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A Combined Plasmonic and Electrochemical Aptasensor Based on Gold Nanopit Arrays for the Detection of Human Serum Albumin

Electrochemical and optical platforms are commonly employed in designing biosensors. However, one signal readout can easily lead to inaccuracies due to the effect of nonstandard test procedures, different operators, and experimental environments. We have developed a dual-signal protocol that combine...

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Autores principales: Zhu, Ruifeng, Figueroa-Miranda, Gabriela, Zhou, Lei, Hu, Ziheng, Lenyk, Bohdan, Ingebrandt, Sven, Offenhäusser, Andreas, Mayer, Dirk
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10458775/
https://www.ncbi.nlm.nih.gov/pubmed/37630959
http://dx.doi.org/10.3390/nano13162374
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author Zhu, Ruifeng
Figueroa-Miranda, Gabriela
Zhou, Lei
Hu, Ziheng
Lenyk, Bohdan
Ingebrandt, Sven
Offenhäusser, Andreas
Mayer, Dirk
author_facet Zhu, Ruifeng
Figueroa-Miranda, Gabriela
Zhou, Lei
Hu, Ziheng
Lenyk, Bohdan
Ingebrandt, Sven
Offenhäusser, Andreas
Mayer, Dirk
author_sort Zhu, Ruifeng
collection PubMed
description Electrochemical and optical platforms are commonly employed in designing biosensors. However, one signal readout can easily lead to inaccuracies due to the effect of nonstandard test procedures, different operators, and experimental environments. We have developed a dual-signal protocol that combined two transducer principles in one aptamer-based biosensor by simultaneously performing electrochemical- and extraordinary optical transmission (EOT)-based plasmonic detection using gold nanopit arrays (AuNpA). Compared with full hole structures, we found that nanopits, that did not fully penetrate the gold film, not only exhibited a better plasmonic bandwidth and refractive index sensitivity both in the finite-difference time-domain simulation and in experiments by shielding the gold/quartz mode but also enlarged the electrochemical active surface area. Therefore, the periodic non-fully penetrating AuNpA were modified with ferrocene-labeled human serum albumin aptamer receptors. The formation of the receptor layer and human serum albumin binding complex induced a conformational change, which resulted in variation in the electron transfer between the electro-active ferrocene units and the AuNpA surface. Simultaneously, the binding event caused a surface plasmon polaritons wavelength shift corresponding to a change in the surface refractive index. Interestingly, although both transducers recorded the same binding process, they led to different limits of detection, dynamic ranges, and sensitivities. The electrochemical transducer showed a dynamic detection range from 1 nM to 600 [Formula: see text] M, while the optical transducer covered high concentrations from 100 [Formula: see text] M to 600 [Formula: see text] M. This study not only provides new insights into the design of plasmonic nanostructures but also potentially opens an exciting avenue for dual-signal disease diagnosis and point-of-care testing applications.
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spelling pubmed-104587752023-08-27 A Combined Plasmonic and Electrochemical Aptasensor Based on Gold Nanopit Arrays for the Detection of Human Serum Albumin Zhu, Ruifeng Figueroa-Miranda, Gabriela Zhou, Lei Hu, Ziheng Lenyk, Bohdan Ingebrandt, Sven Offenhäusser, Andreas Mayer, Dirk Nanomaterials (Basel) Article Electrochemical and optical platforms are commonly employed in designing biosensors. However, one signal readout can easily lead to inaccuracies due to the effect of nonstandard test procedures, different operators, and experimental environments. We have developed a dual-signal protocol that combined two transducer principles in one aptamer-based biosensor by simultaneously performing electrochemical- and extraordinary optical transmission (EOT)-based plasmonic detection using gold nanopit arrays (AuNpA). Compared with full hole structures, we found that nanopits, that did not fully penetrate the gold film, not only exhibited a better plasmonic bandwidth and refractive index sensitivity both in the finite-difference time-domain simulation and in experiments by shielding the gold/quartz mode but also enlarged the electrochemical active surface area. Therefore, the periodic non-fully penetrating AuNpA were modified with ferrocene-labeled human serum albumin aptamer receptors. The formation of the receptor layer and human serum albumin binding complex induced a conformational change, which resulted in variation in the electron transfer between the electro-active ferrocene units and the AuNpA surface. Simultaneously, the binding event caused a surface plasmon polaritons wavelength shift corresponding to a change in the surface refractive index. Interestingly, although both transducers recorded the same binding process, they led to different limits of detection, dynamic ranges, and sensitivities. The electrochemical transducer showed a dynamic detection range from 1 nM to 600 [Formula: see text] M, while the optical transducer covered high concentrations from 100 [Formula: see text] M to 600 [Formula: see text] M. This study not only provides new insights into the design of plasmonic nanostructures but also potentially opens an exciting avenue for dual-signal disease diagnosis and point-of-care testing applications. MDPI 2023-08-19 /pmc/articles/PMC10458775/ /pubmed/37630959 http://dx.doi.org/10.3390/nano13162374 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Zhu, Ruifeng
Figueroa-Miranda, Gabriela
Zhou, Lei
Hu, Ziheng
Lenyk, Bohdan
Ingebrandt, Sven
Offenhäusser, Andreas
Mayer, Dirk
A Combined Plasmonic and Electrochemical Aptasensor Based on Gold Nanopit Arrays for the Detection of Human Serum Albumin
title A Combined Plasmonic and Electrochemical Aptasensor Based on Gold Nanopit Arrays for the Detection of Human Serum Albumin
title_full A Combined Plasmonic and Electrochemical Aptasensor Based on Gold Nanopit Arrays for the Detection of Human Serum Albumin
title_fullStr A Combined Plasmonic and Electrochemical Aptasensor Based on Gold Nanopit Arrays for the Detection of Human Serum Albumin
title_full_unstemmed A Combined Plasmonic and Electrochemical Aptasensor Based on Gold Nanopit Arrays for the Detection of Human Serum Albumin
title_short A Combined Plasmonic and Electrochemical Aptasensor Based on Gold Nanopit Arrays for the Detection of Human Serum Albumin
title_sort combined plasmonic and electrochemical aptasensor based on gold nanopit arrays for the detection of human serum albumin
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10458775/
https://www.ncbi.nlm.nih.gov/pubmed/37630959
http://dx.doi.org/10.3390/nano13162374
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