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Molecular mechanism of direct electron transfer in the robust cytochrome-functionalised graphene nanosystem

Construction of green nanodevices characterised by excellent long-term performance remains high priority in biotechnology and medicine. Tight electronic coupling of proteins to electrodes is essential for efficient direct electron transfer (DET) across the bio-organic interface. Rational modulation...

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Autores principales: Jacquet, Margot, Kiliszek, Małgorzata, Osella, Silvio, Izzo, Miriam, Sar, Jarosław, Harputlu, Ersan, Unlu, C. Gokhan, Trzaskowski, Bartosz, Ocakoglu, Kasim, Kargul, Joanna
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9033600/
https://www.ncbi.nlm.nih.gov/pubmed/35478629
http://dx.doi.org/10.1039/d1ra02419a
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author Jacquet, Margot
Kiliszek, Małgorzata
Osella, Silvio
Izzo, Miriam
Sar, Jarosław
Harputlu, Ersan
Unlu, C. Gokhan
Trzaskowski, Bartosz
Ocakoglu, Kasim
Kargul, Joanna
author_facet Jacquet, Margot
Kiliszek, Małgorzata
Osella, Silvio
Izzo, Miriam
Sar, Jarosław
Harputlu, Ersan
Unlu, C. Gokhan
Trzaskowski, Bartosz
Ocakoglu, Kasim
Kargul, Joanna
author_sort Jacquet, Margot
collection PubMed
description Construction of green nanodevices characterised by excellent long-term performance remains high priority in biotechnology and medicine. Tight electronic coupling of proteins to electrodes is essential for efficient direct electron transfer (DET) across the bio-organic interface. Rational modulation of this coupling depends on in-depth understanding of the intricate properties of interfacial DET. Here, we dissect the molecular mechanism of DET in a hybrid nanodevice in which a model electroactive protein, cytochrome c(553) (cyt c(553)), naturally interacting with photosystem I, was interfaced with single layer graphene (SLG) via the conductive self-assembled monolayer (SAM) formed by pyrene–nitrilotriacetic acid (pyr–NTA) molecules chelated to transition metal redox centers. We demonstrate that efficient DET occurs between graphene and cyt c(553) whose kinetics and directionality depends on the metal incorporated into the bio-organic interface: Co enhances the cathodic current from SLG to haem, whereas Ni exerts the opposite effect. QM/MM simulations yield the mechanistic model of interfacial DET based on either tunnelling or hopping of electrons between graphene, pyr–NTA–M(2+) SAM and cyt c(553) depending on the metal in SAM. Considerably different electronic configurations were identified for the interfacial metal redox centers: a closed-shell system for Ni and a radical system for the Co with altered occupancy of HOMO/LUMO levels. The feasibility of fine-tuning the electronic properties of the bio-molecular SAM upon incorporation of various metal centers paves the way for the rational design of the optimal molecular interface between abiotic and biotic components of the viable green hybrid devices, e.g. solar cells, optoelectronic nanosystems and solar-to-fuel assemblies.
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spelling pubmed-90336002022-04-26 Molecular mechanism of direct electron transfer in the robust cytochrome-functionalised graphene nanosystem Jacquet, Margot Kiliszek, Małgorzata Osella, Silvio Izzo, Miriam Sar, Jarosław Harputlu, Ersan Unlu, C. Gokhan Trzaskowski, Bartosz Ocakoglu, Kasim Kargul, Joanna RSC Adv Chemistry Construction of green nanodevices characterised by excellent long-term performance remains high priority in biotechnology and medicine. Tight electronic coupling of proteins to electrodes is essential for efficient direct electron transfer (DET) across the bio-organic interface. Rational modulation of this coupling depends on in-depth understanding of the intricate properties of interfacial DET. Here, we dissect the molecular mechanism of DET in a hybrid nanodevice in which a model electroactive protein, cytochrome c(553) (cyt c(553)), naturally interacting with photosystem I, was interfaced with single layer graphene (SLG) via the conductive self-assembled monolayer (SAM) formed by pyrene–nitrilotriacetic acid (pyr–NTA) molecules chelated to transition metal redox centers. We demonstrate that efficient DET occurs between graphene and cyt c(553) whose kinetics and directionality depends on the metal incorporated into the bio-organic interface: Co enhances the cathodic current from SLG to haem, whereas Ni exerts the opposite effect. QM/MM simulations yield the mechanistic model of interfacial DET based on either tunnelling or hopping of electrons between graphene, pyr–NTA–M(2+) SAM and cyt c(553) depending on the metal in SAM. Considerably different electronic configurations were identified for the interfacial metal redox centers: a closed-shell system for Ni and a radical system for the Co with altered occupancy of HOMO/LUMO levels. The feasibility of fine-tuning the electronic properties of the bio-molecular SAM upon incorporation of various metal centers paves the way for the rational design of the optimal molecular interface between abiotic and biotic components of the viable green hybrid devices, e.g. solar cells, optoelectronic nanosystems and solar-to-fuel assemblies. The Royal Society of Chemistry 2021-05-25 /pmc/articles/PMC9033600/ /pubmed/35478629 http://dx.doi.org/10.1039/d1ra02419a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Jacquet, Margot
Kiliszek, Małgorzata
Osella, Silvio
Izzo, Miriam
Sar, Jarosław
Harputlu, Ersan
Unlu, C. Gokhan
Trzaskowski, Bartosz
Ocakoglu, Kasim
Kargul, Joanna
Molecular mechanism of direct electron transfer in the robust cytochrome-functionalised graphene nanosystem
title Molecular mechanism of direct electron transfer in the robust cytochrome-functionalised graphene nanosystem
title_full Molecular mechanism of direct electron transfer in the robust cytochrome-functionalised graphene nanosystem
title_fullStr Molecular mechanism of direct electron transfer in the robust cytochrome-functionalised graphene nanosystem
title_full_unstemmed Molecular mechanism of direct electron transfer in the robust cytochrome-functionalised graphene nanosystem
title_short Molecular mechanism of direct electron transfer in the robust cytochrome-functionalised graphene nanosystem
title_sort molecular mechanism of direct electron transfer in the robust cytochrome-functionalised graphene nanosystem
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9033600/
https://www.ncbi.nlm.nih.gov/pubmed/35478629
http://dx.doi.org/10.1039/d1ra02419a
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