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An ancient type of MnmA protein is an iron–sulfur cluster-dependent sulfurtransferase for tRNA anticodons

Transfer RNA (tRNA) is an adaptor molecule indispensable for assigning amino acids to codons on mRNA during protein synthesis. 2-thiouridine (s(2)U) derivatives in the anticodons (position 34) of tRNAs for glutamate, glutamine, and lysine are post-transcriptional modifications essential for precise...

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Autores principales: Shigi, Naoki, Horitani, Masaki, Miyauchi, Kenjyo, Suzuki, Tsutomu, Kuroki, Misao
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory Press 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7025502/
https://www.ncbi.nlm.nih.gov/pubmed/31801798
http://dx.doi.org/10.1261/rna.072066.119
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author Shigi, Naoki
Horitani, Masaki
Miyauchi, Kenjyo
Suzuki, Tsutomu
Kuroki, Misao
author_facet Shigi, Naoki
Horitani, Masaki
Miyauchi, Kenjyo
Suzuki, Tsutomu
Kuroki, Misao
author_sort Shigi, Naoki
collection PubMed
description Transfer RNA (tRNA) is an adaptor molecule indispensable for assigning amino acids to codons on mRNA during protein synthesis. 2-thiouridine (s(2)U) derivatives in the anticodons (position 34) of tRNAs for glutamate, glutamine, and lysine are post-transcriptional modifications essential for precise and efficient codon recognition in all organisms. s(2)U34 is introduced either by (i) bacterial MnmA/eukaryote mitochondrial Mtu1 or (ii) eukaryote cytosolic Ncs6/archaeal NcsA, and the latter enzymes possess iron-sulfur (Fe–S) cluster. Here, we report the identification of novel-type MnmA homologs containing three conserved Cys residues, which could support Fe–S cluster binding and catalysis, in a broad range of bacteria, including thermophiles, Cyanobacteria, Mycobacteria, Actinomyces, Clostridium, and Helicobacter. Using EPR spectroscopy, we revealed that Thermus thermophilus MnmA (TtMnmA) contains an oxygen-sensitive [4Fe–4S]-type cluster. Efficient in vitro formation of s(2)U34 in tRNA(Lys) and tRNA(Gln) by holo-TtMnmA occurred only under anaerobic conditions. Mutational analysis of TtMnmA suggested that the Fe–S cluster is coordinated by the three conserved Cys residues (Cys105, Cys108, and Cys200), and is essential for its activity. Evolutionary scenarios for the sulfurtransferases, including the Fe–S cluster containing Ncs6/NcsA s(2)U thiouridylases and several distantly related sulfurtransferases, are proposed.
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spelling pubmed-70255022021-03-01 An ancient type of MnmA protein is an iron–sulfur cluster-dependent sulfurtransferase for tRNA anticodons Shigi, Naoki Horitani, Masaki Miyauchi, Kenjyo Suzuki, Tsutomu Kuroki, Misao RNA Report Transfer RNA (tRNA) is an adaptor molecule indispensable for assigning amino acids to codons on mRNA during protein synthesis. 2-thiouridine (s(2)U) derivatives in the anticodons (position 34) of tRNAs for glutamate, glutamine, and lysine are post-transcriptional modifications essential for precise and efficient codon recognition in all organisms. s(2)U34 is introduced either by (i) bacterial MnmA/eukaryote mitochondrial Mtu1 or (ii) eukaryote cytosolic Ncs6/archaeal NcsA, and the latter enzymes possess iron-sulfur (Fe–S) cluster. Here, we report the identification of novel-type MnmA homologs containing three conserved Cys residues, which could support Fe–S cluster binding and catalysis, in a broad range of bacteria, including thermophiles, Cyanobacteria, Mycobacteria, Actinomyces, Clostridium, and Helicobacter. Using EPR spectroscopy, we revealed that Thermus thermophilus MnmA (TtMnmA) contains an oxygen-sensitive [4Fe–4S]-type cluster. Efficient in vitro formation of s(2)U34 in tRNA(Lys) and tRNA(Gln) by holo-TtMnmA occurred only under anaerobic conditions. Mutational analysis of TtMnmA suggested that the Fe–S cluster is coordinated by the three conserved Cys residues (Cys105, Cys108, and Cys200), and is essential for its activity. Evolutionary scenarios for the sulfurtransferases, including the Fe–S cluster containing Ncs6/NcsA s(2)U thiouridylases and several distantly related sulfurtransferases, are proposed. Cold Spring Harbor Laboratory Press 2020-03 /pmc/articles/PMC7025502/ /pubmed/31801798 http://dx.doi.org/10.1261/rna.072066.119 Text en © 2020 Shigi 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 Report
Shigi, Naoki
Horitani, Masaki
Miyauchi, Kenjyo
Suzuki, Tsutomu
Kuroki, Misao
An ancient type of MnmA protein is an iron–sulfur cluster-dependent sulfurtransferase for tRNA anticodons
title An ancient type of MnmA protein is an iron–sulfur cluster-dependent sulfurtransferase for tRNA anticodons
title_full An ancient type of MnmA protein is an iron–sulfur cluster-dependent sulfurtransferase for tRNA anticodons
title_fullStr An ancient type of MnmA protein is an iron–sulfur cluster-dependent sulfurtransferase for tRNA anticodons
title_full_unstemmed An ancient type of MnmA protein is an iron–sulfur cluster-dependent sulfurtransferase for tRNA anticodons
title_short An ancient type of MnmA protein is an iron–sulfur cluster-dependent sulfurtransferase for tRNA anticodons
title_sort ancient type of mnma protein is an iron–sulfur cluster-dependent sulfurtransferase for trna anticodons
topic Report
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7025502/
https://www.ncbi.nlm.nih.gov/pubmed/31801798
http://dx.doi.org/10.1261/rna.072066.119
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