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DNA-Based Nanoswitches: Insights into Electrochemiluminescence Signal Enhancement

[Image: see text] Electrochemiluminescence (ECL) is a powerful transduction technique that has rapidly gained importance as a powerful analytical technique. Since ECL is a surface-confined process, a comprehensive understanding of the generation of ECL signal at a nanometric distance from the electr...

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Autores principales: Zanut, Alessandra, Rossetti, Marianna, Marcaccio, Massimo, Ricci, Francesco, Paolucci, Francesco, Porchetta, Alessandro, Valenti, Giovanni
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8382220/
https://www.ncbi.nlm.nih.gov/pubmed/34213888
http://dx.doi.org/10.1021/acs.analchem.1c01683
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author Zanut, Alessandra
Rossetti, Marianna
Marcaccio, Massimo
Ricci, Francesco
Paolucci, Francesco
Porchetta, Alessandro
Valenti, Giovanni
author_facet Zanut, Alessandra
Rossetti, Marianna
Marcaccio, Massimo
Ricci, Francesco
Paolucci, Francesco
Porchetta, Alessandro
Valenti, Giovanni
author_sort Zanut, Alessandra
collection PubMed
description [Image: see text] Electrochemiluminescence (ECL) is a powerful transduction technique that has rapidly gained importance as a powerful analytical technique. Since ECL is a surface-confined process, a comprehensive understanding of the generation of ECL signal at a nanometric distance from the electrode could lead to several highly promising applications. In this work, we explored the mechanism underlying ECL signal generation on the nanoscale using luminophore-reporter-modified DNA-based nanoswitches (i.e., molecular beacon) with different stem stabilities. ECL is generated according to the “oxidative-reduction” strategy using tri-n-propylamine (TPrA) as a coreactant and Ru(bpy)(3)(2+) as a luminophore. Our findings suggest that by tuning the stem stability of DNA nanoswitches we can activate different ECL mechanisms (direct and remote) and, under specific conditions, a “digital-like” association curve, i.e., with an extremely steep transition after the addition of increasing concentrations of DNA target, a large signal variation, and low preliminary analytical performance (LOD 22 nM for 1GC DNA-nanoswtich and 16 nM for 5GC DNA-nanoswitch). In particular, we were able to achieve higher signal gain (i.e., 10 times) with respect to the standard “signal-off” electrochemical readout. We demonstrated the copresence of two different ECL generation mechanisms on the nanoscale that open the way for the design of customized DNA devices for highly efficient dual-signal-output ratiometric-like ECL systems.
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spelling pubmed-83822202021-08-31 DNA-Based Nanoswitches: Insights into Electrochemiluminescence Signal Enhancement Zanut, Alessandra Rossetti, Marianna Marcaccio, Massimo Ricci, Francesco Paolucci, Francesco Porchetta, Alessandro Valenti, Giovanni Anal Chem [Image: see text] Electrochemiluminescence (ECL) is a powerful transduction technique that has rapidly gained importance as a powerful analytical technique. Since ECL is a surface-confined process, a comprehensive understanding of the generation of ECL signal at a nanometric distance from the electrode could lead to several highly promising applications. In this work, we explored the mechanism underlying ECL signal generation on the nanoscale using luminophore-reporter-modified DNA-based nanoswitches (i.e., molecular beacon) with different stem stabilities. ECL is generated according to the “oxidative-reduction” strategy using tri-n-propylamine (TPrA) as a coreactant and Ru(bpy)(3)(2+) as a luminophore. Our findings suggest that by tuning the stem stability of DNA nanoswitches we can activate different ECL mechanisms (direct and remote) and, under specific conditions, a “digital-like” association curve, i.e., with an extremely steep transition after the addition of increasing concentrations of DNA target, a large signal variation, and low preliminary analytical performance (LOD 22 nM for 1GC DNA-nanoswtich and 16 nM for 5GC DNA-nanoswitch). In particular, we were able to achieve higher signal gain (i.e., 10 times) with respect to the standard “signal-off” electrochemical readout. We demonstrated the copresence of two different ECL generation mechanisms on the nanoscale that open the way for the design of customized DNA devices for highly efficient dual-signal-output ratiometric-like ECL systems. American Chemical Society 2021-07-02 2021-08-03 /pmc/articles/PMC8382220/ /pubmed/34213888 http://dx.doi.org/10.1021/acs.analchem.1c01683 Text en © 2021 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Zanut, Alessandra
Rossetti, Marianna
Marcaccio, Massimo
Ricci, Francesco
Paolucci, Francesco
Porchetta, Alessandro
Valenti, Giovanni
DNA-Based Nanoswitches: Insights into Electrochemiluminescence Signal Enhancement
title DNA-Based Nanoswitches: Insights into Electrochemiluminescence Signal Enhancement
title_full DNA-Based Nanoswitches: Insights into Electrochemiluminescence Signal Enhancement
title_fullStr DNA-Based Nanoswitches: Insights into Electrochemiluminescence Signal Enhancement
title_full_unstemmed DNA-Based Nanoswitches: Insights into Electrochemiluminescence Signal Enhancement
title_short DNA-Based Nanoswitches: Insights into Electrochemiluminescence Signal Enhancement
title_sort dna-based nanoswitches: insights into electrochemiluminescence signal enhancement
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8382220/
https://www.ncbi.nlm.nih.gov/pubmed/34213888
http://dx.doi.org/10.1021/acs.analchem.1c01683
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