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Programmable mismatch-fueled high-efficiency DNA signal amplifier

Herein, by introducing mismatches, a high-efficiency mismatch-fueled catalytic multiple-arm DNA junction assembly (M-CMDJA) with high-reactivity and a high-threshold is developed as a programmable DNA signal amplifier for rapid detection and ultrasensitive intracellular imaging of miRNA. Compared wi...

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Autores principales: Zhang, Xiao-Long, Li, Sha-Sha, Liu, Wei-Wei, Kong, Ling-Qi, Chai, Ya-Qin, Yuan, Ruo
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/PMC9580486/
https://www.ncbi.nlm.nih.gov/pubmed/36320909
http://dx.doi.org/10.1039/d2sc04814k
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author Zhang, Xiao-Long
Li, Sha-Sha
Liu, Wei-Wei
Kong, Ling-Qi
Chai, Ya-Qin
Yuan, Ruo
author_facet Zhang, Xiao-Long
Li, Sha-Sha
Liu, Wei-Wei
Kong, Ling-Qi
Chai, Ya-Qin
Yuan, Ruo
author_sort Zhang, Xiao-Long
collection PubMed
description Herein, by introducing mismatches, a high-efficiency mismatch-fueled catalytic multiple-arm DNA junction assembly (M-CMDJA) with high-reactivity and a high-threshold is developed as a programmable DNA signal amplifier for rapid detection and ultrasensitive intracellular imaging of miRNA. Compared with traditional nucleic acid signal amplification (NASA) with a perfect complement, the M-CMDJA possesses larger kinetic and thermodynamic favorability owing to the more negative reaction standard free energy (ΔG) as driving force, resulting in much higher efficiency and rates. Once traces of the input initiator react with the mismatched substrate DNA, it could be converted into amounts of output multiple-arm DNA junctions via the M-CMDJA as the functional DNA conversion nanodevice. Impressively, the mismatch-fueled catalytic four-arm DNA junction assembly (M-CFDJA) exhibits high conversion efficiency up to 1.05 × 10(8) in 30 min, which is almost ten times more than those of conventional methods. Therefore, the M-CMDJA could easily address the challenges of traditional methods: slow rates and low efficiency. In application, the M-CFDJA as a DNA signal amplifier was successfully used to develop a biosensing platform for rapid miRNA detection with a LOD of 6.11 aM and the ultrasensitive intracellular imaging of miRNA, providing a basis for the next-generation of versatile DNA signal amplification methods for ultimate applications in DNA nanobiotechnology, biosensing assay, and clinical diagnoses.
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spelling pubmed-95804862022-10-31 Programmable mismatch-fueled high-efficiency DNA signal amplifier Zhang, Xiao-Long Li, Sha-Sha Liu, Wei-Wei Kong, Ling-Qi Chai, Ya-Qin Yuan, Ruo Chem Sci Chemistry Herein, by introducing mismatches, a high-efficiency mismatch-fueled catalytic multiple-arm DNA junction assembly (M-CMDJA) with high-reactivity and a high-threshold is developed as a programmable DNA signal amplifier for rapid detection and ultrasensitive intracellular imaging of miRNA. Compared with traditional nucleic acid signal amplification (NASA) with a perfect complement, the M-CMDJA possesses larger kinetic and thermodynamic favorability owing to the more negative reaction standard free energy (ΔG) as driving force, resulting in much higher efficiency and rates. Once traces of the input initiator react with the mismatched substrate DNA, it could be converted into amounts of output multiple-arm DNA junctions via the M-CMDJA as the functional DNA conversion nanodevice. Impressively, the mismatch-fueled catalytic four-arm DNA junction assembly (M-CFDJA) exhibits high conversion efficiency up to 1.05 × 10(8) in 30 min, which is almost ten times more than those of conventional methods. Therefore, the M-CMDJA could easily address the challenges of traditional methods: slow rates and low efficiency. In application, the M-CFDJA as a DNA signal amplifier was successfully used to develop a biosensing platform for rapid miRNA detection with a LOD of 6.11 aM and the ultrasensitive intracellular imaging of miRNA, providing a basis for the next-generation of versatile DNA signal amplification methods for ultimate applications in DNA nanobiotechnology, biosensing assay, and clinical diagnoses. The Royal Society of Chemistry 2022-09-26 /pmc/articles/PMC9580486/ /pubmed/36320909 http://dx.doi.org/10.1039/d2sc04814k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Zhang, Xiao-Long
Li, Sha-Sha
Liu, Wei-Wei
Kong, Ling-Qi
Chai, Ya-Qin
Yuan, Ruo
Programmable mismatch-fueled high-efficiency DNA signal amplifier
title Programmable mismatch-fueled high-efficiency DNA signal amplifier
title_full Programmable mismatch-fueled high-efficiency DNA signal amplifier
title_fullStr Programmable mismatch-fueled high-efficiency DNA signal amplifier
title_full_unstemmed Programmable mismatch-fueled high-efficiency DNA signal amplifier
title_short Programmable mismatch-fueled high-efficiency DNA signal amplifier
title_sort programmable mismatch-fueled high-efficiency dna signal amplifier
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9580486/
https://www.ncbi.nlm.nih.gov/pubmed/36320909
http://dx.doi.org/10.1039/d2sc04814k
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