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The structure of an E. coli tRNA(f)(Met) A(1)–U(72) variant shows an unusual conformation of the A(1)–U(72) base pair

Translation initiation in eukaryotes and archaea involves a methionylated initiator tRNA delivered to the ribosome in a ternary complex with e/aIF2 and GTP. Eukaryotic and archaeal initiator tRNAs contain a highly conserved A(1)–U(72) base pair at the top of the acceptor stem. The importance of this...

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Autores principales: Monestier, Auriane, Aleksandrov, Alexey, Coureux, Pierre-Damien, Panvert, Michel, Mechulam, Yves, Schmitt, Emmanuelle
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory Press 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5393177/
https://www.ncbi.nlm.nih.gov/pubmed/28143889
http://dx.doi.org/10.1261/rna.057877.116
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author Monestier, Auriane
Aleksandrov, Alexey
Coureux, Pierre-Damien
Panvert, Michel
Mechulam, Yves
Schmitt, Emmanuelle
author_facet Monestier, Auriane
Aleksandrov, Alexey
Coureux, Pierre-Damien
Panvert, Michel
Mechulam, Yves
Schmitt, Emmanuelle
author_sort Monestier, Auriane
collection PubMed
description Translation initiation in eukaryotes and archaea involves a methionylated initiator tRNA delivered to the ribosome in a ternary complex with e/aIF2 and GTP. Eukaryotic and archaeal initiator tRNAs contain a highly conserved A(1)–U(72) base pair at the top of the acceptor stem. The importance of this base pair to discriminate initiator tRNAs from elongator tRNAs has been established previously using genetics and biochemistry. However, no structural data illustrating how the A(1)–U(72) base pair participates in the accurate selection of the initiator tRNAs by the translation initiation systems are available. Here, we describe the crystal structure of a mutant E. coli initiator tRNA(f)(Met)A(1)–U(72), aminoacylated with methionine, in which the C(1):A(72) mismatch at the end of the tRNA acceptor stem has been changed to an A(1)–U(72) base pair. Sequence alignments show that the mutant E. coli tRNA is a good mimic of archaeal initiator tRNAs. The crystal structure, determined at 2.8 Å resolution, shows that the A(1)–U(72) pair adopts an unusual arrangement. A(1) is in a syn conformation and forms a single H-bond interaction with U(72). This interaction requires protonation of the N1 atom of A(1). Moreover, the 5′ phosphoryl group folds back into the major groove of the acceptor stem and interacts with the N7 atom of G(2). A possible role of this unusual geometry of the A(1)–U(72) pair in the recognition of the initiator tRNA by its partners during eukaryotic and archaeal translation initiation is discussed.
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spelling pubmed-53931772018-05-01 The structure of an E. coli tRNA(f)(Met) A(1)–U(72) variant shows an unusual conformation of the A(1)–U(72) base pair Monestier, Auriane Aleksandrov, Alexey Coureux, Pierre-Damien Panvert, Michel Mechulam, Yves Schmitt, Emmanuelle RNA Article Translation initiation in eukaryotes and archaea involves a methionylated initiator tRNA delivered to the ribosome in a ternary complex with e/aIF2 and GTP. Eukaryotic and archaeal initiator tRNAs contain a highly conserved A(1)–U(72) base pair at the top of the acceptor stem. The importance of this base pair to discriminate initiator tRNAs from elongator tRNAs has been established previously using genetics and biochemistry. However, no structural data illustrating how the A(1)–U(72) base pair participates in the accurate selection of the initiator tRNAs by the translation initiation systems are available. Here, we describe the crystal structure of a mutant E. coli initiator tRNA(f)(Met)A(1)–U(72), aminoacylated with methionine, in which the C(1):A(72) mismatch at the end of the tRNA acceptor stem has been changed to an A(1)–U(72) base pair. Sequence alignments show that the mutant E. coli tRNA is a good mimic of archaeal initiator tRNAs. The crystal structure, determined at 2.8 Å resolution, shows that the A(1)–U(72) pair adopts an unusual arrangement. A(1) is in a syn conformation and forms a single H-bond interaction with U(72). This interaction requires protonation of the N1 atom of A(1). Moreover, the 5′ phosphoryl group folds back into the major groove of the acceptor stem and interacts with the N7 atom of G(2). A possible role of this unusual geometry of the A(1)–U(72) pair in the recognition of the initiator tRNA by its partners during eukaryotic and archaeal translation initiation is discussed. Cold Spring Harbor Laboratory Press 2017-05 /pmc/articles/PMC5393177/ /pubmed/28143889 http://dx.doi.org/10.1261/rna.057877.116 Text en © 2017 Monestier et al.; Published by Cold Spring Harbor Laboratory Press for the RNA Society http://creativecommons.org/licenses/by-nc/4.0/ This article is distributed exclusively by the RNA Society for the first 12 months after the full-issue publication date (see http://rnajournal.cshlp.org/site/misc/terms.xhtml). After 12 months, it is available under a Creative Commons License (Attribution-NonCommercial 4.0 International), as described at http://creativecommons.org/licenses/by-nc/4.0/.
spellingShingle Article
Monestier, Auriane
Aleksandrov, Alexey
Coureux, Pierre-Damien
Panvert, Michel
Mechulam, Yves
Schmitt, Emmanuelle
The structure of an E. coli tRNA(f)(Met) A(1)–U(72) variant shows an unusual conformation of the A(1)–U(72) base pair
title The structure of an E. coli tRNA(f)(Met) A(1)–U(72) variant shows an unusual conformation of the A(1)–U(72) base pair
title_full The structure of an E. coli tRNA(f)(Met) A(1)–U(72) variant shows an unusual conformation of the A(1)–U(72) base pair
title_fullStr The structure of an E. coli tRNA(f)(Met) A(1)–U(72) variant shows an unusual conformation of the A(1)–U(72) base pair
title_full_unstemmed The structure of an E. coli tRNA(f)(Met) A(1)–U(72) variant shows an unusual conformation of the A(1)–U(72) base pair
title_short The structure of an E. coli tRNA(f)(Met) A(1)–U(72) variant shows an unusual conformation of the A(1)–U(72) base pair
title_sort structure of an e. coli trna(f)(met) a(1)–u(72) variant shows an unusual conformation of the a(1)–u(72) base pair
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5393177/
https://www.ncbi.nlm.nih.gov/pubmed/28143889
http://dx.doi.org/10.1261/rna.057877.116
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