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CO(2)/HCO(3)(−) Accelerates Iron Reduction through Phenolic Compounds

Iron is a vital mineral for almost all living organisms and has a pivotal role in central metabolism. Despite its great abundance on earth, the accessibility for microorganisms is often limited, because poorly soluble ferric iron (Fe(3+)) is the predominant oxidation state in an aerobic environment....

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Autores principales: Müller, Felix, Rapp, Johanna, Hacker, Anna-Lena, Feith, André, Takors, Ralf, Blombach, Bastian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7064749/
https://www.ncbi.nlm.nih.gov/pubmed/32156807
http://dx.doi.org/10.1128/mBio.00085-20
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author Müller, Felix
Rapp, Johanna
Hacker, Anna-Lena
Feith, André
Takors, Ralf
Blombach, Bastian
author_facet Müller, Felix
Rapp, Johanna
Hacker, Anna-Lena
Feith, André
Takors, Ralf
Blombach, Bastian
author_sort Müller, Felix
collection PubMed
description Iron is a vital mineral for almost all living organisms and has a pivotal role in central metabolism. Despite its great abundance on earth, the accessibility for microorganisms is often limited, because poorly soluble ferric iron (Fe(3+)) is the predominant oxidation state in an aerobic environment. Hence, the reduction of Fe(3+) is of essential importance to meet the cellular demand of ferrous iron (Fe(2+)) but might become detrimental as excessive amounts of intracellular Fe(2+) tend to undergo the cytotoxic Fenton reaction in the presence of hydrogen peroxide. We demonstrate that the complex formation rate of Fe(3+) and phenolic compounds like protocatechuic acid was increased by 46% in the presence of HCO(3)(−) and thus accelerated the subsequent redox reaction, yielding reduced Fe(2+). Consequently, elevated CO(2)/HCO(3)(−) levels increased the intracellular Fe(2+) availability, which resulted in at least 50% higher biomass-specific fluorescence of a DtxR-based Corynebacterium glutamicum reporter strain, and stimulated growth. Since the increased Fe(2+) availability was attributed to the interaction of HCO(3)(−) and chemical iron reduction, the abiotic effect postulated in this study is of general relevance in geochemical and biological environments.
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spelling pubmed-70647492020-03-13 CO(2)/HCO(3)(−) Accelerates Iron Reduction through Phenolic Compounds Müller, Felix Rapp, Johanna Hacker, Anna-Lena Feith, André Takors, Ralf Blombach, Bastian mBio Research Article Iron is a vital mineral for almost all living organisms and has a pivotal role in central metabolism. Despite its great abundance on earth, the accessibility for microorganisms is often limited, because poorly soluble ferric iron (Fe(3+)) is the predominant oxidation state in an aerobic environment. Hence, the reduction of Fe(3+) is of essential importance to meet the cellular demand of ferrous iron (Fe(2+)) but might become detrimental as excessive amounts of intracellular Fe(2+) tend to undergo the cytotoxic Fenton reaction in the presence of hydrogen peroxide. We demonstrate that the complex formation rate of Fe(3+) and phenolic compounds like protocatechuic acid was increased by 46% in the presence of HCO(3)(−) and thus accelerated the subsequent redox reaction, yielding reduced Fe(2+). Consequently, elevated CO(2)/HCO(3)(−) levels increased the intracellular Fe(2+) availability, which resulted in at least 50% higher biomass-specific fluorescence of a DtxR-based Corynebacterium glutamicum reporter strain, and stimulated growth. Since the increased Fe(2+) availability was attributed to the interaction of HCO(3)(−) and chemical iron reduction, the abiotic effect postulated in this study is of general relevance in geochemical and biological environments. American Society for Microbiology 2020-03-10 /pmc/articles/PMC7064749/ /pubmed/32156807 http://dx.doi.org/10.1128/mBio.00085-20 Text en Copyright © 2020 Müller et al. https://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Müller, Felix
Rapp, Johanna
Hacker, Anna-Lena
Feith, André
Takors, Ralf
Blombach, Bastian
CO(2)/HCO(3)(−) Accelerates Iron Reduction through Phenolic Compounds
title CO(2)/HCO(3)(−) Accelerates Iron Reduction through Phenolic Compounds
title_full CO(2)/HCO(3)(−) Accelerates Iron Reduction through Phenolic Compounds
title_fullStr CO(2)/HCO(3)(−) Accelerates Iron Reduction through Phenolic Compounds
title_full_unstemmed CO(2)/HCO(3)(−) Accelerates Iron Reduction through Phenolic Compounds
title_short CO(2)/HCO(3)(−) Accelerates Iron Reduction through Phenolic Compounds
title_sort co(2)/hco(3)(−) accelerates iron reduction through phenolic compounds
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7064749/
https://www.ncbi.nlm.nih.gov/pubmed/32156807
http://dx.doi.org/10.1128/mBio.00085-20
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