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Crystal Structure of Cruxrhodopsin-3 from Haloarcula vallismortis

Cruxrhodopsin-3 (cR3), a retinylidene protein found in the claret membrane of Haloarcula vallismortis, functions as a light-driven proton pump. In this study, the membrane fusion method was applied to crystallize cR3 into a crystal belonging to space group P321. Diffraction data at 2.1 Å resolution...

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Autores principales: Chan, Siu Kit, Kitajima-Ihara, Tomomi, Fujii, Ryudoh, Gotoh, Toshiaki, Murakami, Midori, Ihara, Kunio, Kouyama, Tsutomu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4182453/
https://www.ncbi.nlm.nih.gov/pubmed/25268964
http://dx.doi.org/10.1371/journal.pone.0108362
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author Chan, Siu Kit
Kitajima-Ihara, Tomomi
Fujii, Ryudoh
Gotoh, Toshiaki
Murakami, Midori
Ihara, Kunio
Kouyama, Tsutomu
author_facet Chan, Siu Kit
Kitajima-Ihara, Tomomi
Fujii, Ryudoh
Gotoh, Toshiaki
Murakami, Midori
Ihara, Kunio
Kouyama, Tsutomu
author_sort Chan, Siu Kit
collection PubMed
description Cruxrhodopsin-3 (cR3), a retinylidene protein found in the claret membrane of Haloarcula vallismortis, functions as a light-driven proton pump. In this study, the membrane fusion method was applied to crystallize cR3 into a crystal belonging to space group P321. Diffraction data at 2.1 Å resolution show that cR3 forms a trimeric assembly with bacterioruberin bound to the crevice between neighboring subunits. Although the structure of the proton-release pathway is conserved among proton-pumping archaeal rhodopsins, cR3 possesses the following peculiar structural features: 1) The DE loop is long enough to interact with a neighboring subunit, strengthening the trimeric assembly; 2) Three positive charges are distributed at the cytoplasmic end of helix F, affecting the higher order structure of cR3; 3) The cytoplasmic vicinity of retinal is more rigid in cR3 than in bacteriorhodopsin, affecting the early reaction step in the proton-pumping cycle; 4) the cytoplasmic part of helix E is greatly bent, influencing the proton uptake process. Meanwhile, it was observed that the photobleaching of retinal, which scarcely occurred in the membrane state, became significant when the trimeric assembly of cR3 was dissociated into monomers in the presence of an excess amount of detergent. On the basis of these observations, we discuss structural factors affecting the photostabilities of ion-pumping rhodopsins.
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spelling pubmed-41824532014-10-07 Crystal Structure of Cruxrhodopsin-3 from Haloarcula vallismortis Chan, Siu Kit Kitajima-Ihara, Tomomi Fujii, Ryudoh Gotoh, Toshiaki Murakami, Midori Ihara, Kunio Kouyama, Tsutomu PLoS One Research Article Cruxrhodopsin-3 (cR3), a retinylidene protein found in the claret membrane of Haloarcula vallismortis, functions as a light-driven proton pump. In this study, the membrane fusion method was applied to crystallize cR3 into a crystal belonging to space group P321. Diffraction data at 2.1 Å resolution show that cR3 forms a trimeric assembly with bacterioruberin bound to the crevice between neighboring subunits. Although the structure of the proton-release pathway is conserved among proton-pumping archaeal rhodopsins, cR3 possesses the following peculiar structural features: 1) The DE loop is long enough to interact with a neighboring subunit, strengthening the trimeric assembly; 2) Three positive charges are distributed at the cytoplasmic end of helix F, affecting the higher order structure of cR3; 3) The cytoplasmic vicinity of retinal is more rigid in cR3 than in bacteriorhodopsin, affecting the early reaction step in the proton-pumping cycle; 4) the cytoplasmic part of helix E is greatly bent, influencing the proton uptake process. Meanwhile, it was observed that the photobleaching of retinal, which scarcely occurred in the membrane state, became significant when the trimeric assembly of cR3 was dissociated into monomers in the presence of an excess amount of detergent. On the basis of these observations, we discuss structural factors affecting the photostabilities of ion-pumping rhodopsins. Public Library of Science 2014-09-30 /pmc/articles/PMC4182453/ /pubmed/25268964 http://dx.doi.org/10.1371/journal.pone.0108362 Text en © 2014 Chan 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, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Chan, Siu Kit
Kitajima-Ihara, Tomomi
Fujii, Ryudoh
Gotoh, Toshiaki
Murakami, Midori
Ihara, Kunio
Kouyama, Tsutomu
Crystal Structure of Cruxrhodopsin-3 from Haloarcula vallismortis
title Crystal Structure of Cruxrhodopsin-3 from Haloarcula vallismortis
title_full Crystal Structure of Cruxrhodopsin-3 from Haloarcula vallismortis
title_fullStr Crystal Structure of Cruxrhodopsin-3 from Haloarcula vallismortis
title_full_unstemmed Crystal Structure of Cruxrhodopsin-3 from Haloarcula vallismortis
title_short Crystal Structure of Cruxrhodopsin-3 from Haloarcula vallismortis
title_sort crystal structure of cruxrhodopsin-3 from haloarcula vallismortis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4182453/
https://www.ncbi.nlm.nih.gov/pubmed/25268964
http://dx.doi.org/10.1371/journal.pone.0108362
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