Evolution of DNA methylation patterns in the Brassicaceae is driven by differences in genome organization.

DNA methylation is an ancient molecular modification found in most eukaryotes. In plants, DNA methylation is not only critical for transcriptionally silencing transposons, but can also affect phenotype by altering expression of protein coding genes. The extent of its contribution to phenotypic diver...

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出版年:PLoS Genetics
主要な著者: Danelle K Seymour, Daniel Koenig, Jörg Hagmann, Claude Becker, Detlef Weigel
フォーマット: 論文
言語:英語
出版事項: Public Library of Science (PLoS) 2014-11-01
オンライン・アクセス:http://europepmc.org/articles/PMC4230842?pdf=render
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author Danelle K Seymour
Daniel Koenig
Jörg Hagmann
Claude Becker
Detlef Weigel
author_facet Danelle K Seymour
Daniel Koenig
Jörg Hagmann
Claude Becker
Detlef Weigel
author_sort Danelle K Seymour
collection DOAJ
container_title PLoS Genetics
description DNA methylation is an ancient molecular modification found in most eukaryotes. In plants, DNA methylation is not only critical for transcriptionally silencing transposons, but can also affect phenotype by altering expression of protein coding genes. The extent of its contribution to phenotypic diversity over evolutionary time is, however, unclear, because of limited stability of epialleles that are not linked to DNA mutations. To dissect the relative contribution of DNA methylation to transposon surveillance and host gene regulation, we leveraged information from three species in the Brassicaceae that vary in genome architecture, Capsella rubella, Arabidopsis lyrata, and Arabidopsis thaliana. We found that the lineage-specific expansion and contraction of transposon and repeat sequences is the main driver of interspecific differences in DNA methylation. The most heavily methylated portions of the genome are thus not conserved at the sequence level. Outside of repeat-associated methylation, there is a surprising degree of conservation in methylation at single nucleotides located in gene bodies. Finally, dynamic DNA methylation is affected more by tissue type than by environmental differences in all species, but these responses are not conserved. The majority of DNA methylation variation between species resides in hypervariable genomic regions, and thus, in the context of macroevolution, is of limited phenotypic consequence.
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spelling doaj-art-d04c096f7e7e4259b5aeef1663de7f742025-08-19T20:28:05ZengPublic Library of Science (PLoS)PLoS Genetics1553-73901553-74042014-11-011011e100478510.1371/journal.pgen.1004785Evolution of DNA methylation patterns in the Brassicaceae is driven by differences in genome organization.Danelle K SeymourDaniel KoenigJörg HagmannClaude BeckerDetlef WeigelDNA methylation is an ancient molecular modification found in most eukaryotes. In plants, DNA methylation is not only critical for transcriptionally silencing transposons, but can also affect phenotype by altering expression of protein coding genes. The extent of its contribution to phenotypic diversity over evolutionary time is, however, unclear, because of limited stability of epialleles that are not linked to DNA mutations. To dissect the relative contribution of DNA methylation to transposon surveillance and host gene regulation, we leveraged information from three species in the Brassicaceae that vary in genome architecture, Capsella rubella, Arabidopsis lyrata, and Arabidopsis thaliana. We found that the lineage-specific expansion and contraction of transposon and repeat sequences is the main driver of interspecific differences in DNA methylation. The most heavily methylated portions of the genome are thus not conserved at the sequence level. Outside of repeat-associated methylation, there is a surprising degree of conservation in methylation at single nucleotides located in gene bodies. Finally, dynamic DNA methylation is affected more by tissue type than by environmental differences in all species, but these responses are not conserved. The majority of DNA methylation variation between species resides in hypervariable genomic regions, and thus, in the context of macroevolution, is of limited phenotypic consequence.http://europepmc.org/articles/PMC4230842?pdf=render
spellingShingle Danelle K Seymour
Daniel Koenig
Jörg Hagmann
Claude Becker
Detlef Weigel
Evolution of DNA methylation patterns in the Brassicaceae is driven by differences in genome organization.
title Evolution of DNA methylation patterns in the Brassicaceae is driven by differences in genome organization.
title_full Evolution of DNA methylation patterns in the Brassicaceae is driven by differences in genome organization.
title_fullStr Evolution of DNA methylation patterns in the Brassicaceae is driven by differences in genome organization.
title_full_unstemmed Evolution of DNA methylation patterns in the Brassicaceae is driven by differences in genome organization.
title_short Evolution of DNA methylation patterns in the Brassicaceae is driven by differences in genome organization.
title_sort evolution of dna methylation patterns in the brassicaceae is driven by differences in genome organization
url http://europepmc.org/articles/PMC4230842?pdf=render
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