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Orientation-Controlled Electrocatalytic Efficiency of an Adsorbed Oxygen-Tolerant Hydrogenase

Protein immobilization on electrodes is a key concept in exploiting enzymatic processes for bioelectronic devices. For optimum performance, an in-depth understanding of the enzyme-surface interactions is required. Here, we introduce an integral approach of experimental and theoretical methods that p...

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Autores principales: Heidary, Nina, Utesch, Tillmann, Zerball, Maximilian, Horch, Marius, Millo, Diego, Fritsch, Johannes, Lenz, Oliver, von Klitzing, Regine, Hildebrandt, Peter, Fischer, Anna, Mroginski, Maria Andrea, Zebger, Ingo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4651547/
https://www.ncbi.nlm.nih.gov/pubmed/26580976
http://dx.doi.org/10.1371/journal.pone.0143101
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author Heidary, Nina
Utesch, Tillmann
Zerball, Maximilian
Horch, Marius
Millo, Diego
Fritsch, Johannes
Lenz, Oliver
von Klitzing, Regine
Hildebrandt, Peter
Fischer, Anna
Mroginski, Maria Andrea
Zebger, Ingo
author_facet Heidary, Nina
Utesch, Tillmann
Zerball, Maximilian
Horch, Marius
Millo, Diego
Fritsch, Johannes
Lenz, Oliver
von Klitzing, Regine
Hildebrandt, Peter
Fischer, Anna
Mroginski, Maria Andrea
Zebger, Ingo
author_sort Heidary, Nina
collection PubMed
description Protein immobilization on electrodes is a key concept in exploiting enzymatic processes for bioelectronic devices. For optimum performance, an in-depth understanding of the enzyme-surface interactions is required. Here, we introduce an integral approach of experimental and theoretical methods that provides detailed insights into the adsorption of an oxygen-tolerant [NiFe] hydrogenase on a biocompatible gold electrode. Using atomic force microscopy, ellipsometry, surface-enhanced IR spectroscopy, and protein film voltammetry, we explore enzyme coverage, integrity, and activity, thereby probing both structure and catalytic H(2) conversion of the enzyme. Electrocatalytic efficiencies can be correlated with the mode of protein adsorption on the electrode as estimated theoretically by molecular dynamics simulations. Our results reveal that pre-activation at low potentials results in increased current densities, which can be rationalized in terms of a potential-induced re-orientation of the immobilized enzyme.
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spelling pubmed-46515472015-11-25 Orientation-Controlled Electrocatalytic Efficiency of an Adsorbed Oxygen-Tolerant Hydrogenase Heidary, Nina Utesch, Tillmann Zerball, Maximilian Horch, Marius Millo, Diego Fritsch, Johannes Lenz, Oliver von Klitzing, Regine Hildebrandt, Peter Fischer, Anna Mroginski, Maria Andrea Zebger, Ingo PLoS One Research Article Protein immobilization on electrodes is a key concept in exploiting enzymatic processes for bioelectronic devices. For optimum performance, an in-depth understanding of the enzyme-surface interactions is required. Here, we introduce an integral approach of experimental and theoretical methods that provides detailed insights into the adsorption of an oxygen-tolerant [NiFe] hydrogenase on a biocompatible gold electrode. Using atomic force microscopy, ellipsometry, surface-enhanced IR spectroscopy, and protein film voltammetry, we explore enzyme coverage, integrity, and activity, thereby probing both structure and catalytic H(2) conversion of the enzyme. Electrocatalytic efficiencies can be correlated with the mode of protein adsorption on the electrode as estimated theoretically by molecular dynamics simulations. Our results reveal that pre-activation at low potentials results in increased current densities, which can be rationalized in terms of a potential-induced re-orientation of the immobilized enzyme. Public Library of Science 2015-11-18 /pmc/articles/PMC4651547/ /pubmed/26580976 http://dx.doi.org/10.1371/journal.pone.0143101 Text en © 2015 Heidary et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Heidary, Nina
Utesch, Tillmann
Zerball, Maximilian
Horch, Marius
Millo, Diego
Fritsch, Johannes
Lenz, Oliver
von Klitzing, Regine
Hildebrandt, Peter
Fischer, Anna
Mroginski, Maria Andrea
Zebger, Ingo
Orientation-Controlled Electrocatalytic Efficiency of an Adsorbed Oxygen-Tolerant Hydrogenase
title Orientation-Controlled Electrocatalytic Efficiency of an Adsorbed Oxygen-Tolerant Hydrogenase
title_full Orientation-Controlled Electrocatalytic Efficiency of an Adsorbed Oxygen-Tolerant Hydrogenase
title_fullStr Orientation-Controlled Electrocatalytic Efficiency of an Adsorbed Oxygen-Tolerant Hydrogenase
title_full_unstemmed Orientation-Controlled Electrocatalytic Efficiency of an Adsorbed Oxygen-Tolerant Hydrogenase
title_short Orientation-Controlled Electrocatalytic Efficiency of an Adsorbed Oxygen-Tolerant Hydrogenase
title_sort orientation-controlled electrocatalytic efficiency of an adsorbed oxygen-tolerant hydrogenase
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4651547/
https://www.ncbi.nlm.nih.gov/pubmed/26580976
http://dx.doi.org/10.1371/journal.pone.0143101
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