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An Arabidopsis Natural Epiallele Maintained by a Feed-Forward Silencing Loop between Histone and DNA

The extent of epigenetic variation is currently well documented, but the number of natural epialleles described so far remains very limited. Determining the relevance of epigenetic changes for natural variation is an important question of research that we investigate by isolating natural epialleles...

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Autores principales: Agorio, Astrid, Durand, Stéphanie, Fiume, Elisa, Brousse, Cécile, Gy, Isabelle, Simon, Matthieu, Anava, Sarit, Rechavi, Oded, Loudet, Olivier, Camilleri, Christine, Bouché, Nicolas
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5257005/
https://www.ncbi.nlm.nih.gov/pubmed/28060933
http://dx.doi.org/10.1371/journal.pgen.1006551
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author Agorio, Astrid
Durand, Stéphanie
Fiume, Elisa
Brousse, Cécile
Gy, Isabelle
Simon, Matthieu
Anava, Sarit
Rechavi, Oded
Loudet, Olivier
Camilleri, Christine
Bouché, Nicolas
author_facet Agorio, Astrid
Durand, Stéphanie
Fiume, Elisa
Brousse, Cécile
Gy, Isabelle
Simon, Matthieu
Anava, Sarit
Rechavi, Oded
Loudet, Olivier
Camilleri, Christine
Bouché, Nicolas
author_sort Agorio, Astrid
collection PubMed
description The extent of epigenetic variation is currently well documented, but the number of natural epialleles described so far remains very limited. Determining the relevance of epigenetic changes for natural variation is an important question of research that we investigate by isolating natural epialleles segregating in Arabidopsis recombinant populations. We previously described a genetic incompatibility among Arabidopsis strains based on the silencing of a gene involved in fitness. Here, we isolated a new epiallele resulting from the silencing of a transfer-RNA editing gene in an Arabidopsis accession from the Netherlands (Nok-1). Crosses with the reference accession Col-0 show a complete incompatibility between this epiallele and another locus localized on a different chromosome. We demonstrate that conversion of an unmethylated version of this allele occurs in hybrids, associated with modifications of small RNA populations. These epialleles can also spontaneously revert within the population. Furthermore, we bring evidence that neither METHYLTRANSFERASE 1, maintaining methylation at CGs, nor components of RNA-directed DNA methylation, are key factors for the transmission of the epiallele over generations. This depends only on the self-reinforcing loop between CHROMOMETHYLASE 3 and KRYPTONITE, involving DNA methylated in the CHG context and histone H3 lysine 9 methylation. Our findings reveal a predominant role of this loop in maintaining a natural epiallele.
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spelling pubmed-52570052017-02-17 An Arabidopsis Natural Epiallele Maintained by a Feed-Forward Silencing Loop between Histone and DNA Agorio, Astrid Durand, Stéphanie Fiume, Elisa Brousse, Cécile Gy, Isabelle Simon, Matthieu Anava, Sarit Rechavi, Oded Loudet, Olivier Camilleri, Christine Bouché, Nicolas PLoS Genet Research Article The extent of epigenetic variation is currently well documented, but the number of natural epialleles described so far remains very limited. Determining the relevance of epigenetic changes for natural variation is an important question of research that we investigate by isolating natural epialleles segregating in Arabidopsis recombinant populations. We previously described a genetic incompatibility among Arabidopsis strains based on the silencing of a gene involved in fitness. Here, we isolated a new epiallele resulting from the silencing of a transfer-RNA editing gene in an Arabidopsis accession from the Netherlands (Nok-1). Crosses with the reference accession Col-0 show a complete incompatibility between this epiallele and another locus localized on a different chromosome. We demonstrate that conversion of an unmethylated version of this allele occurs in hybrids, associated with modifications of small RNA populations. These epialleles can also spontaneously revert within the population. Furthermore, we bring evidence that neither METHYLTRANSFERASE 1, maintaining methylation at CGs, nor components of RNA-directed DNA methylation, are key factors for the transmission of the epiallele over generations. This depends only on the self-reinforcing loop between CHROMOMETHYLASE 3 and KRYPTONITE, involving DNA methylated in the CHG context and histone H3 lysine 9 methylation. Our findings reveal a predominant role of this loop in maintaining a natural epiallele. Public Library of Science 2017-01-06 /pmc/articles/PMC5257005/ /pubmed/28060933 http://dx.doi.org/10.1371/journal.pgen.1006551 Text en © 2017 Agorio 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
Agorio, Astrid
Durand, Stéphanie
Fiume, Elisa
Brousse, Cécile
Gy, Isabelle
Simon, Matthieu
Anava, Sarit
Rechavi, Oded
Loudet, Olivier
Camilleri, Christine
Bouché, Nicolas
An Arabidopsis Natural Epiallele Maintained by a Feed-Forward Silencing Loop between Histone and DNA
title An Arabidopsis Natural Epiallele Maintained by a Feed-Forward Silencing Loop between Histone and DNA
title_full An Arabidopsis Natural Epiallele Maintained by a Feed-Forward Silencing Loop between Histone and DNA
title_fullStr An Arabidopsis Natural Epiallele Maintained by a Feed-Forward Silencing Loop between Histone and DNA
title_full_unstemmed An Arabidopsis Natural Epiallele Maintained by a Feed-Forward Silencing Loop between Histone and DNA
title_short An Arabidopsis Natural Epiallele Maintained by a Feed-Forward Silencing Loop between Histone and DNA
title_sort arabidopsis natural epiallele maintained by a feed-forward silencing loop between histone and dna
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5257005/
https://www.ncbi.nlm.nih.gov/pubmed/28060933
http://dx.doi.org/10.1371/journal.pgen.1006551
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