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Evolving specificity of tRNA 3-methyl-cytidine-32 (m(3)C32) modification: a subset of tRNAs(Ser) requires N(6)-isopentenylation of A37

Post-transcriptional modifications of anticodon loop (ACL) nucleotides impact tRNA structure, affinity for the ribosome, and decoding activity, and these activities can be fine-tuned by interactions between nucleobases on either side of the anticodon. A recently discovered ACL modification circuit i...

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Autores principales: Arimbasseri, Aneeshkumar G., Iben, James, Wei, Fan-Yan, Rijal, Keshab, Tomizawa, Kazuhito, Hafner, Markus, Maraia, Richard J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory Press 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4986895/
https://www.ncbi.nlm.nih.gov/pubmed/27354703
http://dx.doi.org/10.1261/rna.056259.116
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author Arimbasseri, Aneeshkumar G.
Iben, James
Wei, Fan-Yan
Rijal, Keshab
Tomizawa, Kazuhito
Hafner, Markus
Maraia, Richard J.
author_facet Arimbasseri, Aneeshkumar G.
Iben, James
Wei, Fan-Yan
Rijal, Keshab
Tomizawa, Kazuhito
Hafner, Markus
Maraia, Richard J.
author_sort Arimbasseri, Aneeshkumar G.
collection PubMed
description Post-transcriptional modifications of anticodon loop (ACL) nucleotides impact tRNA structure, affinity for the ribosome, and decoding activity, and these activities can be fine-tuned by interactions between nucleobases on either side of the anticodon. A recently discovered ACL modification circuit involving positions 32, 34, and 37 is disrupted by a human disease-associated mutation to the gene encoding a tRNA modification enzyme. We used tRNA-HydroSeq (-HySeq) to examine (3)methyl-cytidine-32 (m(3)C32), which is found in yeast only in the ACLs of tRNAs(Ser) and tRNAs(Thr). In contrast to that reported for Saccharomyces cerevisiae in which all m(3)C32 depends on a single gene, TRM140, the m(3)C32 of tRNAs(Ser) and tRNAs(Thr) of the fission yeast S. pombe, are each dependent on one of two related genes, trm140(+) and trm141(+), homologs of which are found in higher eukaryotes. Interestingly, mammals and other vertebrates contain a third homolog and also contain m(3)C at new sites, positions 32 on tRNAs(Arg) and C47:3 in the variable arm of tRNAs(Ser). More significantly, by examining S. pombe mutants deficient for other modifications, we found that m(3)C32 on the three tRNAs(Ser) that contain anticodon base A36, requires N(6)-isopentenyl modification of A37 (i(6)A37). This new C32–A37 ACL circuitry indicates that i(6)A37 is a pre- or corequisite for m(3)C32 on these tRNAs. Examination of the tRNA database suggests that such circuitry may be more expansive than observed here. The results emphasize two contemporary themes, that tRNA modifications are interconnected, and that some specific modifications on tRNAs of the same anticodon identity are species-specific.
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spelling pubmed-49868952017-09-01 Evolving specificity of tRNA 3-methyl-cytidine-32 (m(3)C32) modification: a subset of tRNAs(Ser) requires N(6)-isopentenylation of A37 Arimbasseri, Aneeshkumar G. Iben, James Wei, Fan-Yan Rijal, Keshab Tomizawa, Kazuhito Hafner, Markus Maraia, Richard J. RNA Article Post-transcriptional modifications of anticodon loop (ACL) nucleotides impact tRNA structure, affinity for the ribosome, and decoding activity, and these activities can be fine-tuned by interactions between nucleobases on either side of the anticodon. A recently discovered ACL modification circuit involving positions 32, 34, and 37 is disrupted by a human disease-associated mutation to the gene encoding a tRNA modification enzyme. We used tRNA-HydroSeq (-HySeq) to examine (3)methyl-cytidine-32 (m(3)C32), which is found in yeast only in the ACLs of tRNAs(Ser) and tRNAs(Thr). In contrast to that reported for Saccharomyces cerevisiae in which all m(3)C32 depends on a single gene, TRM140, the m(3)C32 of tRNAs(Ser) and tRNAs(Thr) of the fission yeast S. pombe, are each dependent on one of two related genes, trm140(+) and trm141(+), homologs of which are found in higher eukaryotes. Interestingly, mammals and other vertebrates contain a third homolog and also contain m(3)C at new sites, positions 32 on tRNAs(Arg) and C47:3 in the variable arm of tRNAs(Ser). More significantly, by examining S. pombe mutants deficient for other modifications, we found that m(3)C32 on the three tRNAs(Ser) that contain anticodon base A36, requires N(6)-isopentenyl modification of A37 (i(6)A37). This new C32–A37 ACL circuitry indicates that i(6)A37 is a pre- or corequisite for m(3)C32 on these tRNAs. Examination of the tRNA database suggests that such circuitry may be more expansive than observed here. The results emphasize two contemporary themes, that tRNA modifications are interconnected, and that some specific modifications on tRNAs of the same anticodon identity are species-specific. Cold Spring Harbor Laboratory Press 2016-09 /pmc/articles/PMC4986895/ /pubmed/27354703 http://dx.doi.org/10.1261/rna.056259.116 Text en © 2016 Arimbasseri 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
Arimbasseri, Aneeshkumar G.
Iben, James
Wei, Fan-Yan
Rijal, Keshab
Tomizawa, Kazuhito
Hafner, Markus
Maraia, Richard J.
Evolving specificity of tRNA 3-methyl-cytidine-32 (m(3)C32) modification: a subset of tRNAs(Ser) requires N(6)-isopentenylation of A37
title Evolving specificity of tRNA 3-methyl-cytidine-32 (m(3)C32) modification: a subset of tRNAs(Ser) requires N(6)-isopentenylation of A37
title_full Evolving specificity of tRNA 3-methyl-cytidine-32 (m(3)C32) modification: a subset of tRNAs(Ser) requires N(6)-isopentenylation of A37
title_fullStr Evolving specificity of tRNA 3-methyl-cytidine-32 (m(3)C32) modification: a subset of tRNAs(Ser) requires N(6)-isopentenylation of A37
title_full_unstemmed Evolving specificity of tRNA 3-methyl-cytidine-32 (m(3)C32) modification: a subset of tRNAs(Ser) requires N(6)-isopentenylation of A37
title_short Evolving specificity of tRNA 3-methyl-cytidine-32 (m(3)C32) modification: a subset of tRNAs(Ser) requires N(6)-isopentenylation of A37
title_sort evolving specificity of trna 3-methyl-cytidine-32 (m(3)c32) modification: a subset of trnas(ser) requires n(6)-isopentenylation of a37
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4986895/
https://www.ncbi.nlm.nih.gov/pubmed/27354703
http://dx.doi.org/10.1261/rna.056259.116
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