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Development and In-Depth Characterization of Bacteria Repellent and Bacteria Adhesive Antibody-Coated Surfaces Using Optical Waveguide Biosensing

Bacteria repellent surfaces and antibody-based coatings for bacterial assays have shown a growing demand in the field of biosensors, and have crucial importance in the design of biomedical devices. However, in-depth investigations and comparisons of possible solutions are still missing. The optical...

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Autores principales: Farkas, Eniko, Tarr, Robert, Gerecsei, Tamás, Saftics, Andras, Kovács, Kinga Dóra, Stercz, Balazs, Domokos, Judit, Peter, Beatrix, Kurunczi, Sandor, Szekacs, Inna, Bonyár, Attila, Bányai, Anita, Fürjes, Péter, Ruszkai-Szaniszló, Szilvia, Varga, Máté, Szabó, Barnabás, Ostorházi, Eszter, Szabó, Dóra, Horvath, Robert
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8869200/
https://www.ncbi.nlm.nih.gov/pubmed/35200317
http://dx.doi.org/10.3390/bios12020056
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author Farkas, Eniko
Tarr, Robert
Gerecsei, Tamás
Saftics, Andras
Kovács, Kinga Dóra
Stercz, Balazs
Domokos, Judit
Peter, Beatrix
Kurunczi, Sandor
Szekacs, Inna
Bonyár, Attila
Bányai, Anita
Fürjes, Péter
Ruszkai-Szaniszló, Szilvia
Varga, Máté
Szabó, Barnabás
Ostorházi, Eszter
Szabó, Dóra
Horvath, Robert
author_facet Farkas, Eniko
Tarr, Robert
Gerecsei, Tamás
Saftics, Andras
Kovács, Kinga Dóra
Stercz, Balazs
Domokos, Judit
Peter, Beatrix
Kurunczi, Sandor
Szekacs, Inna
Bonyár, Attila
Bányai, Anita
Fürjes, Péter
Ruszkai-Szaniszló, Szilvia
Varga, Máté
Szabó, Barnabás
Ostorházi, Eszter
Szabó, Dóra
Horvath, Robert
author_sort Farkas, Eniko
collection PubMed
description Bacteria repellent surfaces and antibody-based coatings for bacterial assays have shown a growing demand in the field of biosensors, and have crucial importance in the design of biomedical devices. However, in-depth investigations and comparisons of possible solutions are still missing. The optical waveguide lightmode spectroscopy (OWLS) technique offers label-free, non-invasive, in situ characterization of protein and bacterial adsorption. Moreover, it has excellent flexibility for testing various surface coatings. Here, we describe an OWLS-based method supporting the development of bacteria repellent surfaces and characterize the layer structures and affinities of different antibody-based coatings for bacterial assays. In order to test nonspecific binding blocking agents against bacteria, OWLS chips were coated with bovine serum albumin (BSA), I-block, PAcrAM-g-(PMOXA, NH(2), Si), (PAcrAM-P) and PLL-g-PEG (PP) (with different coating temperatures), and subsequent Escherichia coli adhesion was monitored. We found that the best performing blocking agents could inhibit bacterial adhesion from samples with bacteria concentrations of up to 10(7) cells/mL. Various immobilization methods were applied to graft a wide range of selected antibodies onto the biosensor’s surface. Simple physisorption, Mix&Go (AnteoBind) (MG) films, covalently immobilized protein A and avidin–biotin based surface chemistries were all fabricated and tested. The surface adsorbed mass densities of deposited antibodies were determined, and the biosensor;s kinetic data were evaluated to divine the possible orientations of the bacteria-capturing antibodies and determine the rate constants and footprints of the binding events. The development of affinity layers was supported by enzyme-linked immunosorbent assay (ELISA) measurements in order to test the bacteria binding capabilities of the antibodies. The best performance in the biosensor measurements was achieved by employing a polyclonal antibody in combination with protein A-based immobilization and PAcrAM-P blocking of nonspecific binding. Using this setting, a surface sensitivity of 70 cells/mm(2) was demonstrated.
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spelling pubmed-88692002022-02-25 Development and In-Depth Characterization of Bacteria Repellent and Bacteria Adhesive Antibody-Coated Surfaces Using Optical Waveguide Biosensing Farkas, Eniko Tarr, Robert Gerecsei, Tamás Saftics, Andras Kovács, Kinga Dóra Stercz, Balazs Domokos, Judit Peter, Beatrix Kurunczi, Sandor Szekacs, Inna Bonyár, Attila Bányai, Anita Fürjes, Péter Ruszkai-Szaniszló, Szilvia Varga, Máté Szabó, Barnabás Ostorházi, Eszter Szabó, Dóra Horvath, Robert Biosensors (Basel) Article Bacteria repellent surfaces and antibody-based coatings for bacterial assays have shown a growing demand in the field of biosensors, and have crucial importance in the design of biomedical devices. However, in-depth investigations and comparisons of possible solutions are still missing. The optical waveguide lightmode spectroscopy (OWLS) technique offers label-free, non-invasive, in situ characterization of protein and bacterial adsorption. Moreover, it has excellent flexibility for testing various surface coatings. Here, we describe an OWLS-based method supporting the development of bacteria repellent surfaces and characterize the layer structures and affinities of different antibody-based coatings for bacterial assays. In order to test nonspecific binding blocking agents against bacteria, OWLS chips were coated with bovine serum albumin (BSA), I-block, PAcrAM-g-(PMOXA, NH(2), Si), (PAcrAM-P) and PLL-g-PEG (PP) (with different coating temperatures), and subsequent Escherichia coli adhesion was monitored. We found that the best performing blocking agents could inhibit bacterial adhesion from samples with bacteria concentrations of up to 10(7) cells/mL. Various immobilization methods were applied to graft a wide range of selected antibodies onto the biosensor’s surface. Simple physisorption, Mix&Go (AnteoBind) (MG) films, covalently immobilized protein A and avidin–biotin based surface chemistries were all fabricated and tested. The surface adsorbed mass densities of deposited antibodies were determined, and the biosensor;s kinetic data were evaluated to divine the possible orientations of the bacteria-capturing antibodies and determine the rate constants and footprints of the binding events. The development of affinity layers was supported by enzyme-linked immunosorbent assay (ELISA) measurements in order to test the bacteria binding capabilities of the antibodies. The best performance in the biosensor measurements was achieved by employing a polyclonal antibody in combination with protein A-based immobilization and PAcrAM-P blocking of nonspecific binding. Using this setting, a surface sensitivity of 70 cells/mm(2) was demonstrated. MDPI 2022-01-20 /pmc/articles/PMC8869200/ /pubmed/35200317 http://dx.doi.org/10.3390/bios12020056 Text en © 2022 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
Farkas, Eniko
Tarr, Robert
Gerecsei, Tamás
Saftics, Andras
Kovács, Kinga Dóra
Stercz, Balazs
Domokos, Judit
Peter, Beatrix
Kurunczi, Sandor
Szekacs, Inna
Bonyár, Attila
Bányai, Anita
Fürjes, Péter
Ruszkai-Szaniszló, Szilvia
Varga, Máté
Szabó, Barnabás
Ostorházi, Eszter
Szabó, Dóra
Horvath, Robert
Development and In-Depth Characterization of Bacteria Repellent and Bacteria Adhesive Antibody-Coated Surfaces Using Optical Waveguide Biosensing
title Development and In-Depth Characterization of Bacteria Repellent and Bacteria Adhesive Antibody-Coated Surfaces Using Optical Waveguide Biosensing
title_full Development and In-Depth Characterization of Bacteria Repellent and Bacteria Adhesive Antibody-Coated Surfaces Using Optical Waveguide Biosensing
title_fullStr Development and In-Depth Characterization of Bacteria Repellent and Bacteria Adhesive Antibody-Coated Surfaces Using Optical Waveguide Biosensing
title_full_unstemmed Development and In-Depth Characterization of Bacteria Repellent and Bacteria Adhesive Antibody-Coated Surfaces Using Optical Waveguide Biosensing
title_short Development and In-Depth Characterization of Bacteria Repellent and Bacteria Adhesive Antibody-Coated Surfaces Using Optical Waveguide Biosensing
title_sort development and in-depth characterization of bacteria repellent and bacteria adhesive antibody-coated surfaces using optical waveguide biosensing
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8869200/
https://www.ncbi.nlm.nih.gov/pubmed/35200317
http://dx.doi.org/10.3390/bios12020056
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