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Redox-Active Monolayers Self-Assembled on Gold Electrodes—Effect of Their Structures on Electrochemical Parameters and DNA Sensing Ability

The background: The monolayers self-assembled on the gold electrode incorporated transition metal complexes can act both as receptor (“host” molecules) immobilization sites, as well as transducer for interface recognitions of “guest” molecules present in the aqueous solutions. Their electrochemical...

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Autores principales: Malecka, Kamila, Menon, Shalini, Palla, Gopal, Kumar, Krishnapillai Girish, Daniels, Mathias, Dehaen, Wim, Radecka, Hanna, Radecki, Jerzy
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7037899/
https://www.ncbi.nlm.nih.gov/pubmed/32019203
http://dx.doi.org/10.3390/molecules25030607
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author Malecka, Kamila
Menon, Shalini
Palla, Gopal
Kumar, Krishnapillai Girish
Daniels, Mathias
Dehaen, Wim
Radecka, Hanna
Radecki, Jerzy
author_facet Malecka, Kamila
Menon, Shalini
Palla, Gopal
Kumar, Krishnapillai Girish
Daniels, Mathias
Dehaen, Wim
Radecka, Hanna
Radecki, Jerzy
author_sort Malecka, Kamila
collection PubMed
description The background: The monolayers self-assembled on the gold electrode incorporated transition metal complexes can act both as receptor (“host” molecules) immobilization sites, as well as transducer for interface recognitions of “guest” molecules present in the aqueous solutions. Their electrochemical parameters influencing the sensing properties strongly depend on the transition metal complex structures. The objectives: The electrochemical characterization of the symmetric terpyridine–M(2+)–terpyridine and asymmetric dipyrromethene–M(2+)–terpyridine complexes modified with ssDNA probe covalently attached to the gold electrodes and exploring their ssDNA sensing ability were the main aims of the research presented. The methods: Two transition metal cations have been selected: Cu(2+) and Co(2+) for creation of redox-active monolayers. The electron transfer coefficients indicating the reversibility and electron transfer rate constant measuring kinetic of redox reactions have been determined for all SAMs studied using: Cyclic Voltammetry, Osteryoung Square-Wave Voltammetry, and Differential Pulse Voltammetry. All redox-active platforms have been applied for immobilization of ssDNA probe. Next, their sensing properties towards complementary DNA target have been explored electrochemically. The results: All SAMs studied were stable displaying quasi-reversible redox activity. The linear relationships between cathodic and anodic current vs. san rate were obtained for both symmetric and asymmetric SAMs incorporating Co(2+) and Cu(2+), indicating that oxidized and reduced redox sites are adsorbed on the electrode surface. The ssDNA sensing ability were observed in the fM concentration range. The low responses towards non-complementary ssDNA sequences provided evidences for sensors good selectivity. The conclusions: All redox-active SAMs modified with a ssDNA probe were suitable for sensing of ssDNA target, with very good sensitivity in fM range and very good selectivity. The detection limits obtained for SAMs incorporating Cu(2+), both symmetric and asymmetric, were better in comparison to SAMs incorporating Co(2+). Thus, selection of the right transition metal cation has stronger influence on ssDNA sensing ability, than complex structures.
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spelling pubmed-70378992020-03-10 Redox-Active Monolayers Self-Assembled on Gold Electrodes—Effect of Their Structures on Electrochemical Parameters and DNA Sensing Ability Malecka, Kamila Menon, Shalini Palla, Gopal Kumar, Krishnapillai Girish Daniels, Mathias Dehaen, Wim Radecka, Hanna Radecki, Jerzy Molecules Article The background: The monolayers self-assembled on the gold electrode incorporated transition metal complexes can act both as receptor (“host” molecules) immobilization sites, as well as transducer for interface recognitions of “guest” molecules present in the aqueous solutions. Their electrochemical parameters influencing the sensing properties strongly depend on the transition metal complex structures. The objectives: The electrochemical characterization of the symmetric terpyridine–M(2+)–terpyridine and asymmetric dipyrromethene–M(2+)–terpyridine complexes modified with ssDNA probe covalently attached to the gold electrodes and exploring their ssDNA sensing ability were the main aims of the research presented. The methods: Two transition metal cations have been selected: Cu(2+) and Co(2+) for creation of redox-active monolayers. The electron transfer coefficients indicating the reversibility and electron transfer rate constant measuring kinetic of redox reactions have been determined for all SAMs studied using: Cyclic Voltammetry, Osteryoung Square-Wave Voltammetry, and Differential Pulse Voltammetry. All redox-active platforms have been applied for immobilization of ssDNA probe. Next, their sensing properties towards complementary DNA target have been explored electrochemically. The results: All SAMs studied were stable displaying quasi-reversible redox activity. The linear relationships between cathodic and anodic current vs. san rate were obtained for both symmetric and asymmetric SAMs incorporating Co(2+) and Cu(2+), indicating that oxidized and reduced redox sites are adsorbed on the electrode surface. The ssDNA sensing ability were observed in the fM concentration range. The low responses towards non-complementary ssDNA sequences provided evidences for sensors good selectivity. The conclusions: All redox-active SAMs modified with a ssDNA probe were suitable for sensing of ssDNA target, with very good sensitivity in fM range and very good selectivity. The detection limits obtained for SAMs incorporating Cu(2+), both symmetric and asymmetric, were better in comparison to SAMs incorporating Co(2+). Thus, selection of the right transition metal cation has stronger influence on ssDNA sensing ability, than complex structures. MDPI 2020-01-30 /pmc/articles/PMC7037899/ /pubmed/32019203 http://dx.doi.org/10.3390/molecules25030607 Text en © 2020 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Malecka, Kamila
Menon, Shalini
Palla, Gopal
Kumar, Krishnapillai Girish
Daniels, Mathias
Dehaen, Wim
Radecka, Hanna
Radecki, Jerzy
Redox-Active Monolayers Self-Assembled on Gold Electrodes—Effect of Their Structures on Electrochemical Parameters and DNA Sensing Ability
title Redox-Active Monolayers Self-Assembled on Gold Electrodes—Effect of Their Structures on Electrochemical Parameters and DNA Sensing Ability
title_full Redox-Active Monolayers Self-Assembled on Gold Electrodes—Effect of Their Structures on Electrochemical Parameters and DNA Sensing Ability
title_fullStr Redox-Active Monolayers Self-Assembled on Gold Electrodes—Effect of Their Structures on Electrochemical Parameters and DNA Sensing Ability
title_full_unstemmed Redox-Active Monolayers Self-Assembled on Gold Electrodes—Effect of Their Structures on Electrochemical Parameters and DNA Sensing Ability
title_short Redox-Active Monolayers Self-Assembled on Gold Electrodes—Effect of Their Structures on Electrochemical Parameters and DNA Sensing Ability
title_sort redox-active monolayers self-assembled on gold electrodes—effect of their structures on electrochemical parameters and dna sensing ability
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7037899/
https://www.ncbi.nlm.nih.gov/pubmed/32019203
http://dx.doi.org/10.3390/molecules25030607
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