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Hydrogen Bonding Networks Tune Proton-Coupled Redox Steps during the Enzymatic Six-Electron Conversion of Nitrite to Ammonia
[Image: see text] Multielectron multiproton reactions play an important role in both biological systems and chemical reactions involved in energy storage and manipulation. A key strategy employed by nature in achieving such complex chemistry is the use of proton-coupled redox steps. Cytochrome c nit...
Autores principales: | , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
American
Chemical Society
2014
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Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4159211/ https://www.ncbi.nlm.nih.gov/pubmed/25137350 http://dx.doi.org/10.1021/bi500854p |
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author | Judd, Evan T. Stein, Natalia Pacheco, A. Andrew Elliott, Sean J. |
author_facet | Judd, Evan T. Stein, Natalia Pacheco, A. Andrew Elliott, Sean J. |
author_sort | Judd, Evan T. |
collection | PubMed |
description | [Image: see text] Multielectron multiproton reactions play an important role in both biological systems and chemical reactions involved in energy storage and manipulation. A key strategy employed by nature in achieving such complex chemistry is the use of proton-coupled redox steps. Cytochrome c nitrite reductase (ccNiR) catalyzes the six-electron seven-proton reduction of nitrite to ammonia. While a catalytic mechanism for ccNiR has been proposed on the basis of studies combining computation and crystallography, there have been few studies directly addressing the nature of the proton-coupled events that are predicted to occur along the nitrite reduction pathway. Here we use protein film voltammetry to directly interrogate the proton-coupled steps that occur during nitrite reduction by ccNiR. We find that conversion of nitrite to ammonia by ccNiR adsorbed to graphite electrodes is defined by two distinct phases; one is proton-coupled, and the other is not. Mutation of key active site residues (H257, R103, and Y206) modulates these phases and specifically alters the properties of the detected proton-dependent step but does not inhibit the ability of ccNiR to conduct the full reduction of nitrite to ammonia. We conclude that the active site residues examined are responsible for tuning the protonation steps that occur during catalysis, likely through an extensive hydrogen bonding network, but are not necessarily required for the reaction to proceed. These results provide important insight into how enzymes can specifically tune proton- and electron transfer steps to achieve high turnover numbers in a physiological pH range. |
format | Online Article Text |
id | pubmed-4159211 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2014 |
publisher | American
Chemical Society |
record_format | MEDLINE/PubMed |
spelling | pubmed-41592112015-08-19 Hydrogen Bonding Networks Tune Proton-Coupled Redox Steps during the Enzymatic Six-Electron Conversion of Nitrite to Ammonia Judd, Evan T. Stein, Natalia Pacheco, A. Andrew Elliott, Sean J. Biochemistry [Image: see text] Multielectron multiproton reactions play an important role in both biological systems and chemical reactions involved in energy storage and manipulation. A key strategy employed by nature in achieving such complex chemistry is the use of proton-coupled redox steps. Cytochrome c nitrite reductase (ccNiR) catalyzes the six-electron seven-proton reduction of nitrite to ammonia. While a catalytic mechanism for ccNiR has been proposed on the basis of studies combining computation and crystallography, there have been few studies directly addressing the nature of the proton-coupled events that are predicted to occur along the nitrite reduction pathway. Here we use protein film voltammetry to directly interrogate the proton-coupled steps that occur during nitrite reduction by ccNiR. We find that conversion of nitrite to ammonia by ccNiR adsorbed to graphite electrodes is defined by two distinct phases; one is proton-coupled, and the other is not. Mutation of key active site residues (H257, R103, and Y206) modulates these phases and specifically alters the properties of the detected proton-dependent step but does not inhibit the ability of ccNiR to conduct the full reduction of nitrite to ammonia. We conclude that the active site residues examined are responsible for tuning the protonation steps that occur during catalysis, likely through an extensive hydrogen bonding network, but are not necessarily required for the reaction to proceed. These results provide important insight into how enzymes can specifically tune proton- and electron transfer steps to achieve high turnover numbers in a physiological pH range. American Chemical Society 2014-08-19 2014-09-09 /pmc/articles/PMC4159211/ /pubmed/25137350 http://dx.doi.org/10.1021/bi500854p Text en Copyright © 2014 American Chemical Society Terms of Use (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) |
spellingShingle | Judd, Evan T. Stein, Natalia Pacheco, A. Andrew Elliott, Sean J. Hydrogen Bonding Networks Tune Proton-Coupled Redox Steps during the Enzymatic Six-Electron Conversion of Nitrite to Ammonia |
title | Hydrogen Bonding Networks Tune Proton-Coupled Redox
Steps during the Enzymatic Six-Electron Conversion of Nitrite to Ammonia |
title_full | Hydrogen Bonding Networks Tune Proton-Coupled Redox
Steps during the Enzymatic Six-Electron Conversion of Nitrite to Ammonia |
title_fullStr | Hydrogen Bonding Networks Tune Proton-Coupled Redox
Steps during the Enzymatic Six-Electron Conversion of Nitrite to Ammonia |
title_full_unstemmed | Hydrogen Bonding Networks Tune Proton-Coupled Redox
Steps during the Enzymatic Six-Electron Conversion of Nitrite to Ammonia |
title_short | Hydrogen Bonding Networks Tune Proton-Coupled Redox
Steps during the Enzymatic Six-Electron Conversion of Nitrite to Ammonia |
title_sort | hydrogen bonding networks tune proton-coupled redox
steps during the enzymatic six-electron conversion of nitrite to ammonia |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4159211/ https://www.ncbi.nlm.nih.gov/pubmed/25137350 http://dx.doi.org/10.1021/bi500854p |
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