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Surveillance of 3′ Noncoding Transcripts Requires FIERY1 and XRN3 in Arabidopsis

Eukaryotes possess several RNA surveillance mechanisms that prevent undesirable aberrant RNAs from accumulating. Arabidopsis XRN2, XRN3, and XRN4 are three orthologs of the yeast 5′-to-3′ exoribonuclease, Rat1/Xrn2, that function in multiple RNA decay pathways. XRN activity is maintained by FIERY1 (...

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Autores principales: Kurihara, Yukio, Schmitz, Robert J., Nery, Joseph R., Schultz, Matthew D., Okubo-Kurihara, Emiko, Morosawa, Taeko, Tanaka, Maho, Toyoda, Tetsuro, Seki, Motoaki, Ecker, Joseph R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Genetics Society of America 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3337477/
https://www.ncbi.nlm.nih.gov/pubmed/22540040
http://dx.doi.org/10.1534/g3.111.001362
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author Kurihara, Yukio
Schmitz, Robert J.
Nery, Joseph R.
Schultz, Matthew D.
Okubo-Kurihara, Emiko
Morosawa, Taeko
Tanaka, Maho
Toyoda, Tetsuro
Seki, Motoaki
Ecker, Joseph R.
author_facet Kurihara, Yukio
Schmitz, Robert J.
Nery, Joseph R.
Schultz, Matthew D.
Okubo-Kurihara, Emiko
Morosawa, Taeko
Tanaka, Maho
Toyoda, Tetsuro
Seki, Motoaki
Ecker, Joseph R.
author_sort Kurihara, Yukio
collection PubMed
description Eukaryotes possess several RNA surveillance mechanisms that prevent undesirable aberrant RNAs from accumulating. Arabidopsis XRN2, XRN3, and XRN4 are three orthologs of the yeast 5′-to-3′ exoribonuclease, Rat1/Xrn2, that function in multiple RNA decay pathways. XRN activity is maintained by FIERY1 (FRY1), which converts the XRN inhibitor, adenosine 3′, 5′-bisphosphate (PAP), into 5′AMP. To identify the roles of XRNs and FRY1 in suppression of non-coding RNAs, strand-specific genome-wide tiling arrays and deep strand-specific RNA-Seq analyses were carried out in fry1 and xrn single and double mutants. In fry1-6, about 2000 new transcripts were identified that extended the 3′ end of specific mRNAs; many of these were also observed in genotypes that possess the xrn3-3 mutation, a partial loss-of-function allele. Mutations in XRN2 and XRN4 in combination with xrn3-3 revealed only a minor effect on 3′ extensions, indicating that these genes may be partially redundant with XRN3. We also observed the accumulation of 3′ remnants of many DCL1-processed microRNA (miRNA) precursors in fry1-6 and xrn3-3. These findings suggest that XRN3, in combination with FRY1, is required to prevent the accumulation of 3′ extensions that arise from thousands of mRNA and miRNA precursor transcripts.
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spelling pubmed-33374772012-04-26 Surveillance of 3′ Noncoding Transcripts Requires FIERY1 and XRN3 in Arabidopsis Kurihara, Yukio Schmitz, Robert J. Nery, Joseph R. Schultz, Matthew D. Okubo-Kurihara, Emiko Morosawa, Taeko Tanaka, Maho Toyoda, Tetsuro Seki, Motoaki Ecker, Joseph R. G3 (Bethesda) Investigations Eukaryotes possess several RNA surveillance mechanisms that prevent undesirable aberrant RNAs from accumulating. Arabidopsis XRN2, XRN3, and XRN4 are three orthologs of the yeast 5′-to-3′ exoribonuclease, Rat1/Xrn2, that function in multiple RNA decay pathways. XRN activity is maintained by FIERY1 (FRY1), which converts the XRN inhibitor, adenosine 3′, 5′-bisphosphate (PAP), into 5′AMP. To identify the roles of XRNs and FRY1 in suppression of non-coding RNAs, strand-specific genome-wide tiling arrays and deep strand-specific RNA-Seq analyses were carried out in fry1 and xrn single and double mutants. In fry1-6, about 2000 new transcripts were identified that extended the 3′ end of specific mRNAs; many of these were also observed in genotypes that possess the xrn3-3 mutation, a partial loss-of-function allele. Mutations in XRN2 and XRN4 in combination with xrn3-3 revealed only a minor effect on 3′ extensions, indicating that these genes may be partially redundant with XRN3. We also observed the accumulation of 3′ remnants of many DCL1-processed microRNA (miRNA) precursors in fry1-6 and xrn3-3. These findings suggest that XRN3, in combination with FRY1, is required to prevent the accumulation of 3′ extensions that arise from thousands of mRNA and miRNA precursor transcripts. Genetics Society of America 2012-04-01 /pmc/articles/PMC3337477/ /pubmed/22540040 http://dx.doi.org/10.1534/g3.111.001362 Text en Copyright © 2012 Kurihara et al. http://creativecommons.org/licenses/by/3.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution Unported License (http://creativecommons.org/licenses/by/3.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Investigations
Kurihara, Yukio
Schmitz, Robert J.
Nery, Joseph R.
Schultz, Matthew D.
Okubo-Kurihara, Emiko
Morosawa, Taeko
Tanaka, Maho
Toyoda, Tetsuro
Seki, Motoaki
Ecker, Joseph R.
Surveillance of 3′ Noncoding Transcripts Requires FIERY1 and XRN3 in Arabidopsis
title Surveillance of 3′ Noncoding Transcripts Requires FIERY1 and XRN3 in Arabidopsis
title_full Surveillance of 3′ Noncoding Transcripts Requires FIERY1 and XRN3 in Arabidopsis
title_fullStr Surveillance of 3′ Noncoding Transcripts Requires FIERY1 and XRN3 in Arabidopsis
title_full_unstemmed Surveillance of 3′ Noncoding Transcripts Requires FIERY1 and XRN3 in Arabidopsis
title_short Surveillance of 3′ Noncoding Transcripts Requires FIERY1 and XRN3 in Arabidopsis
title_sort surveillance of 3′ noncoding transcripts requires fiery1 and xrn3 in arabidopsis
topic Investigations
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3337477/
https://www.ncbi.nlm.nih.gov/pubmed/22540040
http://dx.doi.org/10.1534/g3.111.001362
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