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A highly sensitive and selective fluoride sensor based on a riboswitch-regulated transcription coupled with CRISPR-Cas13a tandem reaction

Nucleic acid sensors have realized much success in detecting positively charged and neutral molecules, but have rarely been applied for measuring negatively charged molecules, such as fluoride, even though an effective sensor is needed to promote dental health while preventing osteofluorosis and oth...

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Autores principales: Ma, Yuan, Mou, Quanbing, Yan, Peng, Yang, Zhenglin, Xiong, Ying, Yan, Deyue, Zhang, Chuan, Zhu, Xinyuan, Lu, Yi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8442723/
https://www.ncbi.nlm.nih.gov/pubmed/34659710
http://dx.doi.org/10.1039/d1sc03508h
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author Ma, Yuan
Mou, Quanbing
Yan, Peng
Yang, Zhenglin
Xiong, Ying
Yan, Deyue
Zhang, Chuan
Zhu, Xinyuan
Lu, Yi
author_facet Ma, Yuan
Mou, Quanbing
Yan, Peng
Yang, Zhenglin
Xiong, Ying
Yan, Deyue
Zhang, Chuan
Zhu, Xinyuan
Lu, Yi
author_sort Ma, Yuan
collection PubMed
description Nucleic acid sensors have realized much success in detecting positively charged and neutral molecules, but have rarely been applied for measuring negatively charged molecules, such as fluoride, even though an effective sensor is needed to promote dental health while preventing osteofluorosis and other diseases. To address this issue, we herein report a quantitative fluoride sensor with a portable fluorometer readout based on fluoride riboswitch-regulated transcription coupled with CRISPR-Cas13-based signal amplification. This tandem sensor utilizes the fluoride riboswitch to regulate in vitro transcription and generate full-length transcribed RNA that can be recognized by CRISPR-Cas13a, triggering the collateral cleavage of the fluorophore-quencher labeled RNA probe and generating a fluorescence signal output. This tandem sensor can quantitatively detect fluoride at ambient temperature in aqueous solution with high sensitivity (limit of detection (LOD) ≈ 1.7 μM), high selectivity against other common anions, a wide dynamic range (0–800 μM) and a short sample-to-answer time (30 min). This work expands the application of nucleic acid sensors to negatively charged targets and demonstrates their potential for the on-site and real-time detection of fluoride in environmental monitoring and point-of-care diagnostics.
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spelling pubmed-84427232021-10-14 A highly sensitive and selective fluoride sensor based on a riboswitch-regulated transcription coupled with CRISPR-Cas13a tandem reaction Ma, Yuan Mou, Quanbing Yan, Peng Yang, Zhenglin Xiong, Ying Yan, Deyue Zhang, Chuan Zhu, Xinyuan Lu, Yi Chem Sci Chemistry Nucleic acid sensors have realized much success in detecting positively charged and neutral molecules, but have rarely been applied for measuring negatively charged molecules, such as fluoride, even though an effective sensor is needed to promote dental health while preventing osteofluorosis and other diseases. To address this issue, we herein report a quantitative fluoride sensor with a portable fluorometer readout based on fluoride riboswitch-regulated transcription coupled with CRISPR-Cas13-based signal amplification. This tandem sensor utilizes the fluoride riboswitch to regulate in vitro transcription and generate full-length transcribed RNA that can be recognized by CRISPR-Cas13a, triggering the collateral cleavage of the fluorophore-quencher labeled RNA probe and generating a fluorescence signal output. This tandem sensor can quantitatively detect fluoride at ambient temperature in aqueous solution with high sensitivity (limit of detection (LOD) ≈ 1.7 μM), high selectivity against other common anions, a wide dynamic range (0–800 μM) and a short sample-to-answer time (30 min). This work expands the application of nucleic acid sensors to negatively charged targets and demonstrates their potential for the on-site and real-time detection of fluoride in environmental monitoring and point-of-care diagnostics. The Royal Society of Chemistry 2021-08-09 /pmc/articles/PMC8442723/ /pubmed/34659710 http://dx.doi.org/10.1039/d1sc03508h Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Ma, Yuan
Mou, Quanbing
Yan, Peng
Yang, Zhenglin
Xiong, Ying
Yan, Deyue
Zhang, Chuan
Zhu, Xinyuan
Lu, Yi
A highly sensitive and selective fluoride sensor based on a riboswitch-regulated transcription coupled with CRISPR-Cas13a tandem reaction
title A highly sensitive and selective fluoride sensor based on a riboswitch-regulated transcription coupled with CRISPR-Cas13a tandem reaction
title_full A highly sensitive and selective fluoride sensor based on a riboswitch-regulated transcription coupled with CRISPR-Cas13a tandem reaction
title_fullStr A highly sensitive and selective fluoride sensor based on a riboswitch-regulated transcription coupled with CRISPR-Cas13a tandem reaction
title_full_unstemmed A highly sensitive and selective fluoride sensor based on a riboswitch-regulated transcription coupled with CRISPR-Cas13a tandem reaction
title_short A highly sensitive and selective fluoride sensor based on a riboswitch-regulated transcription coupled with CRISPR-Cas13a tandem reaction
title_sort highly sensitive and selective fluoride sensor based on a riboswitch-regulated transcription coupled with crispr-cas13a tandem reaction
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8442723/
https://www.ncbi.nlm.nih.gov/pubmed/34659710
http://dx.doi.org/10.1039/d1sc03508h
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