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Distinct and Cooperative Activities of HESO1 and URT1 Nucleotidyl Transferases in MicroRNA Turnover in Arabidopsis

3’ uridylation is increasingly recognized as a conserved RNA modification process associated with RNA turnover in eukaryotes. 2’-O-methylation on the 3’ terminal ribose protects micro(mi)RNAs from 3’ truncation and 3’ uridylation in Arabidopsis. Previously, we identified HESO1 as the nucleotidyl tra...

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Autores principales: Tu, Bin, Liu, Li, Xu, Chi, Zhai, Jixian, Li, Shengben, Lopez, Miguel A., Zhao, Yuanyuan, Yu, Yu, Ramachandran, Vanitharani, Ren, Guodong, Yu, Bin, Li, Shigui, Meyers, Blake C., Mo, Beixin, Chen, Xuemei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4415760/
https://www.ncbi.nlm.nih.gov/pubmed/25928405
http://dx.doi.org/10.1371/journal.pgen.1005119
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author Tu, Bin
Liu, Li
Xu, Chi
Zhai, Jixian
Li, Shengben
Lopez, Miguel A.
Zhao, Yuanyuan
Yu, Yu
Ramachandran, Vanitharani
Ren, Guodong
Yu, Bin
Li, Shigui
Meyers, Blake C.
Mo, Beixin
Chen, Xuemei
author_facet Tu, Bin
Liu, Li
Xu, Chi
Zhai, Jixian
Li, Shengben
Lopez, Miguel A.
Zhao, Yuanyuan
Yu, Yu
Ramachandran, Vanitharani
Ren, Guodong
Yu, Bin
Li, Shigui
Meyers, Blake C.
Mo, Beixin
Chen, Xuemei
author_sort Tu, Bin
collection PubMed
description 3’ uridylation is increasingly recognized as a conserved RNA modification process associated with RNA turnover in eukaryotes. 2’-O-methylation on the 3’ terminal ribose protects micro(mi)RNAs from 3’ truncation and 3’ uridylation in Arabidopsis. Previously, we identified HESO1 as the nucleotidyl transferase that uridylates most unmethylated miRNAs in vivo, but substantial 3’ tailing of miRNAs still remains in heso1 loss-of-function mutants. In this study, we found that among nine other potential nucleotidyl transferases, UTP:RNA URIDYLYLTRANSFERASE 1 (URT1) is the single most predominant nucleotidyl transferase that tails miRNAs. URT1 and HESO1 prefer substrates with different 3’ end nucleotides in vitro and act cooperatively to tail different forms of the same miRNAs in vivo. Moreover, both HESO1 and URT1 exhibit nucleotidyl transferase activity on AGO1-bound miRNAs. Although these enzymes are able to add long tails to AGO1-bound miRNAs, the tailed miRNAs remain associated with AGO1. Moreover, tailing of AGO1-bound miRNA165/6 drastically reduces the slicing activity of AGO1-miR165/6, suggesting that tailing reduces miRNA activity. However, monouridylation of miR171a by URT1 endows the miRNA the ability to trigger the biogenesis of secondary siRNAs. Therefore, 3’ tailing could affect the activities of miRNAs in addition to leading to miRNA degradation.
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spelling pubmed-44157602015-05-07 Distinct and Cooperative Activities of HESO1 and URT1 Nucleotidyl Transferases in MicroRNA Turnover in Arabidopsis Tu, Bin Liu, Li Xu, Chi Zhai, Jixian Li, Shengben Lopez, Miguel A. Zhao, Yuanyuan Yu, Yu Ramachandran, Vanitharani Ren, Guodong Yu, Bin Li, Shigui Meyers, Blake C. Mo, Beixin Chen, Xuemei PLoS Genet Research Article 3’ uridylation is increasingly recognized as a conserved RNA modification process associated with RNA turnover in eukaryotes. 2’-O-methylation on the 3’ terminal ribose protects micro(mi)RNAs from 3’ truncation and 3’ uridylation in Arabidopsis. Previously, we identified HESO1 as the nucleotidyl transferase that uridylates most unmethylated miRNAs in vivo, but substantial 3’ tailing of miRNAs still remains in heso1 loss-of-function mutants. In this study, we found that among nine other potential nucleotidyl transferases, UTP:RNA URIDYLYLTRANSFERASE 1 (URT1) is the single most predominant nucleotidyl transferase that tails miRNAs. URT1 and HESO1 prefer substrates with different 3’ end nucleotides in vitro and act cooperatively to tail different forms of the same miRNAs in vivo. Moreover, both HESO1 and URT1 exhibit nucleotidyl transferase activity on AGO1-bound miRNAs. Although these enzymes are able to add long tails to AGO1-bound miRNAs, the tailed miRNAs remain associated with AGO1. Moreover, tailing of AGO1-bound miRNA165/6 drastically reduces the slicing activity of AGO1-miR165/6, suggesting that tailing reduces miRNA activity. However, monouridylation of miR171a by URT1 endows the miRNA the ability to trigger the biogenesis of secondary siRNAs. Therefore, 3’ tailing could affect the activities of miRNAs in addition to leading to miRNA degradation. Public Library of Science 2015-04-30 /pmc/articles/PMC4415760/ /pubmed/25928405 http://dx.doi.org/10.1371/journal.pgen.1005119 Text en © 2015 Tu 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, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Tu, Bin
Liu, Li
Xu, Chi
Zhai, Jixian
Li, Shengben
Lopez, Miguel A.
Zhao, Yuanyuan
Yu, Yu
Ramachandran, Vanitharani
Ren, Guodong
Yu, Bin
Li, Shigui
Meyers, Blake C.
Mo, Beixin
Chen, Xuemei
Distinct and Cooperative Activities of HESO1 and URT1 Nucleotidyl Transferases in MicroRNA Turnover in Arabidopsis
title Distinct and Cooperative Activities of HESO1 and URT1 Nucleotidyl Transferases in MicroRNA Turnover in Arabidopsis
title_full Distinct and Cooperative Activities of HESO1 and URT1 Nucleotidyl Transferases in MicroRNA Turnover in Arabidopsis
title_fullStr Distinct and Cooperative Activities of HESO1 and URT1 Nucleotidyl Transferases in MicroRNA Turnover in Arabidopsis
title_full_unstemmed Distinct and Cooperative Activities of HESO1 and URT1 Nucleotidyl Transferases in MicroRNA Turnover in Arabidopsis
title_short Distinct and Cooperative Activities of HESO1 and URT1 Nucleotidyl Transferases in MicroRNA Turnover in Arabidopsis
title_sort distinct and cooperative activities of heso1 and urt1 nucleotidyl transferases in microrna turnover in arabidopsis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4415760/
https://www.ncbi.nlm.nih.gov/pubmed/25928405
http://dx.doi.org/10.1371/journal.pgen.1005119
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