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Backbone Brackets and Arginine Tweezers delineate Class I and Class II aminoacyl tRNA synthetases

The origin of the machinery that realizes protein biosynthesis in all organisms is still unclear. One key component of this machinery are aminoacyl tRNA synthetases (aaRS), which ligate tRNAs to amino acids while consuming ATP. Sequence analyses revealed that these enzymes can be divided into two co...

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Autores principales: Kaiser, Florian, Bittrich, Sebastian, Salentin, Sebastian, Leberecht, Christoph, Haupt, V. Joachim, Krautwurst, Sarah, Schroeder, Michael, Labudde, Dirk
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5919687/
https://www.ncbi.nlm.nih.gov/pubmed/29659563
http://dx.doi.org/10.1371/journal.pcbi.1006101
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author Kaiser, Florian
Bittrich, Sebastian
Salentin, Sebastian
Leberecht, Christoph
Haupt, V. Joachim
Krautwurst, Sarah
Schroeder, Michael
Labudde, Dirk
author_facet Kaiser, Florian
Bittrich, Sebastian
Salentin, Sebastian
Leberecht, Christoph
Haupt, V. Joachim
Krautwurst, Sarah
Schroeder, Michael
Labudde, Dirk
author_sort Kaiser, Florian
collection PubMed
description The origin of the machinery that realizes protein biosynthesis in all organisms is still unclear. One key component of this machinery are aminoacyl tRNA synthetases (aaRS), which ligate tRNAs to amino acids while consuming ATP. Sequence analyses revealed that these enzymes can be divided into two complementary classes. Both classes differ significantly on a sequence and structural level, feature different reaction mechanisms, and occur in diverse oligomerization states. The one unifying aspect of both classes is their function of binding ATP. We identified Backbone Brackets and Arginine Tweezers as most compact ATP binding motifs characteristic for each Class. Geometric analysis shows a structural rearrangement of the Backbone Brackets upon ATP binding, indicating a general mechanism of all Class I structures. Regarding the origin of aaRS, the Rodin-Ohno hypothesis states that the peculiar nature of the two aaRS classes is the result of their primordial forms, called Protozymes, being encoded on opposite strands of the same gene. Backbone Brackets and Arginine Tweezers were traced back to the proposed Protozymes and their more efficient successors, the Urzymes. Both structural motifs can be observed as pairs of residues in contemporary structures and it seems that the time of their addition, indicated by their placement in the ancient aaRS, coincides with the evolutionary trace of Proto- and Urzymes.
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spelling pubmed-59196872018-05-11 Backbone Brackets and Arginine Tweezers delineate Class I and Class II aminoacyl tRNA synthetases Kaiser, Florian Bittrich, Sebastian Salentin, Sebastian Leberecht, Christoph Haupt, V. Joachim Krautwurst, Sarah Schroeder, Michael Labudde, Dirk PLoS Comput Biol Research Article The origin of the machinery that realizes protein biosynthesis in all organisms is still unclear. One key component of this machinery are aminoacyl tRNA synthetases (aaRS), which ligate tRNAs to amino acids while consuming ATP. Sequence analyses revealed that these enzymes can be divided into two complementary classes. Both classes differ significantly on a sequence and structural level, feature different reaction mechanisms, and occur in diverse oligomerization states. The one unifying aspect of both classes is their function of binding ATP. We identified Backbone Brackets and Arginine Tweezers as most compact ATP binding motifs characteristic for each Class. Geometric analysis shows a structural rearrangement of the Backbone Brackets upon ATP binding, indicating a general mechanism of all Class I structures. Regarding the origin of aaRS, the Rodin-Ohno hypothesis states that the peculiar nature of the two aaRS classes is the result of their primordial forms, called Protozymes, being encoded on opposite strands of the same gene. Backbone Brackets and Arginine Tweezers were traced back to the proposed Protozymes and their more efficient successors, the Urzymes. Both structural motifs can be observed as pairs of residues in contemporary structures and it seems that the time of their addition, indicated by their placement in the ancient aaRS, coincides with the evolutionary trace of Proto- and Urzymes. Public Library of Science 2018-04-16 /pmc/articles/PMC5919687/ /pubmed/29659563 http://dx.doi.org/10.1371/journal.pcbi.1006101 Text en © 2018 Kaiser et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Kaiser, Florian
Bittrich, Sebastian
Salentin, Sebastian
Leberecht, Christoph
Haupt, V. Joachim
Krautwurst, Sarah
Schroeder, Michael
Labudde, Dirk
Backbone Brackets and Arginine Tweezers delineate Class I and Class II aminoacyl tRNA synthetases
title Backbone Brackets and Arginine Tweezers delineate Class I and Class II aminoacyl tRNA synthetases
title_full Backbone Brackets and Arginine Tweezers delineate Class I and Class II aminoacyl tRNA synthetases
title_fullStr Backbone Brackets and Arginine Tweezers delineate Class I and Class II aminoacyl tRNA synthetases
title_full_unstemmed Backbone Brackets and Arginine Tweezers delineate Class I and Class II aminoacyl tRNA synthetases
title_short Backbone Brackets and Arginine Tweezers delineate Class I and Class II aminoacyl tRNA synthetases
title_sort backbone brackets and arginine tweezers delineate class i and class ii aminoacyl trna synthetases
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5919687/
https://www.ncbi.nlm.nih.gov/pubmed/29659563
http://dx.doi.org/10.1371/journal.pcbi.1006101
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