Cargando…

A single methyltransferase YefA (RlmCD) catalyses both m(5)U747 and m(5)U1939 modifications in Bacillus subtilis 23S rRNA

Methyltransferases that use S-adenosylmethionine (AdoMet) as a cofactor to catalyse 5-methyl uridine (m(5)U) formation in tRNAs and rRNAs are widespread in Bacteria and Eukaryota, and are also found in certain Archaea. These enzymes belong to the COG2265 cluster, and the Gram-negative bacterium Esch...

Descripción completa

Detalles Bibliográficos
Autores principales: Desmolaize, Benoit, Fabret, Céline, Brégeon, Damien, Rose, Simon, Grosjean, Henri, Douthwaite, Stephen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2011
Materias:
RNA
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3241648/
https://www.ncbi.nlm.nih.gov/pubmed/21824914
http://dx.doi.org/10.1093/nar/gkr626
_version_ 1782219543034200064
author Desmolaize, Benoit
Fabret, Céline
Brégeon, Damien
Rose, Simon
Grosjean, Henri
Douthwaite, Stephen
author_facet Desmolaize, Benoit
Fabret, Céline
Brégeon, Damien
Rose, Simon
Grosjean, Henri
Douthwaite, Stephen
author_sort Desmolaize, Benoit
collection PubMed
description Methyltransferases that use S-adenosylmethionine (AdoMet) as a cofactor to catalyse 5-methyl uridine (m(5)U) formation in tRNAs and rRNAs are widespread in Bacteria and Eukaryota, and are also found in certain Archaea. These enzymes belong to the COG2265 cluster, and the Gram-negative bacterium Escherichia coli possesses three paralogues. These comprise the methyltransferases TrmA that targets U54 in tRNAs, RlmC that modifies U747 in 23S rRNA and RlmD that is specific for U1939 in 23S rRNA. The tRNAs and rRNAs of the Gram-positive bacterium Bacillus subtilis have the same three m(5)U modifications. However, as previously shown, the m(5)U54 modification in B. subtilis tRNAs is catalysed in a fundamentally different manner by the folate-dependent enzyme TrmFO, which is unrelated to the E. coli TrmA. Here, we show that methylation of U747 and U1939 in B. subtilis rRNA is catalysed by a single enzyme, YefA that is a COG2265 member. A recombinant version of YefA functions in an E. coli m(5)U-null mutant adding the same two rRNA methylations. The findings suggest that during evolution, COG2265 enzymes have undergone a series of changes in target specificity and that YefA is closer to an archetypical m(5)U methyltransferase. To reflect its dual specificity, YefA is renamed RlmCD.
format Online
Article
Text
id pubmed-3241648
institution National Center for Biotechnology Information
language English
publishDate 2011
publisher Oxford University Press
record_format MEDLINE/PubMed
spelling pubmed-32416482011-12-19 A single methyltransferase YefA (RlmCD) catalyses both m(5)U747 and m(5)U1939 modifications in Bacillus subtilis 23S rRNA Desmolaize, Benoit Fabret, Céline Brégeon, Damien Rose, Simon Grosjean, Henri Douthwaite, Stephen Nucleic Acids Res RNA Methyltransferases that use S-adenosylmethionine (AdoMet) as a cofactor to catalyse 5-methyl uridine (m(5)U) formation in tRNAs and rRNAs are widespread in Bacteria and Eukaryota, and are also found in certain Archaea. These enzymes belong to the COG2265 cluster, and the Gram-negative bacterium Escherichia coli possesses three paralogues. These comprise the methyltransferases TrmA that targets U54 in tRNAs, RlmC that modifies U747 in 23S rRNA and RlmD that is specific for U1939 in 23S rRNA. The tRNAs and rRNAs of the Gram-positive bacterium Bacillus subtilis have the same three m(5)U modifications. However, as previously shown, the m(5)U54 modification in B. subtilis tRNAs is catalysed in a fundamentally different manner by the folate-dependent enzyme TrmFO, which is unrelated to the E. coli TrmA. Here, we show that methylation of U747 and U1939 in B. subtilis rRNA is catalysed by a single enzyme, YefA that is a COG2265 member. A recombinant version of YefA functions in an E. coli m(5)U-null mutant adding the same two rRNA methylations. The findings suggest that during evolution, COG2265 enzymes have undergone a series of changes in target specificity and that YefA is closer to an archetypical m(5)U methyltransferase. To reflect its dual specificity, YefA is renamed RlmCD. Oxford University Press 2011-11 2011-08-08 /pmc/articles/PMC3241648/ /pubmed/21824914 http://dx.doi.org/10.1093/nar/gkr626 Text en © The Author(s) 2011. 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 RNA
Desmolaize, Benoit
Fabret, Céline
Brégeon, Damien
Rose, Simon
Grosjean, Henri
Douthwaite, Stephen
A single methyltransferase YefA (RlmCD) catalyses both m(5)U747 and m(5)U1939 modifications in Bacillus subtilis 23S rRNA
title A single methyltransferase YefA (RlmCD) catalyses both m(5)U747 and m(5)U1939 modifications in Bacillus subtilis 23S rRNA
title_full A single methyltransferase YefA (RlmCD) catalyses both m(5)U747 and m(5)U1939 modifications in Bacillus subtilis 23S rRNA
title_fullStr A single methyltransferase YefA (RlmCD) catalyses both m(5)U747 and m(5)U1939 modifications in Bacillus subtilis 23S rRNA
title_full_unstemmed A single methyltransferase YefA (RlmCD) catalyses both m(5)U747 and m(5)U1939 modifications in Bacillus subtilis 23S rRNA
title_short A single methyltransferase YefA (RlmCD) catalyses both m(5)U747 and m(5)U1939 modifications in Bacillus subtilis 23S rRNA
title_sort single methyltransferase yefa (rlmcd) catalyses both m(5)u747 and m(5)u1939 modifications in bacillus subtilis 23s rrna
topic RNA
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3241648/
https://www.ncbi.nlm.nih.gov/pubmed/21824914
http://dx.doi.org/10.1093/nar/gkr626
work_keys_str_mv AT desmolaizebenoit asinglemethyltransferaseyefarlmcdcatalysesbothm5u747andm5u1939modificationsinbacillussubtilis23srrna
AT fabretceline asinglemethyltransferaseyefarlmcdcatalysesbothm5u747andm5u1939modificationsinbacillussubtilis23srrna
AT bregeondamien asinglemethyltransferaseyefarlmcdcatalysesbothm5u747andm5u1939modificationsinbacillussubtilis23srrna
AT rosesimon asinglemethyltransferaseyefarlmcdcatalysesbothm5u747andm5u1939modificationsinbacillussubtilis23srrna
AT grosjeanhenri asinglemethyltransferaseyefarlmcdcatalysesbothm5u747andm5u1939modificationsinbacillussubtilis23srrna
AT douthwaitestephen asinglemethyltransferaseyefarlmcdcatalysesbothm5u747andm5u1939modificationsinbacillussubtilis23srrna
AT desmolaizebenoit singlemethyltransferaseyefarlmcdcatalysesbothm5u747andm5u1939modificationsinbacillussubtilis23srrna
AT fabretceline singlemethyltransferaseyefarlmcdcatalysesbothm5u747andm5u1939modificationsinbacillussubtilis23srrna
AT bregeondamien singlemethyltransferaseyefarlmcdcatalysesbothm5u747andm5u1939modificationsinbacillussubtilis23srrna
AT rosesimon singlemethyltransferaseyefarlmcdcatalysesbothm5u747andm5u1939modificationsinbacillussubtilis23srrna
AT grosjeanhenri singlemethyltransferaseyefarlmcdcatalysesbothm5u747andm5u1939modificationsinbacillussubtilis23srrna
AT douthwaitestephen singlemethyltransferaseyefarlmcdcatalysesbothm5u747andm5u1939modificationsinbacillussubtilis23srrna