Literature DB >> 31554965

Crystal structure of heliorhodopsin.

Wataru Shihoya1, Keiichi Inoue2,3,4,5, Manish Singh2, Masae Konno2, Shoko Hososhima2, Keitaro Yamashita1,6, Kento Ikeda7, Akimitsu Higuchi1, Tamaki Izume1, Sae Okazaki1, Masanori Hashimoto2, Ritsu Mizutori2, Sahoko Tomida2, Yumeka Yamauchi2, Rei Abe-Yoshizumi2, Kota Katayama2,3, Satoshi P Tsunoda2,5, Mikihiro Shibata8,9, Yuji Furutani3,10,11, Alina Pushkarev12, Oded Béjà12, Takayuki Uchihashi13,14, Hideki Kandori15,16, Osamu Nureki17.   

Abstract

Heliorhodopsins (HeRs) are a family of rhodopsins that was recently discovered using functional metagenomics1. They are widely present in bacteria, archaea, algae and algal viruses2,3. Although HeRs have seven predicted transmembrane helices and an all-trans retinal chromophore as in the type-1 (microbial) rhodopsin, they display less than 15% sequence identity with type-1 and type-2 (animal) rhodopsins. HeRs also exhibit the reverse orientation in the membrane compared with the other rhodopsins. Owing to the lack of structural information, little is known about the overall fold and the photoactivation mechanism of HeRs. Here we present the 2.4-Å-resolution structure of HeR from an uncultured Thermoplasmatales archaeon SG8-52-1 (GenBank sequence ID LSSD01000000). Structural and biophysical analyses reveal the similarities and differences between HeRs and type-1 microbial rhodopsins. The overall fold of HeR is similar to that of bacteriorhodopsin. A linear hydrophobic pocket in HeR accommodates a retinal configuration and isomerization as in the type-1 rhodopsin, although most of the residues constituting the pocket are divergent. Hydrophobic residues fill the space in the extracellular half of HeR, preventing the permeation of protons and ions. The structure reveals an unexpected lateral fenestration above the β-ionone ring of the retinal chromophore, which has a critical role in capturing retinal from environment sources. Our study increases the understanding of the functions of HeRs, and the structural similarity and diversity among the microbial rhodopsins.

Entities:  

Mesh:

Substances:

Year:  2019        PMID: 31554965     DOI: 10.1038/s41586-019-1604-6

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  18 in total

1.  Crystallization of Microbial Rhodopsins.

Authors:  Kirill Kovalev; Roman Astashkin; Valentin Gordeliy; Vadim Cherezov
Journal:  Methods Mol Biol       Date:  2022

2.  Microbial Rhodopsins.

Authors:  Valentin Gordeliy; Kirill Kovalev; Ernst Bamberg; Francisco Rodriguez-Valera; Egor Zinovev; Dmitrii Zabelskii; Alexey Alekseev; Riccardo Rosselli; Ivan Gushchin; Ivan Okhrimenko
Journal:  Methods Mol Biol       Date:  2022

3.  Rhodopsin-bestrophin fusion proteins from unicellular algae form gigantic pentameric ion channels.

Authors:  Andrey Rozenberg; Igor Kaczmarczyk; Donna Matzov; Johannes Vierock; Takashi Nagata; Masahiro Sugiura; Kota Katayama; Yuma Kawasaki; Masae Konno; Yujiro Nagasaka; Mako Aoyama; Ishita Das; Efrat Pahima; Jonathan Church; Suliman Adam; Veniamin A Borin; Ariel Chazan; Sandra Augustin; Jonas Wietek; Julien Dine; Yoav Peleg; Akira Kawanabe; Yuichiro Fujiwara; Ofer Yizhar; Mordechai Sheves; Igor Schapiro; Yuji Furutani; Hideki Kandori; Keiichi Inoue; Peter Hegemann; Oded Béjà; Moran Shalev-Benami
Journal:  Nat Struct Mol Biol       Date:  2022-06-16       Impact factor: 18.361

Review 4.  Rhodopsins: An Excitingly Versatile Protein Species for Research, Development and Creative Engineering.

Authors:  Willem J de Grip; Srividya Ganapathy
Journal:  Front Chem       Date:  2022-06-22       Impact factor: 5.545

Review 5.  Phospholipid Scrambling by G Protein-Coupled Receptors.

Authors:  George Khelashvili; Anant K Menon
Journal:  Annu Rev Biophys       Date:  2021-12-21       Impact factor: 19.763

6.  Structural basis for channel conduction in the pump-like channelrhodopsin ChRmine.

Authors:  Koichiro E Kishi; Yoon Seok Kim; Masahiro Fukuda; Masatoshi Inoue; Tsukasa Kusakizako; Peter Y Wang; Charu Ramakrishnan; Eamon F X Byrne; Elina Thadhani; Joseph M Paggi; Toshiki E Matsui; Keitaro Yamashita; Takashi Nagata; Masae Konno; Sean Quirin; Maisie Lo; Tyler Benster; Tomoko Uemura; Kehong Liu; Mikihiro Shibata; Norimichi Nomura; So Iwata; Osamu Nureki; Ron O Dror; Keiichi Inoue; Karl Deisseroth; Hideaki E Kato
Journal:  Cell       Date:  2022-02-02       Impact factor: 66.850

7.  High-resolution structural insights into the heliorhodopsin family.

Authors:  K Kovalev; D Volkov; R Astashkin; A Alekseev; I Gushchin; J M Haro-Moreno; I Chizhov; S Siletsky; M Mamedov; A Rogachev; T Balandin; V Borshchevskiy; A Popov; G Bourenkov; E Bamberg; F Rodriguez-Valera; G Büldt; V Gordeliy
Journal:  Proc Natl Acad Sci U S A       Date:  2020-02-07       Impact factor: 11.205

8.  Color-tuning of natural variants of heliorhodopsin.

Authors:  Se-Hwan Kim; Kimleng Chuon; Shin-Gyu Cho; Ahreum Choi; Seanghun Meas; Hyun-Suk Cho; Kwang-Hwan Jung
Journal:  Sci Rep       Date:  2021-01-13       Impact factor: 4.379

9.  Comparative population genomic analyses of transporters within the Asgard archaeal superphylum.

Authors:  Steven Russum; Katie Jing Kay Lam; Nicholas Alan Wong; Vasu Iddamsetty; Kevin J Hendargo; Jianing Wang; Aditi Dubey; Yichi Zhang; Arturo Medrano-Soto; Milton H Saier
Journal:  PLoS One       Date:  2021-03-26       Impact factor: 3.240

10.  Structure-based insights into evolution of rhodopsins.

Authors:  Dmitrii Zabelskii; Natalia Dmitrieva; Oleksandr Volkov; Vitaly Shevchenko; Kirill Kovalev; Taras Balandin; Dmytro Soloviov; Roman Astashkin; Egor Zinovev; Alexey Alekseev; Ekaterina Round; Vitaly Polovinkin; Igor Chizhov; Andrey Rogachev; Ivan Okhrimenko; Valentin Borshchevskiy; Vladimir Chupin; Georg Büldt; Natalia Yutin; Ernst Bamberg; Eugene Koonin; Valentin Gordeliy
Journal:  Commun Biol       Date:  2021-06-30
View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.