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Mitochondrial 16S rRNA Is Methylated by tRNA Methyltransferase TRMT61B in All Vertebrates

The mitochondrial ribosome, which translates all mitochondrial DNA (mtDNA)-encoded proteins, should be tightly regulated pre- and post-transcriptionally. Recently, we found RNA-DNA differences (RDDs) at human mitochondrial 16S (large) rRNA position 947 that were indicative of post-transcriptional mo...

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Autores principales: Bar-Yaacov, Dan, Frumkin, Idan, Yashiro, Yuka, Chujo, Takeshi, Ishigami, Yuma, Chemla, Yonatan, Blumberg, Amit, Schlesinger, Orr, Bieri, Philipp, Greber, Basil, Ban, Nenad, Zarivach, Raz, Alfonta, Lital, Pilpel, Yitzhak, Suzuki, Tsutomu, Mishmar, Dan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5025228/
https://www.ncbi.nlm.nih.gov/pubmed/27631568
http://dx.doi.org/10.1371/journal.pbio.1002557
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author Bar-Yaacov, Dan
Frumkin, Idan
Yashiro, Yuka
Chujo, Takeshi
Ishigami, Yuma
Chemla, Yonatan
Blumberg, Amit
Schlesinger, Orr
Bieri, Philipp
Greber, Basil
Ban, Nenad
Zarivach, Raz
Alfonta, Lital
Pilpel, Yitzhak
Suzuki, Tsutomu
Mishmar, Dan
author_facet Bar-Yaacov, Dan
Frumkin, Idan
Yashiro, Yuka
Chujo, Takeshi
Ishigami, Yuma
Chemla, Yonatan
Blumberg, Amit
Schlesinger, Orr
Bieri, Philipp
Greber, Basil
Ban, Nenad
Zarivach, Raz
Alfonta, Lital
Pilpel, Yitzhak
Suzuki, Tsutomu
Mishmar, Dan
author_sort Bar-Yaacov, Dan
collection PubMed
description The mitochondrial ribosome, which translates all mitochondrial DNA (mtDNA)-encoded proteins, should be tightly regulated pre- and post-transcriptionally. Recently, we found RNA-DNA differences (RDDs) at human mitochondrial 16S (large) rRNA position 947 that were indicative of post-transcriptional modification. Here, we show that these 16S rRNA RDDs result from a 1-methyladenosine (m(1)A) modification introduced by TRMT61B, thus being the first vertebrate methyltransferase that modifies both tRNA and rRNAs. m(1)A947 is conserved in humans and all vertebrates having adenine at the corresponding mtDNA position (90% of vertebrates). However, this mtDNA base is a thymine in 10% of the vertebrates and a guanine in the 23S rRNA of 95% of bacteria, suggesting alternative evolutionary solutions. m(1)A, uridine, or guanine may stabilize the local structure of mitochondrial and bacterial ribosomes. Experimental assessment of genome-edited Escherichia coli showed that unmodified adenine caused impaired protein synthesis and growth. Our findings revealed a conserved mechanism of rRNA modification that has been selected instead of DNA mutations to enable proper mitochondrial ribosome function.
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spelling pubmed-50252282016-09-27 Mitochondrial 16S rRNA Is Methylated by tRNA Methyltransferase TRMT61B in All Vertebrates Bar-Yaacov, Dan Frumkin, Idan Yashiro, Yuka Chujo, Takeshi Ishigami, Yuma Chemla, Yonatan Blumberg, Amit Schlesinger, Orr Bieri, Philipp Greber, Basil Ban, Nenad Zarivach, Raz Alfonta, Lital Pilpel, Yitzhak Suzuki, Tsutomu Mishmar, Dan PLoS Biol Research Article The mitochondrial ribosome, which translates all mitochondrial DNA (mtDNA)-encoded proteins, should be tightly regulated pre- and post-transcriptionally. Recently, we found RNA-DNA differences (RDDs) at human mitochondrial 16S (large) rRNA position 947 that were indicative of post-transcriptional modification. Here, we show that these 16S rRNA RDDs result from a 1-methyladenosine (m(1)A) modification introduced by TRMT61B, thus being the first vertebrate methyltransferase that modifies both tRNA and rRNAs. m(1)A947 is conserved in humans and all vertebrates having adenine at the corresponding mtDNA position (90% of vertebrates). However, this mtDNA base is a thymine in 10% of the vertebrates and a guanine in the 23S rRNA of 95% of bacteria, suggesting alternative evolutionary solutions. m(1)A, uridine, or guanine may stabilize the local structure of mitochondrial and bacterial ribosomes. Experimental assessment of genome-edited Escherichia coli showed that unmodified adenine caused impaired protein synthesis and growth. Our findings revealed a conserved mechanism of rRNA modification that has been selected instead of DNA mutations to enable proper mitochondrial ribosome function. Public Library of Science 2016-09-15 /pmc/articles/PMC5025228/ /pubmed/27631568 http://dx.doi.org/10.1371/journal.pbio.1002557 Text en © 2016 Bar-Yaacov 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
Bar-Yaacov, Dan
Frumkin, Idan
Yashiro, Yuka
Chujo, Takeshi
Ishigami, Yuma
Chemla, Yonatan
Blumberg, Amit
Schlesinger, Orr
Bieri, Philipp
Greber, Basil
Ban, Nenad
Zarivach, Raz
Alfonta, Lital
Pilpel, Yitzhak
Suzuki, Tsutomu
Mishmar, Dan
Mitochondrial 16S rRNA Is Methylated by tRNA Methyltransferase TRMT61B in All Vertebrates
title Mitochondrial 16S rRNA Is Methylated by tRNA Methyltransferase TRMT61B in All Vertebrates
title_full Mitochondrial 16S rRNA Is Methylated by tRNA Methyltransferase TRMT61B in All Vertebrates
title_fullStr Mitochondrial 16S rRNA Is Methylated by tRNA Methyltransferase TRMT61B in All Vertebrates
title_full_unstemmed Mitochondrial 16S rRNA Is Methylated by tRNA Methyltransferase TRMT61B in All Vertebrates
title_short Mitochondrial 16S rRNA Is Methylated by tRNA Methyltransferase TRMT61B in All Vertebrates
title_sort mitochondrial 16s rrna is methylated by trna methyltransferase trmt61b in all vertebrates
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5025228/
https://www.ncbi.nlm.nih.gov/pubmed/27631568
http://dx.doi.org/10.1371/journal.pbio.1002557
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