phenanthrene in seawater was studied via differential pulse voltammetry (DPV) using a potassium ferricyanide system as a redox probe. The antibody concentration, pH value, and probe concentration were optimized. Under the optimal experimental conditions, the response peak current of the phenanthrene was inversely proportional to the concentration of phenanthrene, in the range from 0.5 ng·mL(−1) to 80 ng·mL(−1), and the detection limit was 0.30 ng·mL(−1). The immune sensor was successfully applied to the detection of phenanthrene in marine water, with a recovery rate of 96.1~101.5%, and provided a stable, sensitive, and accurate method for the real-time monitoring of marine environments. MDPI 2023-07-27 /pmc/articles/PMC10420227/ /pubmed/37570671 http://dx.doi.org/10.3390/molecules28155701 Text en © 2023 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
Wu, Yuxuan
Qu, Wei
Qiu, Chengjun
Chen, Kaixuan
Zhuang, Yuan
Zeng, Zexi
Yan, Yirou
Gu, Yang
Tao, Wei
Gao, Jiaqi
Li, Ke
The Method and Study of Detecting Phenanthrene in Seawater Based on a Carbon Nanotube–Chitosan Oligosaccharide Modified Electrode Immunosensor
title The Method and Study of Detecting Phenanthrene in Seawater Based on a Carbon Nanotube–Chitosan Oligosaccharide Modified Electrode Immunosensor
title_full The Method and Study of Detecting Phenanthrene in Seawater Based on a Carbon Nanotube–Chitosan Oligosaccharide Modified Electrode Immunosensor
title_fullStr The Method and Study of Detecting Phenanthrene in Seawater Based on a Carbon Nanotube–Chitosan Oligosaccharide Modified Electrode Immunosensor
title_full_unstemmed The Method and Study of Detecting Phenanthrene in Seawater Based on a Carbon Nanotube–Chitosan Oligosaccharide Modified Electrode Immunosensor
title_short The Method and Study of Detecting Phenanthrene in Seawater Based on a Carbon Nanotube–Chitosan Oligosaccharide Modified Electrode Immunosensor
title_sort method and study of detecting phenanthrene in seawater based on a carbon nanotube–chitosan oligosaccharide modified electrode immunosensor
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10420227/
https://www.ncbi.nlm.nih.gov/pubmed/37570671
http://dx.doi.org/10.3390/molecules28155701
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