Cargando…
The C-terminal helix of ribosomal P stalk recognizes a hydrophobic groove of elongation factor 2 in a novel fashion
Archaea and eukaryotes have ribosomal P stalks composed of anchor protein P0 and aP1 homodimers (archaea) or P1•P2 heterodimers (eukaryotes). These P stalks recruit translational GTPases to the GTPase-associated center in ribosomes to provide energy during translation. The C-terminus of the P stalk...
Autores principales: | , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Oxford University Press
2018
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5887453/ https://www.ncbi.nlm.nih.gov/pubmed/29471537 http://dx.doi.org/10.1093/nar/gky115 |
_version_ | 1783312306416910336 |
---|---|
author | Tanzawa, Takehito Kato, Koji Girodat, Dylan Ose, Toyoyuki Kumakura, Yuki Wieden, Hans-Joachim Uchiumi, Toshio Tanaka, Isao Yao, Min |
author_facet | Tanzawa, Takehito Kato, Koji Girodat, Dylan Ose, Toyoyuki Kumakura, Yuki Wieden, Hans-Joachim Uchiumi, Toshio Tanaka, Isao Yao, Min |
author_sort | Tanzawa, Takehito |
collection | PubMed |
description | Archaea and eukaryotes have ribosomal P stalks composed of anchor protein P0 and aP1 homodimers (archaea) or P1•P2 heterodimers (eukaryotes). These P stalks recruit translational GTPases to the GTPase-associated center in ribosomes to provide energy during translation. The C-terminus of the P stalk is known to selectively recognize GTPases. Here we investigated the interaction between the P stalk and elongation factor 2 by determining the structures of Pyrococcus horikoshii EF-2 (PhoEF-2) in the Apo-form, GDP-form, GMPPCP-form (GTP-form), and GMPPCP-form bound with 11 C-terminal residues of P1 (P1C11). Helical structured P1C11 binds to a hydrophobic groove between domain G and subdomain G′ of PhoEF-2, where is completely different from that of aEF-1α in terms of both position and sequence, implying that such interaction characteristic may be requested by how GTPases perform their functions on the ribosome. Combining PhoEF-2 P1-binding assays with a structural comparison of current PhoEF-2 structures and molecular dynamics model of a P1C11-bound GDP form, the conformational changes of the P1C11-binding groove in each form suggest that in response to the translation process, the groove has three states: closed, open, and release for recruiting and releasing GTPases. |
format | Online Article Text |
id | pubmed-5887453 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2018 |
publisher | Oxford University Press |
record_format | MEDLINE/PubMed |
spelling | pubmed-58874532018-04-11 The C-terminal helix of ribosomal P stalk recognizes a hydrophobic groove of elongation factor 2 in a novel fashion Tanzawa, Takehito Kato, Koji Girodat, Dylan Ose, Toyoyuki Kumakura, Yuki Wieden, Hans-Joachim Uchiumi, Toshio Tanaka, Isao Yao, Min Nucleic Acids Res Structural Biology Archaea and eukaryotes have ribosomal P stalks composed of anchor protein P0 and aP1 homodimers (archaea) or P1•P2 heterodimers (eukaryotes). These P stalks recruit translational GTPases to the GTPase-associated center in ribosomes to provide energy during translation. The C-terminus of the P stalk is known to selectively recognize GTPases. Here we investigated the interaction between the P stalk and elongation factor 2 by determining the structures of Pyrococcus horikoshii EF-2 (PhoEF-2) in the Apo-form, GDP-form, GMPPCP-form (GTP-form), and GMPPCP-form bound with 11 C-terminal residues of P1 (P1C11). Helical structured P1C11 binds to a hydrophobic groove between domain G and subdomain G′ of PhoEF-2, where is completely different from that of aEF-1α in terms of both position and sequence, implying that such interaction characteristic may be requested by how GTPases perform their functions on the ribosome. Combining PhoEF-2 P1-binding assays with a structural comparison of current PhoEF-2 structures and molecular dynamics model of a P1C11-bound GDP form, the conformational changes of the P1C11-binding groove in each form suggest that in response to the translation process, the groove has three states: closed, open, and release for recruiting and releasing GTPases. Oxford University Press 2018-04-06 2018-02-20 /pmc/articles/PMC5887453/ /pubmed/29471537 http://dx.doi.org/10.1093/nar/gky115 Text en © The Author(s) 2018. Published by Oxford University Press on behalf of Nucleic Acids Research. http://creativecommons.org/licenses/by-nc/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by-nc/4.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited. For commercial re-use, please contact journals.permissions@oup.com |
spellingShingle | Structural Biology Tanzawa, Takehito Kato, Koji Girodat, Dylan Ose, Toyoyuki Kumakura, Yuki Wieden, Hans-Joachim Uchiumi, Toshio Tanaka, Isao Yao, Min The C-terminal helix of ribosomal P stalk recognizes a hydrophobic groove of elongation factor 2 in a novel fashion |
title | The C-terminal helix of ribosomal P stalk recognizes a hydrophobic groove of elongation factor 2 in a novel fashion |
title_full | The C-terminal helix of ribosomal P stalk recognizes a hydrophobic groove of elongation factor 2 in a novel fashion |
title_fullStr | The C-terminal helix of ribosomal P stalk recognizes a hydrophobic groove of elongation factor 2 in a novel fashion |
title_full_unstemmed | The C-terminal helix of ribosomal P stalk recognizes a hydrophobic groove of elongation factor 2 in a novel fashion |
title_short | The C-terminal helix of ribosomal P stalk recognizes a hydrophobic groove of elongation factor 2 in a novel fashion |
title_sort | c-terminal helix of ribosomal p stalk recognizes a hydrophobic groove of elongation factor 2 in a novel fashion |
topic | Structural Biology |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5887453/ https://www.ncbi.nlm.nih.gov/pubmed/29471537 http://dx.doi.org/10.1093/nar/gky115 |
work_keys_str_mv | AT tanzawatakehito thecterminalhelixofribosomalpstalkrecognizesahydrophobicgrooveofelongationfactor2inanovelfashion AT katokoji thecterminalhelixofribosomalpstalkrecognizesahydrophobicgrooveofelongationfactor2inanovelfashion AT girodatdylan thecterminalhelixofribosomalpstalkrecognizesahydrophobicgrooveofelongationfactor2inanovelfashion AT osetoyoyuki thecterminalhelixofribosomalpstalkrecognizesahydrophobicgrooveofelongationfactor2inanovelfashion AT kumakurayuki thecterminalhelixofribosomalpstalkrecognizesahydrophobicgrooveofelongationfactor2inanovelfashion AT wiedenhansjoachim thecterminalhelixofribosomalpstalkrecognizesahydrophobicgrooveofelongationfactor2inanovelfashion AT uchiumitoshio thecterminalhelixofribosomalpstalkrecognizesahydrophobicgrooveofelongationfactor2inanovelfashion AT tanakaisao thecterminalhelixofribosomalpstalkrecognizesahydrophobicgrooveofelongationfactor2inanovelfashion AT yaomin thecterminalhelixofribosomalpstalkrecognizesahydrophobicgrooveofelongationfactor2inanovelfashion AT tanzawatakehito cterminalhelixofribosomalpstalkrecognizesahydrophobicgrooveofelongationfactor2inanovelfashion AT katokoji cterminalhelixofribosomalpstalkrecognizesahydrophobicgrooveofelongationfactor2inanovelfashion AT girodatdylan cterminalhelixofribosomalpstalkrecognizesahydrophobicgrooveofelongationfactor2inanovelfashion AT osetoyoyuki cterminalhelixofribosomalpstalkrecognizesahydrophobicgrooveofelongationfactor2inanovelfashion AT kumakurayuki cterminalhelixofribosomalpstalkrecognizesahydrophobicgrooveofelongationfactor2inanovelfashion AT wiedenhansjoachim cterminalhelixofribosomalpstalkrecognizesahydrophobicgrooveofelongationfactor2inanovelfashion AT uchiumitoshio cterminalhelixofribosomalpstalkrecognizesahydrophobicgrooveofelongationfactor2inanovelfashion AT tanakaisao cterminalhelixofribosomalpstalkrecognizesahydrophobicgrooveofelongationfactor2inanovelfashion AT yaomin cterminalhelixofribosomalpstalkrecognizesahydrophobicgrooveofelongationfactor2inanovelfashion |