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Crystallographic characterization of the high-potential iron-sulfur protein in the oxidized state at 0.8 Å resolution

High-potential iron-sulfur protein (HiPIP) is a soluble electron carrier protein of photosynthetic bacteria with an Fe(4)S(4) cluster. Although structural changes accompanying the electron transfer are important for understanding of the functional mechanism, the changes have not been clarified in su...

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Autores principales: Ohno, Hiraku, Takeda, Kazuki, Niwa, Satomi, Tsujinaka, Tomotaka, Hanazono, Yuya, Hirano, Yu, Miki, Kunio
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5439954/
https://www.ncbi.nlm.nih.gov/pubmed/28542634
http://dx.doi.org/10.1371/journal.pone.0178183
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author Ohno, Hiraku
Takeda, Kazuki
Niwa, Satomi
Tsujinaka, Tomotaka
Hanazono, Yuya
Hirano, Yu
Miki, Kunio
author_facet Ohno, Hiraku
Takeda, Kazuki
Niwa, Satomi
Tsujinaka, Tomotaka
Hanazono, Yuya
Hirano, Yu
Miki, Kunio
author_sort Ohno, Hiraku
collection PubMed
description High-potential iron-sulfur protein (HiPIP) is a soluble electron carrier protein of photosynthetic bacteria with an Fe(4)S(4) cluster. Although structural changes accompanying the electron transfer are important for understanding of the functional mechanism, the changes have not been clarified in sufficient detail. We previously reported the high-resolution crystal structures of HiPIP from a thermophilic purple bacterium Thermochromatium tepidum in the reduced state. In order to perform a detailed comparison between the structures in different redox states, the oxidized structure should also be revealed at high resolution. Therefore, in the present study we performed a crystallographic analysis of oxidized HiPIP and a structural comparison with the reduced form at a high resolution of 0.8 Å. The comparison highlighted small but significant contraction in the iron-sulfur cluster. The changes in Fe-S bond lengths were similar to that predicted by theoretical calculation, although some discrepancies were also found. Almost distances between the sulfur atoms of the iron-sulfur cluster and the protein environment are elongated upon the oxidation. Positional changes of hydrogen atoms in the protein environment, such as on the amide-hydrogen of Cys75 in the proximity of the iron-sulfur cluster, were also observed in the accurate analyses. None of the water molecules exhibited significant changes in position or anisotropy of atomic displacement parameter between the two states, while the orientations of some water molecules were different.
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spelling pubmed-54399542017-06-06 Crystallographic characterization of the high-potential iron-sulfur protein in the oxidized state at 0.8 Å resolution Ohno, Hiraku Takeda, Kazuki Niwa, Satomi Tsujinaka, Tomotaka Hanazono, Yuya Hirano, Yu Miki, Kunio PLoS One Research Article High-potential iron-sulfur protein (HiPIP) is a soluble electron carrier protein of photosynthetic bacteria with an Fe(4)S(4) cluster. Although structural changes accompanying the electron transfer are important for understanding of the functional mechanism, the changes have not been clarified in sufficient detail. We previously reported the high-resolution crystal structures of HiPIP from a thermophilic purple bacterium Thermochromatium tepidum in the reduced state. In order to perform a detailed comparison between the structures in different redox states, the oxidized structure should also be revealed at high resolution. Therefore, in the present study we performed a crystallographic analysis of oxidized HiPIP and a structural comparison with the reduced form at a high resolution of 0.8 Å. The comparison highlighted small but significant contraction in the iron-sulfur cluster. The changes in Fe-S bond lengths were similar to that predicted by theoretical calculation, although some discrepancies were also found. Almost distances between the sulfur atoms of the iron-sulfur cluster and the protein environment are elongated upon the oxidation. Positional changes of hydrogen atoms in the protein environment, such as on the amide-hydrogen of Cys75 in the proximity of the iron-sulfur cluster, were also observed in the accurate analyses. None of the water molecules exhibited significant changes in position or anisotropy of atomic displacement parameter between the two states, while the orientations of some water molecules were different. Public Library of Science 2017-05-22 /pmc/articles/PMC5439954/ /pubmed/28542634 http://dx.doi.org/10.1371/journal.pone.0178183 Text en © 2017 Ohno et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Ohno, Hiraku
Takeda, Kazuki
Niwa, Satomi
Tsujinaka, Tomotaka
Hanazono, Yuya
Hirano, Yu
Miki, Kunio
Crystallographic characterization of the high-potential iron-sulfur protein in the oxidized state at 0.8 Å resolution
title Crystallographic characterization of the high-potential iron-sulfur protein in the oxidized state at 0.8 Å resolution
title_full Crystallographic characterization of the high-potential iron-sulfur protein in the oxidized state at 0.8 Å resolution
title_fullStr Crystallographic characterization of the high-potential iron-sulfur protein in the oxidized state at 0.8 Å resolution
title_full_unstemmed Crystallographic characterization of the high-potential iron-sulfur protein in the oxidized state at 0.8 Å resolution
title_short Crystallographic characterization of the high-potential iron-sulfur protein in the oxidized state at 0.8 Å resolution
title_sort crystallographic characterization of the high-potential iron-sulfur protein in the oxidized state at 0.8 å resolution
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5439954/
https://www.ncbi.nlm.nih.gov/pubmed/28542634
http://dx.doi.org/10.1371/journal.pone.0178183
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