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Developing a DNA logic gate nanosensing platform for the detection of acetamiprid

This paper reports a novel fluorescence and colorimetric dual-signal-output DNA aptamer based sensor for the detection of acetamiprid residue. Acetamiprid is a new systemic broad-spectrum insecticide with high insecticidal efficiency that is widely used worldwide, but there is a risk of adverse neur...

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Autores principales: Xi, Sunfan, Wang, Luhui, Cheng, Meng, Hu, Mengyang, Liu, Rong, Dong, Yafei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9513691/
https://www.ncbi.nlm.nih.gov/pubmed/36276016
http://dx.doi.org/10.1039/d2ra04794b
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author Xi, Sunfan
Wang, Luhui
Cheng, Meng
Hu, Mengyang
Liu, Rong
Dong, Yafei
author_facet Xi, Sunfan
Wang, Luhui
Cheng, Meng
Hu, Mengyang
Liu, Rong
Dong, Yafei
author_sort Xi, Sunfan
collection PubMed
description This paper reports a novel fluorescence and colorimetric dual-signal-output DNA aptamer based sensor for the detection of acetamiprid residue. Acetamiprid is a new systemic broad-spectrum insecticide with high insecticidal efficiency that is widely used worldwide, but there is a risk of adverse neurological reactions in humans and animals. The dual-mode output principle designed in this paper, consisting of a fluorescence signal and colorimetric signal, is based on the relevant reaction of the special domain of a G-quadruplex, bidding farewell to a classical single-signal output, with a target-recognition cycle used to complete signal amplification through a hybridization chain reaction. Upgraded detection sensitivity and the qualitative and semi-quantitative detection of acetamiprid are achieved based on the fluorescence signal output and visual discrimination observations during colorimetric experiments. This model was applied to the determination of acetamiprid residue in fruits and vegetables. The dual-detection platform further reduced systematic error, with a detection limit of 27.7 pM. When applied in a comparative detection study using three different pesticides, the system shows excellent discrimination specificity and it performs well in actual sample detection and has a fast response time. Designing DNA logic gates that operate in the presence of targets and molecular-switch-based detection platforms also involves the intersection of biology and computational modeling, providing new ideas for biological platforms.
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spelling pubmed-95136912022-10-21 Developing a DNA logic gate nanosensing platform for the detection of acetamiprid Xi, Sunfan Wang, Luhui Cheng, Meng Hu, Mengyang Liu, Rong Dong, Yafei RSC Adv Chemistry This paper reports a novel fluorescence and colorimetric dual-signal-output DNA aptamer based sensor for the detection of acetamiprid residue. Acetamiprid is a new systemic broad-spectrum insecticide with high insecticidal efficiency that is widely used worldwide, but there is a risk of adverse neurological reactions in humans and animals. The dual-mode output principle designed in this paper, consisting of a fluorescence signal and colorimetric signal, is based on the relevant reaction of the special domain of a G-quadruplex, bidding farewell to a classical single-signal output, with a target-recognition cycle used to complete signal amplification through a hybridization chain reaction. Upgraded detection sensitivity and the qualitative and semi-quantitative detection of acetamiprid are achieved based on the fluorescence signal output and visual discrimination observations during colorimetric experiments. This model was applied to the determination of acetamiprid residue in fruits and vegetables. The dual-detection platform further reduced systematic error, with a detection limit of 27.7 pM. When applied in a comparative detection study using three different pesticides, the system shows excellent discrimination specificity and it performs well in actual sample detection and has a fast response time. Designing DNA logic gates that operate in the presence of targets and molecular-switch-based detection platforms also involves the intersection of biology and computational modeling, providing new ideas for biological platforms. The Royal Society of Chemistry 2022-09-27 /pmc/articles/PMC9513691/ /pubmed/36276016 http://dx.doi.org/10.1039/d2ra04794b Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Xi, Sunfan
Wang, Luhui
Cheng, Meng
Hu, Mengyang
Liu, Rong
Dong, Yafei
Developing a DNA logic gate nanosensing platform for the detection of acetamiprid
title Developing a DNA logic gate nanosensing platform for the detection of acetamiprid
title_full Developing a DNA logic gate nanosensing platform for the detection of acetamiprid
title_fullStr Developing a DNA logic gate nanosensing platform for the detection of acetamiprid
title_full_unstemmed Developing a DNA logic gate nanosensing platform for the detection of acetamiprid
title_short Developing a DNA logic gate nanosensing platform for the detection of acetamiprid
title_sort developing a dna logic gate nanosensing platform for the detection of acetamiprid
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9513691/
https://www.ncbi.nlm.nih.gov/pubmed/36276016
http://dx.doi.org/10.1039/d2ra04794b
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