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Crystal structure of schizorhodopsin reveals mechanism of inward proton pumping

Schizorhodopsins (SzRs), a new rhodopsin family identified in Asgard archaea, are phylogenetically located at an intermediate position between type-1 microbial rhodopsins and heliorhodopsins. SzRs work as light-driven inward H(+) pumps as xenorhodopsins in bacteria. Although E81 plays an essential r...

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Autores principales: Higuchi, Akimitsu, Shihoya, Wataru, Konno, Masae, Ikuta, Tatsuya, Kandori, Hideki, Inoue, Keiichi, Nureki, Osamu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8040798/
https://www.ncbi.nlm.nih.gov/pubmed/33790007
http://dx.doi.org/10.1073/pnas.2016328118
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author Higuchi, Akimitsu
Shihoya, Wataru
Konno, Masae
Ikuta, Tatsuya
Kandori, Hideki
Inoue, Keiichi
Nureki, Osamu
author_facet Higuchi, Akimitsu
Shihoya, Wataru
Konno, Masae
Ikuta, Tatsuya
Kandori, Hideki
Inoue, Keiichi
Nureki, Osamu
author_sort Higuchi, Akimitsu
collection PubMed
description Schizorhodopsins (SzRs), a new rhodopsin family identified in Asgard archaea, are phylogenetically located at an intermediate position between type-1 microbial rhodopsins and heliorhodopsins. SzRs work as light-driven inward H(+) pumps as xenorhodopsins in bacteria. Although E81 plays an essential role in inward H(+) release, the H(+) is not metastably trapped in such a putative H(+) acceptor, unlike the other H(+) pumps. It remains elusive why SzR exhibits different kinetic behaviors in H(+) release. Here, we report the crystal structure of SzR AM_5_00977 at 2.1 Å resolution. The SzR structure superimposes well on that of bacteriorhodopsin rather than heliorhodopsin, suggesting that SzRs are classified with type-1 rhodopsins. The structure-based mutagenesis study demonstrated that the residues N100 and V103 around the β-ionone ring are essential for color tuning in SzRs. The cytoplasmic parts of transmembrane helices 2, 6, and 7 are shorter than those in the other microbial rhodopsins, and thus E81 is located near the cytosol and easily exposed to the solvent by light-induced structural change. We propose a model of untrapped inward H(+) release; H(+) is released through the water-mediated transport network from the retinal Schiff base to the cytosol by the side of E81. Moreover, most residues on the H(+) transport pathway are not conserved between SzRs and xenorhodopsins, suggesting that they have entirely different inward H(+) release mechanisms.
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spelling pubmed-80407982021-04-20 Crystal structure of schizorhodopsin reveals mechanism of inward proton pumping Higuchi, Akimitsu Shihoya, Wataru Konno, Masae Ikuta, Tatsuya Kandori, Hideki Inoue, Keiichi Nureki, Osamu Proc Natl Acad Sci U S A Biological Sciences Schizorhodopsins (SzRs), a new rhodopsin family identified in Asgard archaea, are phylogenetically located at an intermediate position between type-1 microbial rhodopsins and heliorhodopsins. SzRs work as light-driven inward H(+) pumps as xenorhodopsins in bacteria. Although E81 plays an essential role in inward H(+) release, the H(+) is not metastably trapped in such a putative H(+) acceptor, unlike the other H(+) pumps. It remains elusive why SzR exhibits different kinetic behaviors in H(+) release. Here, we report the crystal structure of SzR AM_5_00977 at 2.1 Å resolution. The SzR structure superimposes well on that of bacteriorhodopsin rather than heliorhodopsin, suggesting that SzRs are classified with type-1 rhodopsins. The structure-based mutagenesis study demonstrated that the residues N100 and V103 around the β-ionone ring are essential for color tuning in SzRs. The cytoplasmic parts of transmembrane helices 2, 6, and 7 are shorter than those in the other microbial rhodopsins, and thus E81 is located near the cytosol and easily exposed to the solvent by light-induced structural change. We propose a model of untrapped inward H(+) release; H(+) is released through the water-mediated transport network from the retinal Schiff base to the cytosol by the side of E81. Moreover, most residues on the H(+) transport pathway are not conserved between SzRs and xenorhodopsins, suggesting that they have entirely different inward H(+) release mechanisms. National Academy of Sciences 2021-04-06 2021-03-31 /pmc/articles/PMC8040798/ /pubmed/33790007 http://dx.doi.org/10.1073/pnas.2016328118 Text en Copyright © 2021 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/This open access article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Biological Sciences
Higuchi, Akimitsu
Shihoya, Wataru
Konno, Masae
Ikuta, Tatsuya
Kandori, Hideki
Inoue, Keiichi
Nureki, Osamu
Crystal structure of schizorhodopsin reveals mechanism of inward proton pumping
title Crystal structure of schizorhodopsin reveals mechanism of inward proton pumping
title_full Crystal structure of schizorhodopsin reveals mechanism of inward proton pumping
title_fullStr Crystal structure of schizorhodopsin reveals mechanism of inward proton pumping
title_full_unstemmed Crystal structure of schizorhodopsin reveals mechanism of inward proton pumping
title_short Crystal structure of schizorhodopsin reveals mechanism of inward proton pumping
title_sort crystal structure of schizorhodopsin reveals mechanism of inward proton pumping
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8040798/
https://www.ncbi.nlm.nih.gov/pubmed/33790007
http://dx.doi.org/10.1073/pnas.2016328118
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