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Conformational Equilibrium of NADPH–Cytochrome P450 Oxidoreductase Is Essential for Heme Oxygenase Reaction

Heme oxygenase (HO) catalyzes heme degradation using electrons supplied by NADPH–cytochrome P450 oxidoreductase (CPR). Electrons from NADPH flow first to FAD, then to FMN, and finally to the heme in the redox partner. Previous biophysical analyses suggest the presence of a dynamic equilibrium betwee...

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Autores principales: Sugishima, Masakazu, Taira, Junichi, Sagara, Tatsuya, Nakao, Ryota, Sato, Hideaki, Noguchi, Masato, Fukuyama, Keiichi, Yamamoto, Ken, Yasunaga, Takuo, Sakamoto, Hiroshi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7464098/
https://www.ncbi.nlm.nih.gov/pubmed/32731542
http://dx.doi.org/10.3390/antiox9080673
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author Sugishima, Masakazu
Taira, Junichi
Sagara, Tatsuya
Nakao, Ryota
Sato, Hideaki
Noguchi, Masato
Fukuyama, Keiichi
Yamamoto, Ken
Yasunaga, Takuo
Sakamoto, Hiroshi
author_facet Sugishima, Masakazu
Taira, Junichi
Sagara, Tatsuya
Nakao, Ryota
Sato, Hideaki
Noguchi, Masato
Fukuyama, Keiichi
Yamamoto, Ken
Yasunaga, Takuo
Sakamoto, Hiroshi
author_sort Sugishima, Masakazu
collection PubMed
description Heme oxygenase (HO) catalyzes heme degradation using electrons supplied by NADPH–cytochrome P450 oxidoreductase (CPR). Electrons from NADPH flow first to FAD, then to FMN, and finally to the heme in the redox partner. Previous biophysical analyses suggest the presence of a dynamic equilibrium between the open and the closed forms of CPR. We previously demonstrated that the open-form stabilized CPR (ΔTGEE) is tightly bound to heme–HO-1, whereas the reduction in heme–HO-1 coupled with ΔTGEE is considerably slow because the distance between FAD and FMN in ΔTGEE is inappropriate for electron transfer from FAD to FMN. Here, we characterized the enzymatic activity and the reduction kinetics of HO-1 using the closed-form stabilized CPR (147CC514). Additionally, we analyzed the interaction between 147CC514 and heme–HO-1 by analytical ultracentrifugation. The results indicate that the interaction between 147CC514 and heme–HO-1 is considerably weak, and the enzymatic activity of 147CC514 is markedly weaker than that of CPR. Further, using cryo-electron microscopy, we confirmed that the crystal structure of ΔTGEE in complex with heme–HO-1 is similar to the relatively low-resolution structure of CPR complexed with heme–HO-1 in solution. We conclude that the “open–close” transition of CPR is indispensable for electron transfer from CPR to heme–HO-1.
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spelling pubmed-74640982020-09-04 Conformational Equilibrium of NADPH–Cytochrome P450 Oxidoreductase Is Essential for Heme Oxygenase Reaction Sugishima, Masakazu Taira, Junichi Sagara, Tatsuya Nakao, Ryota Sato, Hideaki Noguchi, Masato Fukuyama, Keiichi Yamamoto, Ken Yasunaga, Takuo Sakamoto, Hiroshi Antioxidants (Basel) Article Heme oxygenase (HO) catalyzes heme degradation using electrons supplied by NADPH–cytochrome P450 oxidoreductase (CPR). Electrons from NADPH flow first to FAD, then to FMN, and finally to the heme in the redox partner. Previous biophysical analyses suggest the presence of a dynamic equilibrium between the open and the closed forms of CPR. We previously demonstrated that the open-form stabilized CPR (ΔTGEE) is tightly bound to heme–HO-1, whereas the reduction in heme–HO-1 coupled with ΔTGEE is considerably slow because the distance between FAD and FMN in ΔTGEE is inappropriate for electron transfer from FAD to FMN. Here, we characterized the enzymatic activity and the reduction kinetics of HO-1 using the closed-form stabilized CPR (147CC514). Additionally, we analyzed the interaction between 147CC514 and heme–HO-1 by analytical ultracentrifugation. The results indicate that the interaction between 147CC514 and heme–HO-1 is considerably weak, and the enzymatic activity of 147CC514 is markedly weaker than that of CPR. Further, using cryo-electron microscopy, we confirmed that the crystal structure of ΔTGEE in complex with heme–HO-1 is similar to the relatively low-resolution structure of CPR complexed with heme–HO-1 in solution. We conclude that the “open–close” transition of CPR is indispensable for electron transfer from CPR to heme–HO-1. MDPI 2020-07-28 /pmc/articles/PMC7464098/ /pubmed/32731542 http://dx.doi.org/10.3390/antiox9080673 Text en © 2020 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Sugishima, Masakazu
Taira, Junichi
Sagara, Tatsuya
Nakao, Ryota
Sato, Hideaki
Noguchi, Masato
Fukuyama, Keiichi
Yamamoto, Ken
Yasunaga, Takuo
Sakamoto, Hiroshi
Conformational Equilibrium of NADPH–Cytochrome P450 Oxidoreductase Is Essential for Heme Oxygenase Reaction
title Conformational Equilibrium of NADPH–Cytochrome P450 Oxidoreductase Is Essential for Heme Oxygenase Reaction
title_full Conformational Equilibrium of NADPH–Cytochrome P450 Oxidoreductase Is Essential for Heme Oxygenase Reaction
title_fullStr Conformational Equilibrium of NADPH–Cytochrome P450 Oxidoreductase Is Essential for Heme Oxygenase Reaction
title_full_unstemmed Conformational Equilibrium of NADPH–Cytochrome P450 Oxidoreductase Is Essential for Heme Oxygenase Reaction
title_short Conformational Equilibrium of NADPH–Cytochrome P450 Oxidoreductase Is Essential for Heme Oxygenase Reaction
title_sort conformational equilibrium of nadph–cytochrome p450 oxidoreductase is essential for heme oxygenase reaction
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7464098/
https://www.ncbi.nlm.nih.gov/pubmed/32731542
http://dx.doi.org/10.3390/antiox9080673
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