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Rolling Circle Amplification Tailored for Plasmonic Biosensors: From Ensemble to Single-Molecule Detection

[Image: see text] We report on the tailoring of rolling circle amplification (RCA) for affinity biosensors relying on the optical probing of their surface with confined surface plasmon field. Affinity capture of the target analyte at the metallic sensor surface (e.g., by using immunoassays) is follo...

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Autores principales: Schmidt, Katharina, Hageneder, Simone, Lechner, Bernadette, Zbiral, Barbara, Fossati, Stefan, Ahmadi, Yasaman, Minunni, Maria, Toca-Herrera, Jose Luis, Reimhult, Erik, Barisic, Ivan, Dostalek, Jakub
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9756284/
https://www.ncbi.nlm.nih.gov/pubmed/36446038
http://dx.doi.org/10.1021/acsami.2c14500
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author Schmidt, Katharina
Hageneder, Simone
Lechner, Bernadette
Zbiral, Barbara
Fossati, Stefan
Ahmadi, Yasaman
Minunni, Maria
Toca-Herrera, Jose Luis
Reimhult, Erik
Barisic, Ivan
Dostalek, Jakub
author_facet Schmidt, Katharina
Hageneder, Simone
Lechner, Bernadette
Zbiral, Barbara
Fossati, Stefan
Ahmadi, Yasaman
Minunni, Maria
Toca-Herrera, Jose Luis
Reimhult, Erik
Barisic, Ivan
Dostalek, Jakub
author_sort Schmidt, Katharina
collection PubMed
description [Image: see text] We report on the tailoring of rolling circle amplification (RCA) for affinity biosensors relying on the optical probing of their surface with confined surface plasmon field. Affinity capture of the target analyte at the metallic sensor surface (e.g., by using immunoassays) is followed by the RCA step for subsequent readout based on increased refractive index (surface plasmon resonance, SPR) or RCA-incorporated high number of fluorophores (in surface plasmon-enhanced fluorescence, PEF). By combining SPR and PEF methods, this work investigates the impact of the conformation of long RCA-generated single-stranded DNA (ssDNA) chains to the plasmonic sensor response enhancement. In order to confine the RCA reaction within the evanescent surface plasmon field and hence maximize the sensor response, an interface carrying analyte-capturing molecules and additional guiding ssDNA strands (complementary to the repeating segments of RCA-generated chains) is developed. When using the circular padlock probe as a model target analyte, the PEF readout shows that the reported RCA implementation improves the limit of detection (LOD) from 13 pM to high femtomolar concentration when compared to direct labeling. The respective enhancement factor is of about 2 orders of magnitude, which agrees with the maximum number of fluorophore emitters attached to the RCA chain that is folded in the evanescent surface plasmon field by the developed biointerface. Moreover, the RCA allows facile visualizing of individual binding events by fluorescence microscopy, which enables direct counting of captured molecules. This approach offers a versatile route toward a fast digital readout format of single-molecule detection with further reduced LOD.
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spelling pubmed-97562842022-12-17 Rolling Circle Amplification Tailored for Plasmonic Biosensors: From Ensemble to Single-Molecule Detection Schmidt, Katharina Hageneder, Simone Lechner, Bernadette Zbiral, Barbara Fossati, Stefan Ahmadi, Yasaman Minunni, Maria Toca-Herrera, Jose Luis Reimhult, Erik Barisic, Ivan Dostalek, Jakub ACS Appl Mater Interfaces [Image: see text] We report on the tailoring of rolling circle amplification (RCA) for affinity biosensors relying on the optical probing of their surface with confined surface plasmon field. Affinity capture of the target analyte at the metallic sensor surface (e.g., by using immunoassays) is followed by the RCA step for subsequent readout based on increased refractive index (surface plasmon resonance, SPR) or RCA-incorporated high number of fluorophores (in surface plasmon-enhanced fluorescence, PEF). By combining SPR and PEF methods, this work investigates the impact of the conformation of long RCA-generated single-stranded DNA (ssDNA) chains to the plasmonic sensor response enhancement. In order to confine the RCA reaction within the evanescent surface plasmon field and hence maximize the sensor response, an interface carrying analyte-capturing molecules and additional guiding ssDNA strands (complementary to the repeating segments of RCA-generated chains) is developed. When using the circular padlock probe as a model target analyte, the PEF readout shows that the reported RCA implementation improves the limit of detection (LOD) from 13 pM to high femtomolar concentration when compared to direct labeling. The respective enhancement factor is of about 2 orders of magnitude, which agrees with the maximum number of fluorophore emitters attached to the RCA chain that is folded in the evanescent surface plasmon field by the developed biointerface. Moreover, the RCA allows facile visualizing of individual binding events by fluorescence microscopy, which enables direct counting of captured molecules. This approach offers a versatile route toward a fast digital readout format of single-molecule detection with further reduced LOD. American Chemical Society 2022-11-29 2022-12-14 /pmc/articles/PMC9756284/ /pubmed/36446038 http://dx.doi.org/10.1021/acsami.2c14500 Text en © 2022 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 Schmidt, Katharina
Hageneder, Simone
Lechner, Bernadette
Zbiral, Barbara
Fossati, Stefan
Ahmadi, Yasaman
Minunni, Maria
Toca-Herrera, Jose Luis
Reimhult, Erik
Barisic, Ivan
Dostalek, Jakub
Rolling Circle Amplification Tailored for Plasmonic Biosensors: From Ensemble to Single-Molecule Detection
title Rolling Circle Amplification Tailored for Plasmonic Biosensors: From Ensemble to Single-Molecule Detection
title_full Rolling Circle Amplification Tailored for Plasmonic Biosensors: From Ensemble to Single-Molecule Detection
title_fullStr Rolling Circle Amplification Tailored for Plasmonic Biosensors: From Ensemble to Single-Molecule Detection
title_full_unstemmed Rolling Circle Amplification Tailored for Plasmonic Biosensors: From Ensemble to Single-Molecule Detection
title_short Rolling Circle Amplification Tailored for Plasmonic Biosensors: From Ensemble to Single-Molecule Detection
title_sort rolling circle amplification tailored for plasmonic biosensors: from ensemble to single-molecule detection
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9756284/
https://www.ncbi.nlm.nih.gov/pubmed/36446038
http://dx.doi.org/10.1021/acsami.2c14500
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