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A Step Closer to Membrane Protein Multiplexed Nanoarrays Using Biotin-Doped Polypyrrole

[Image: see text] Whether for fundamental biological research or for diagnostic and drug discovery applications, protein micro- and nanoarrays are attractive technologies because of their low sample consumption, high-throughput, and multiplexing capabilities. However, the arraying platforms develope...

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Autores principales: Della Pia, Eduardo Antonio, Holm, Jeppe V., Lloret, Noemie, Le Bon, Christel, Popot, Jean-Luc, Zoonens, Manuela, Nygård, Jesper, Martinez, Karen Laurence
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4004317/
https://www.ncbi.nlm.nih.gov/pubmed/24476392
http://dx.doi.org/10.1021/nn406252h
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author Della Pia, Eduardo Antonio
Holm, Jeppe V.
Lloret, Noemie
Le Bon, Christel
Popot, Jean-Luc
Zoonens, Manuela
Nygård, Jesper
Martinez, Karen Laurence
author_facet Della Pia, Eduardo Antonio
Holm, Jeppe V.
Lloret, Noemie
Le Bon, Christel
Popot, Jean-Luc
Zoonens, Manuela
Nygård, Jesper
Martinez, Karen Laurence
author_sort Della Pia, Eduardo Antonio
collection PubMed
description [Image: see text] Whether for fundamental biological research or for diagnostic and drug discovery applications, protein micro- and nanoarrays are attractive technologies because of their low sample consumption, high-throughput, and multiplexing capabilities. However, the arraying platforms developed so far are still not able to handle membrane proteins, and specific methods to selectively immobilize these hydrophobic and fragile molecules are needed to understand their function and structural complexity. Here we integrate two technologies, electropolymerization and amphipols, to demonstrate the electrically addressable functionalization of micro- and nanosurfaces with membrane proteins. Gold surfaces are selectively modified by electrogeneration of a polymeric film in the presence of biotin, where avidin conjugates can then be selectively immobilized. The method is successfully applied to the preparation of protein-multiplexed arrays by sequential electropolymerization and biomolecular functionalization steps. The surface density of the proteins bound to the electrodes can be easily tuned by adjusting the amount of biotin deposited during electropolymerization. Amphipols are specially designed amphipathic polymers that provide a straightforward method to stabilize and add functionalities to membrane proteins. Exploiting the strong affinity of biotin for streptavidin, we anchor distinct membrane proteins onto different electrodes via a biotin-tagged amphipol. Antibody-recognition events demonstrate that the proteins are stably immobilized and that the electrodeposition of polypyrrole films bearing biotin units is compatible with the protein-binding activity. Since polypyrrole films show good conductivity properties, the platform described here is particularly well suited to prepare electronically transduced bionanosensors.
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spelling pubmed-40043172015-01-29 A Step Closer to Membrane Protein Multiplexed Nanoarrays Using Biotin-Doped Polypyrrole Della Pia, Eduardo Antonio Holm, Jeppe V. Lloret, Noemie Le Bon, Christel Popot, Jean-Luc Zoonens, Manuela Nygård, Jesper Martinez, Karen Laurence ACS Nano [Image: see text] Whether for fundamental biological research or for diagnostic and drug discovery applications, protein micro- and nanoarrays are attractive technologies because of their low sample consumption, high-throughput, and multiplexing capabilities. However, the arraying platforms developed so far are still not able to handle membrane proteins, and specific methods to selectively immobilize these hydrophobic and fragile molecules are needed to understand their function and structural complexity. Here we integrate two technologies, electropolymerization and amphipols, to demonstrate the electrically addressable functionalization of micro- and nanosurfaces with membrane proteins. Gold surfaces are selectively modified by electrogeneration of a polymeric film in the presence of biotin, where avidin conjugates can then be selectively immobilized. The method is successfully applied to the preparation of protein-multiplexed arrays by sequential electropolymerization and biomolecular functionalization steps. The surface density of the proteins bound to the electrodes can be easily tuned by adjusting the amount of biotin deposited during electropolymerization. Amphipols are specially designed amphipathic polymers that provide a straightforward method to stabilize and add functionalities to membrane proteins. Exploiting the strong affinity of biotin for streptavidin, we anchor distinct membrane proteins onto different electrodes via a biotin-tagged amphipol. Antibody-recognition events demonstrate that the proteins are stably immobilized and that the electrodeposition of polypyrrole films bearing biotin units is compatible with the protein-binding activity. Since polypyrrole films show good conductivity properties, the platform described here is particularly well suited to prepare electronically transduced bionanosensors. American Chemical Society 2014-01-29 2014-02-25 /pmc/articles/PMC4004317/ /pubmed/24476392 http://dx.doi.org/10.1021/nn406252h Text en Copyright © 2014 American Chemical Society
spellingShingle Della Pia, Eduardo Antonio
Holm, Jeppe V.
Lloret, Noemie
Le Bon, Christel
Popot, Jean-Luc
Zoonens, Manuela
Nygård, Jesper
Martinez, Karen Laurence
A Step Closer to Membrane Protein Multiplexed Nanoarrays Using Biotin-Doped Polypyrrole
title A Step Closer to Membrane Protein Multiplexed Nanoarrays Using Biotin-Doped Polypyrrole
title_full A Step Closer to Membrane Protein Multiplexed Nanoarrays Using Biotin-Doped Polypyrrole
title_fullStr A Step Closer to Membrane Protein Multiplexed Nanoarrays Using Biotin-Doped Polypyrrole
title_full_unstemmed A Step Closer to Membrane Protein Multiplexed Nanoarrays Using Biotin-Doped Polypyrrole
title_short A Step Closer to Membrane Protein Multiplexed Nanoarrays Using Biotin-Doped Polypyrrole
title_sort step closer to membrane protein multiplexed nanoarrays using biotin-doped polypyrrole
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4004317/
https://www.ncbi.nlm.nih.gov/pubmed/24476392
http://dx.doi.org/10.1021/nn406252h
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