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Rational design and directed evolution of a bacterial-type glutaminyl-tRNA synthetase precursor

Protein biosynthesis requires aminoacyl-transfer RNA (tRNA) synthetases to provide aminoacyl-tRNA substrates for the ribosome. Most bacteria and all archaea lack a glutaminyl-tRNA synthetase (GlnRS); instead, Gln-tRNA(Gln) is produced via an indirect pathway: a glutamyl-tRNA synthetase (GluRS) first...

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Autores principales: Guo, Li-Tao, Helgadóttir, Sunna, Söll, Dieter, Ling, Jiqiang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3439900/
https://www.ncbi.nlm.nih.gov/pubmed/22661575
http://dx.doi.org/10.1093/nar/gks507
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author Guo, Li-Tao
Helgadóttir, Sunna
Söll, Dieter
Ling, Jiqiang
author_facet Guo, Li-Tao
Helgadóttir, Sunna
Söll, Dieter
Ling, Jiqiang
author_sort Guo, Li-Tao
collection PubMed
description Protein biosynthesis requires aminoacyl-transfer RNA (tRNA) synthetases to provide aminoacyl-tRNA substrates for the ribosome. Most bacteria and all archaea lack a glutaminyl-tRNA synthetase (GlnRS); instead, Gln-tRNA(Gln) is produced via an indirect pathway: a glutamyl-tRNA synthetase (GluRS) first attaches glutamate (Glu) to tRNA(Gln), and an amidotransferase converts Glu-tRNA(Gln) to Gln-tRNA(Gln). The human pathogen Helicobacter pylori encodes two GluRS enzymes, with GluRS2 specifically aminoacylating Glu onto tRNA(Gln). It was proposed that GluRS2 is evolving into a bacterial-type GlnRS. Herein, we have combined rational design and directed evolution approaches to test this hypothesis. We show that, in contrast to wild-type (WT) GlnRS2, an engineered enzyme variant (M110) with seven amino acid changes is able to rescue growth of the temperature-sensitive Escherichia coli glnS strain UT172 at its non-permissive temperature. In vitro kinetic analyses reveal that WT GluRS2 selectively acylates Glu over Gln, whereas M110 acylates Gln 4-fold more efficiently than Glu. In addition, M110 hydrolyzes adenosine triphosphate 2.5-fold faster in the presence of Glu than Gln, suggesting that an editing activity has evolved in this variant to discriminate against Glu. These data imply that GluRS2 is a few steps away from evolving into a GlnRS and provides a paradigm for studying aminoacyl-tRNA synthetase evolution using directed engineering approaches.
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spelling pubmed-34399002012-09-12 Rational design and directed evolution of a bacterial-type glutaminyl-tRNA synthetase precursor Guo, Li-Tao Helgadóttir, Sunna Söll, Dieter Ling, Jiqiang Nucleic Acids Res Nucleic Acid Enzymes Protein biosynthesis requires aminoacyl-transfer RNA (tRNA) synthetases to provide aminoacyl-tRNA substrates for the ribosome. Most bacteria and all archaea lack a glutaminyl-tRNA synthetase (GlnRS); instead, Gln-tRNA(Gln) is produced via an indirect pathway: a glutamyl-tRNA synthetase (GluRS) first attaches glutamate (Glu) to tRNA(Gln), and an amidotransferase converts Glu-tRNA(Gln) to Gln-tRNA(Gln). The human pathogen Helicobacter pylori encodes two GluRS enzymes, with GluRS2 specifically aminoacylating Glu onto tRNA(Gln). It was proposed that GluRS2 is evolving into a bacterial-type GlnRS. Herein, we have combined rational design and directed evolution approaches to test this hypothesis. We show that, in contrast to wild-type (WT) GlnRS2, an engineered enzyme variant (M110) with seven amino acid changes is able to rescue growth of the temperature-sensitive Escherichia coli glnS strain UT172 at its non-permissive temperature. In vitro kinetic analyses reveal that WT GluRS2 selectively acylates Glu over Gln, whereas M110 acylates Gln 4-fold more efficiently than Glu. In addition, M110 hydrolyzes adenosine triphosphate 2.5-fold faster in the presence of Glu than Gln, suggesting that an editing activity has evolved in this variant to discriminate against Glu. These data imply that GluRS2 is a few steps away from evolving into a GlnRS and provides a paradigm for studying aminoacyl-tRNA synthetase evolution using directed engineering approaches. Oxford University Press 2012-09 2012-05-31 /pmc/articles/PMC3439900/ /pubmed/22661575 http://dx.doi.org/10.1093/nar/gks507 Text en © The Author(s) 2012. Published by Oxford University Press. http://creativecommons.org/licenses/by-nc/3.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0), which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Nucleic Acid Enzymes
Guo, Li-Tao
Helgadóttir, Sunna
Söll, Dieter
Ling, Jiqiang
Rational design and directed evolution of a bacterial-type glutaminyl-tRNA synthetase precursor
title Rational design and directed evolution of a bacterial-type glutaminyl-tRNA synthetase precursor
title_full Rational design and directed evolution of a bacterial-type glutaminyl-tRNA synthetase precursor
title_fullStr Rational design and directed evolution of a bacterial-type glutaminyl-tRNA synthetase precursor
title_full_unstemmed Rational design and directed evolution of a bacterial-type glutaminyl-tRNA synthetase precursor
title_short Rational design and directed evolution of a bacterial-type glutaminyl-tRNA synthetase precursor
title_sort rational design and directed evolution of a bacterial-type glutaminyl-trna synthetase precursor
topic Nucleic Acid Enzymes
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3439900/
https://www.ncbi.nlm.nih.gov/pubmed/22661575
http://dx.doi.org/10.1093/nar/gks507
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