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Water-Activated Semiquinone Formation and Carboxylic Acid Dissociation in Melanin Revealed by Infrared Spectroscopy

Eumelanin is a widespread biomacromolecule pigment in the biosphere and has been widely investigated for numerous bioelectronics and energetic applications. Many of these applications depend on eumelanin’s ability to conduct proton current at various levels of hydration. The origin of this behavior...

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Autores principales: Bedran, Zakhar V., Zhukov, Sergey S., Abramov, Pavel A., Tyurenkov, Ilya O., Gorshunov, Boris P., Mostert, A. Bernardus, Motovilov, Konstantin A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8705668/
https://www.ncbi.nlm.nih.gov/pubmed/34960952
http://dx.doi.org/10.3390/polym13244403
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author Bedran, Zakhar V.
Zhukov, Sergey S.
Abramov, Pavel A.
Tyurenkov, Ilya O.
Gorshunov, Boris P.
Mostert, A. Bernardus
Motovilov, Konstantin A.
author_facet Bedran, Zakhar V.
Zhukov, Sergey S.
Abramov, Pavel A.
Tyurenkov, Ilya O.
Gorshunov, Boris P.
Mostert, A. Bernardus
Motovilov, Konstantin A.
author_sort Bedran, Zakhar V.
collection PubMed
description Eumelanin is a widespread biomacromolecule pigment in the biosphere and has been widely investigated for numerous bioelectronics and energetic applications. Many of these applications depend on eumelanin’s ability to conduct proton current at various levels of hydration. The origin of this behavior is connected to a comproportionation reaction between oxidized and reduced monomer moieties and water. A hydration-dependent FTIR spectroscopic study on eumelanin is presented herein, which allows for the first time tracking the comproportionation reaction via the gradual increase of the overall aromaticity of melanin monomers in the course of hydration. We identified spectral features associated with the presence of specific “one and a half” C𝌁O bonds, typical for o-semiquinones. Signatures of semiquinone monomers with internal hydrogen bonds and that carboxylic groups, in contrast to semiquinones, begin to dissociate at the very beginning of melanin hydration were indicated. As such, we suggest a modification to the common hydration-dependent conductivity mechanism and propose that the conductivity at low hydration is dominated by carboxylic acid protons, whereas higher hydration levels manifest semiquinone protons.
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spelling pubmed-87056682021-12-25 Water-Activated Semiquinone Formation and Carboxylic Acid Dissociation in Melanin Revealed by Infrared Spectroscopy Bedran, Zakhar V. Zhukov, Sergey S. Abramov, Pavel A. Tyurenkov, Ilya O. Gorshunov, Boris P. Mostert, A. Bernardus Motovilov, Konstantin A. Polymers (Basel) Article Eumelanin is a widespread biomacromolecule pigment in the biosphere and has been widely investigated for numerous bioelectronics and energetic applications. Many of these applications depend on eumelanin’s ability to conduct proton current at various levels of hydration. The origin of this behavior is connected to a comproportionation reaction between oxidized and reduced monomer moieties and water. A hydration-dependent FTIR spectroscopic study on eumelanin is presented herein, which allows for the first time tracking the comproportionation reaction via the gradual increase of the overall aromaticity of melanin monomers in the course of hydration. We identified spectral features associated with the presence of specific “one and a half” C𝌁O bonds, typical for o-semiquinones. Signatures of semiquinone monomers with internal hydrogen bonds and that carboxylic groups, in contrast to semiquinones, begin to dissociate at the very beginning of melanin hydration were indicated. As such, we suggest a modification to the common hydration-dependent conductivity mechanism and propose that the conductivity at low hydration is dominated by carboxylic acid protons, whereas higher hydration levels manifest semiquinone protons. MDPI 2021-12-15 /pmc/articles/PMC8705668/ /pubmed/34960952 http://dx.doi.org/10.3390/polym13244403 Text en © 2021 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
Bedran, Zakhar V.
Zhukov, Sergey S.
Abramov, Pavel A.
Tyurenkov, Ilya O.
Gorshunov, Boris P.
Mostert, A. Bernardus
Motovilov, Konstantin A.
Water-Activated Semiquinone Formation and Carboxylic Acid Dissociation in Melanin Revealed by Infrared Spectroscopy
title Water-Activated Semiquinone Formation and Carboxylic Acid Dissociation in Melanin Revealed by Infrared Spectroscopy
title_full Water-Activated Semiquinone Formation and Carboxylic Acid Dissociation in Melanin Revealed by Infrared Spectroscopy
title_fullStr Water-Activated Semiquinone Formation and Carboxylic Acid Dissociation in Melanin Revealed by Infrared Spectroscopy
title_full_unstemmed Water-Activated Semiquinone Formation and Carboxylic Acid Dissociation in Melanin Revealed by Infrared Spectroscopy
title_short Water-Activated Semiquinone Formation and Carboxylic Acid Dissociation in Melanin Revealed by Infrared Spectroscopy
title_sort water-activated semiquinone formation and carboxylic acid dissociation in melanin revealed by infrared spectroscopy
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8705668/
https://www.ncbi.nlm.nih.gov/pubmed/34960952
http://dx.doi.org/10.3390/polym13244403
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