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E. coli elongation factor Tu bound to a GTP analogue displays an open conformation equivalent to the GDP-bound form

According to the traditional view, GTPases act as molecular switches, which cycle between distinct ‘on’ and ‘off’ conformations bound to GTP and GDP, respectively. Translation elongation factor EF-Tu is a GTPase essential for prokaryotic protein synthesis. In its GTP-bound form, EF-Tu delivers amino...

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Autores principales: Johansen, Jesper S, Kavaliauskas, Darius, Pfeil, Shawn H, Blaise, Mickaël, Cooperman, Barry S, Goldman, Yale E, Thirup, Søren S, Knudsen, Charlotte R
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6144822/
https://www.ncbi.nlm.nih.gov/pubmed/30107565
http://dx.doi.org/10.1093/nar/gky697
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author Johansen, Jesper S
Kavaliauskas, Darius
Pfeil, Shawn H
Blaise, Mickaël
Cooperman, Barry S
Goldman, Yale E
Thirup, Søren S
Knudsen, Charlotte R
author_facet Johansen, Jesper S
Kavaliauskas, Darius
Pfeil, Shawn H
Blaise, Mickaël
Cooperman, Barry S
Goldman, Yale E
Thirup, Søren S
Knudsen, Charlotte R
author_sort Johansen, Jesper S
collection PubMed
description According to the traditional view, GTPases act as molecular switches, which cycle between distinct ‘on’ and ‘off’ conformations bound to GTP and GDP, respectively. Translation elongation factor EF-Tu is a GTPase essential for prokaryotic protein synthesis. In its GTP-bound form, EF-Tu delivers aminoacylated tRNAs to the ribosome as a ternary complex. GTP hydrolysis is thought to cause the release of EF-Tu from aminoacyl-tRNA and the ribosome due to a dramatic conformational change following P(i) release. Here, the crystal structure of Escherichia coli EF-Tu in complex with a non-hydrolysable GTP analogue (GDPNP) has been determined. Remarkably, the overall conformation of EF-Tu·GDPNP displays the classical, open GDP-bound conformation. This is in accordance with an emerging view that the identity of the bound guanine nucleotide is not ‘locking’ the GTPase in a fixed conformation. Using a single-molecule approach, the conformational dynamics of various ligand-bound forms of EF-Tu were probed in solution by fluorescence resonance energy transfer. The results suggest that EF-Tu, free in solution, may sample a wider set of conformations than the structurally well-defined GTP- and GDP-forms known from previous X-ray crystallographic studies. Only upon binding, as a ternary complex, to the mRNA-programmed ribosome, is the well-known, closed GTP-bound conformation, observed.
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spelling pubmed-61448222018-09-25 E. coli elongation factor Tu bound to a GTP analogue displays an open conformation equivalent to the GDP-bound form Johansen, Jesper S Kavaliauskas, Darius Pfeil, Shawn H Blaise, Mickaël Cooperman, Barry S Goldman, Yale E Thirup, Søren S Knudsen, Charlotte R Nucleic Acids Res Structural Biology According to the traditional view, GTPases act as molecular switches, which cycle between distinct ‘on’ and ‘off’ conformations bound to GTP and GDP, respectively. Translation elongation factor EF-Tu is a GTPase essential for prokaryotic protein synthesis. In its GTP-bound form, EF-Tu delivers aminoacylated tRNAs to the ribosome as a ternary complex. GTP hydrolysis is thought to cause the release of EF-Tu from aminoacyl-tRNA and the ribosome due to a dramatic conformational change following P(i) release. Here, the crystal structure of Escherichia coli EF-Tu in complex with a non-hydrolysable GTP analogue (GDPNP) has been determined. Remarkably, the overall conformation of EF-Tu·GDPNP displays the classical, open GDP-bound conformation. This is in accordance with an emerging view that the identity of the bound guanine nucleotide is not ‘locking’ the GTPase in a fixed conformation. Using a single-molecule approach, the conformational dynamics of various ligand-bound forms of EF-Tu were probed in solution by fluorescence resonance energy transfer. The results suggest that EF-Tu, free in solution, may sample a wider set of conformations than the structurally well-defined GTP- and GDP-forms known from previous X-ray crystallographic studies. Only upon binding, as a ternary complex, to the mRNA-programmed ribosome, is the well-known, closed GTP-bound conformation, observed. Oxford University Press 2018-09-19 2018-08-11 /pmc/articles/PMC6144822/ /pubmed/30107565 http://dx.doi.org/10.1093/nar/gky697 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 Non-Commercial 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
Johansen, Jesper S
Kavaliauskas, Darius
Pfeil, Shawn H
Blaise, Mickaël
Cooperman, Barry S
Goldman, Yale E
Thirup, Søren S
Knudsen, Charlotte R
E. coli elongation factor Tu bound to a GTP analogue displays an open conformation equivalent to the GDP-bound form
title E. coli elongation factor Tu bound to a GTP analogue displays an open conformation equivalent to the GDP-bound form
title_full E. coli elongation factor Tu bound to a GTP analogue displays an open conformation equivalent to the GDP-bound form
title_fullStr E. coli elongation factor Tu bound to a GTP analogue displays an open conformation equivalent to the GDP-bound form
title_full_unstemmed E. coli elongation factor Tu bound to a GTP analogue displays an open conformation equivalent to the GDP-bound form
title_short E. coli elongation factor Tu bound to a GTP analogue displays an open conformation equivalent to the GDP-bound form
title_sort e. coli elongation factor tu bound to a gtp analogue displays an open conformation equivalent to the gdp-bound form
topic Structural Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6144822/
https://www.ncbi.nlm.nih.gov/pubmed/30107565
http://dx.doi.org/10.1093/nar/gky697
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